Modular display panels

Information

  • Patent Grant
  • 10871932
  • Patent Number
    10,871,932
  • Date Filed
    Wednesday, February 6, 2019
    5 years ago
  • Date Issued
    Tuesday, December 22, 2020
    3 years ago
Abstract
An embodiment modular light-emitting diode (LED) display panel includes attachment points for use in attachment as part of a multi-panel modular LED display, a printed circuit board including a first side and an opposite second side, and a plastic casing attached to the opposite second side of the printed circuit board. A perimeter of the plastic casing is substantially rectangular and has a height and a width. The modular LED display panel further includes a display surface including a plurality of LEDs arranged as pixels and attached to the first side of the printed circuit board. The pixels are arranged in a rectangular array including at least fifty pixels. Each of the pixels of the rectangular array is spaced from each respective adjacent pixel of the rectangular array by a pitch. The pitch is a predetermined constant number. The pitch does not depend on the height and the width.
Description
TECHNICAL FIELD

The present invention relates generally to displays, and, in particular embodiments, to a system and method for a modular LED display panels with different pitches.


BACKGROUND

Large displays (e.g., billboards), such as those commonly used for advertising in cities and along roads, generally have one or more pictures and/or text that are to be displayed under various light and weather conditions. As technology has advanced and introduced new lighting devices such as the light emitting diode (LED), such advances have been applied to large displays.


An LED display is a flat panel display, which uses an array of light-emitting diodes. A large display may be made of a single LED display or a panel of smaller LED panels. LED panels may be conventional panels made using discrete LEDs or surface-mounted device (SMD) panels. Most outdoor screens and some indoor screens are built around discrete LEDs, which are also known as individually mounted LEDs. A cluster of red, green, and blue diodes, or alternatively, a tri-color diode, is driven together to form a full-color pixel, usually square in shape. These pixels are spaced evenly apart and are measured from center to center for absolute pixel resolution.


Many LED display manufacturers sell displays with different resolutions. A present disadvantage of these LED displays is that each one must be a different size to accommodate the pitch needed to obtain the desired resolution. In turn, the existing cabinets and mounting structures must be built to be suitable with the size of the displays.


SUMMARY

Example embodiments of the present disclosure provide a system and method for modular LED display panels with different pitches.


In accordance with an example embodiment of the present invention, a method of manufacturing modular panels is provided. The method includes manufacturing a group of modular LED display panels, including a first and second modular LED display panel that have the same size and shape. The first modular LED display panel includes a first pixel array arranged at a first pitch, and the second modular LED display panel includes a second pixel array that is arranged at a second pitch that is different than the first pitch. Any two modular LED display panels in the group are capable of being attached to each other in an integrated display system.


In accordance with another example embodiment of the present invention, a product portfolio is provided. The product portfolio includes a group of modular LED display panels, including a first and second modular LED display panel that have the same size and shape. The first modular LED display panel includes a first pixel array arranged at a first pitch, and the second modular LED display panel includes a second pixel array that is arranged at a second pitch that is different than the first pitch. Any two modular LED display panels in the group are capable of being attached to each other in an integrated display system.


In accordance with another example embodiment of the present invention, a modular display system is provided. The display system includes a mechanical support structure and a group of display panels mounted to the mechanical support structure to form an integrated display panel. The mechanical structure is configured to provide mechanical support to the group of display panels, which include a first display panel and a second display panel each having the same size and shape. The first display panel includes a power source, a first pixel array having a first display resolution and a first pitch, and a first controller coupled to the power source. The second display panel includes a second pixel array having a second display resolution and a second pitch.





BRIEF DESCRIPTION OF THE DRAWINGS

For a more complete understanding of the present invention, and the advantages thereof, reference is now made to the following descriptions taken in conjunction with the accompanying drawings, in which:



FIG. 1, which includes FIGS. 1A-1B, illustrates a modular multi-resolution display system in accordance with embodiments of the present invention;



FIG. 2, which includes FIGS. 2A and 2B, illustrates one embodiment of an LED panel that may be used as one of the LED panels in the modular multi-resolution display system;



FIG. 3, which includes FIGS. 3A and 3B, illustrates a cross-sectional view and receiver circuit diagram of an embodiment LED panel;



FIG. 4 illustrates an embodiment configuration for connecting LED panels to a video data source;



FIG. 5, which includes FIGS. 5A-5G, illustrates embodiment formats for digitally storing video data in video memory buffers of LED panels;



FIG. 6, which includes FIGS. 6A-6E, illustrates embodiment signaling configurations for transmitting data from a data source to LED panels;



FIG. 7, which includes FIGS. 7A-7E, illustrates embodiment panel circuitry for implementing the signaling configurations of FIG. 6; and



FIG. 8 illustrates a method of assembling the modular multi-panel display system in accordance with embodiments of the present invention.



FIG. 9 illustrates a method of configuring and displaying data on the modular multi-panel display system in accordance with embodiments of the present invention.





DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS

Embodiments of the invention provide display panels, each of which provides a completely self-contained building block that is lightweight. These displays are designed to protect against weather, without a heavy cabinet, although it is understood that the present disclosure may be applied to lighting for any type of interior and/or exterior display. The lightweight design allows for easier installation and maintenance, thus lowering total cost of ownership.


In embodiments of the present invention, a number of different resolution display panels are manufactured and sold but each of these panels is made to have the same physical dimensions. This approach saves cost because standard-size components can be used for the various models of displays that are available. Instead of maintaining inventory of eight different size housings for a product line that includes eight different resolution display panels, a single inventory can be kept, which will lower inventory costs.


Embodiments of the invention provide building block panels that are configurable with future expandability. These displays can offer complete expandability to upgrade in the future without having to replace the entire display. Installation is fast and easy with very little down-time, which allows any electronic message to be presented more quickly.


In some embodiments, the display panels are “hot swappable.” By removing one screw in each of the four corners of the panel, servicing the display is fast and easy. Since a highly-trained, highly-paid electrician or technician is not needed to correct a problem, cost benefits can be achieved.


Various embodiments utilize enhanced pixel technology (EPT), which increases image capability. EPT allows image displays in the physical pitch spacing, but also has the ability to display the image in a resolution that is four-times greater.


Embodiments of the present invention will be described in further detail below. A modular multi-panel display system comprising display panels of differing resolutions to a frame will be described using FIG. 1. An embodiment method for initially setting up the modular multi-panel display will be described using FIG. 8. Various embodiments of display panels may be used in the modular multi-panel display, for example, as illustrated below in FIGS. 2 and 3. The panels are then electrically connected to a data source, as described further with respect to FIG. 4. As will be next described using FIG. 5, the transmitted data may be stored in the panels using various signaling formats. The data to be stored is then transmitted to the panels from a data source in accordance with various signaling configurations, as will be described in FIG. 6. Using FIG. 9, an embodiment method for configuring and displaying data on the modular multi-panel display will be described. Various electronic components of individual panels may be interconnected to support the signaling configurations of the modular display as illustrated in FIG. 7.


Referring now to FIG. 1, a modular multi-resolution display system in accordance with embodiments of the present invention is illustrated. FIG. 1A is a front view of a display system that includes display panels of different resolutions. FIG. 1B is a rear view of the display system that illustrates the frame for mounting the display panels.


Referring to FIG. 1A, in this particular example, three different resolution display panels are used, but it is understood that any configuration could be used. For example, Table 1 provides an example of the pitches used for a product line that includes eight different resolution display panels. A single system could include panels with each of the eight pitches shown in Table 1. The software driving the display would provide image data to each panel in a manner appropriate for that panel. Each of the panels in Table 1 is one foot by two feet in dimensions, as an example. The pitch and type of LED used is provided in the table. The pitch is the distance between any two pixels in the panel, and the type of LED may be, for example, a Surface Mount Device (SMD) or a Dual Inline Package (DIP).











TABLE 1









 6.35 mm SMD Physical



 7.62 mm SMD Physical



9.525 mm SMD Physical



 12.7 mm SMD Physical



15.24 mm DIP Physical



19.05 mm DIP Virtual



 25.4 mm DIP Virtual



30.48 mm DIP Virtual










Referring to FIG. 1A, this particular example shows a display 100 with an arbitrarily chosen 25 LED display panels 150 comprising three different resolution panels. In the present embodiment, the LED display panels 150 use LEDs for illumination, but it is understood that other light sources may be used in other embodiments. One of the advantages of the building block like configuration of the display panels is that any number of panels can be used to create integrated display systems of many sizes and shapes. For example, a display 100 could include 336 panels that are each 1′×2′ in dimension to create a 14′×48′ display. In such a display, because each panel is lighter than typical panels, the entire display could be built to weigh only 5500 pounds. This compares favorably to commercially available displays of the size, which generally weigh from 10,000 to 12,000 pounds. In another embodiment, a display 100 could include 320 LED display panels 150 arranged in ten rows and thirty-two columns so that the integrated display panel 100 has a display surface that is approximately fifty feet and four inches wide and fifteen feet and eight and three-quarters inches high. In other embodiments, displays with an arbitrary number of panels can be used.


The LED display panels 150 in the embodiment of FIG. 1A typically operate together to form a single image, although multiple images may be simultaneously presented by the display 100. Two or more LED display panels 150 can be coupled for power and/or data purposes, with an LED display panel 150 receiving power and/or data from a central source or another panel and passing through at least some of the power and/or data to one or more other panels. This further improves the modular aspect of the display 100, as a single LED display panel 150 can be easily connected to the display 100 when being installed and easily disconnected when being removed by decoupling the power and data connections from neighboring panels.


The power and data connections for the LED display panels 150 may be configured using one or more layouts, such as a ring, mesh, star, bus, tree, line, or fully-connected layout, or a combination thereof. In some embodiments the LED display panels 150 may be in a single network, while in other embodiments the LED display panels 150 may be divided into multiple networks. Power and data may be distributed using identical or different layouts. For example, power may be distributed in a line layout, while data may use a combination of line and star layouts.


In the embodiment of FIG. 1A, the bottom row has a first resolution such as, for example, a low resolution that is used for captions or other text. The top and corners use a second resolution, for example, a medium resolution to be used for background portions of the image. The center of the display, on the other hand, may have a higher resolution. This region would be capable of showing a more detailed image. Such a configuration is possible because the housings of all of the display panels are the same size and configuration regardless of the resolution. This allows a user to tailor the number of each panel type to gain the best tradeoff between cost and image quality.


Referring to FIGS. 1A and 1B, it is also noted that the uniform size and configuration of the panels enables the panels to be interchanged as needed. More specifically, as panels have an identical footprint in terms of height H, width W, and depth D1, their position on the frame 110 of FIG. 1B does not matter from a size standpoint, but only from a functionality standpoint. Accordingly, the design of the display 100 may then focus on issues such as the required resolution for a particular position and/or other issues such as weight and cost without the need to be concerned with how a particular panel will physically fit into a position on the frame.


Referring to FIG. 1B, the LED display panels 150 are individually attached to a frame 110, which enables each LED display panel to be installed or removed from the frame 110 without affecting the other panels. Each LED display panel 150 is a self-contained unit that couples directly to the frame 110. By “directly,” it is understood that another component or components may be positioned between the LED display panel 150 and the frame 110, but the panel is not placed inside a cabinet that is coupled to the frame 110. For example, in this embodiment attachment plates 145 are coupled to the LED display panels 150 and to the frame 110. Other embodiments use an alignment plate, which is a plate that couples to the housing of a panel and to the frame 110 and also interlocks with other alignment plates of adjacent panels, to aid in aligning the panel with adjacent panels. Further the panel may be coupled to the frame 110 without the use of any attachment plates or alignment plates. Whether the panel is coupled to the frame 110, attachment plate 145, and/or the alignment plate, any of these coupling approaches would be “direct” according to the present disclosure.


The attachment plate 145 (or an alignment plate) could be a solid material such as a metal plate or could be a conforming material such as a rubber material embedded with metal particles. In either case, it is desirable that the plate be thermally conductive. One or more attachment features 149 may be used to connect the attachment plate 145 to the LED display panel 150. In the embodiment illustrated in FIGS. 1B and 1C, the attachment plate 145 is a corner plate. Each corner plate is mechanically connected to corners of four of the LED display panels 150 to secure the LED display panels 150 to the horizontal beams 120A and vertical beams 120B of the frame 110.


The frame 110 comprises a plurality of horizontal beams 120A and vertical beams 120B forming the mechanical structure. The frame 110 may be relatively light in weight compared to frames needed to support cabinet mounted LED assemblies. In one embodiment, both horizontal beams 120A and vertical beams 120B may be used to support the LED display panels 150. In another embodiment, horizontal beams 120A but not the vertical beams 120B may be used to support the LED display panels 150. In a third embodiment, vertical beams 120B but not the horizontal beams 120A may be used to support the LED display panels 150.


The frame 110 may include support structures for the electrical cables, data cables, electrical power box powering the LED displays panels 150 and receiver unit 140 controlling power, data, and communication to the LED displays panels. However, the frame 110 does not include any additional enclosures to protect the LED panels, data, power cables from the environment. Rather, the frame 110 is exposed to the elements and further exposes the LED display panels 150 to the environment. The frame 110 also does not include air conditioning, fans, heating units to maintain the temperature of the LED display panels 150. Rather, the LED display panels 150 are hermetically sealed themselves and are designed to be exposed to the outside ambient. Further, in various embodiments, there are not additional cabinets that are attached to the frame 110 or used for housing the LED display panels 150. Accordingly, in various embodiments, the multi-panel modular display, LED display panel 150 is designed to be only passively cooled.



FIGS. 2A-2B illustrate one embodiment of a panel 150A that may be used as one of the LED display panels 150 of FIGS. 1A-1C. FIG. 2A illustrates a front view of the embodiment panel 150A with LEDs aligned in a 16×32 configuration. FIG. 2B illustrates a back view of the panel of this embodiment panel 150A.


Referring to FIG. 2A, an embodiment panel 150A includes a substrate 202 that forms a front surface of the panel 150A. The substrate 202 in the present embodiment is rectangular in shape, with a top edge 204, a bottom edge 206, a right edge 208, and a left edge 210. A substrate surface 212 includes “pixels” 214 that are formed by one or more LEDs 216 on or within the substrate 202. The substrate 202 may form the front surface of the panel 150A, but may not be the outer surface in some embodiments. For example, a transparent or translucent material or coating may overlay the substrate 202 and the LEDs 216, thereby being positioned between the substrate 202/LEDs 216 and the environment. In the present example, each pixel 214 includes four LEDs 216 arranged in a pattern (e.g., a square). For example, the four LEDs 216 that form a pixel 214 may include a red LED, a green LED, a blue LED, and one other LED (e.g., a white LED, a second red LED, etc.). In some embodiments, the other LED may be a sensor. It is understood that more or fewer LEDs 216 may be used to form a single pixel 214, and the use of four LEDs 216 and their relative positioning as a square is for purposes of illustration only. In an embodiment, a single tri-color LED having red, green, and blue inputs forms a single pixel.


Referring to FIG. 2B, the back of panel 150A is illustrated. In the present example, the panel 150A includes coupling points 242 and 244. The panel 150A also has a number of connection points that include a “power in” point 222, a first data point 224, a second data point 226, and a “power out” point 230. One embodiment of the invention provides for an integrated data and power cable, which reduces the number of ports. The power in point 222 enables the panel 150A to receive power from a power source, which may be another panel. In an embodiment, the first data point 224 is a “data in” point that enables the panel to receive data from a data source, which may be another panel, and the second data point 226 is a “data out” point that enables the panel 50A to send data to another panel. In an embodiment where the first data point 224 and second data point 226 are bi-directional, they may each enable the panel 150A to send data to one or more other panels and to receive data from those panels. In other embodiments, the data points can be directional connection points. The power out point 230 enables the panel 50A to send power to another panel.


The connection points may be provided in various ways. For example, in one embodiment, the connection points may be jacks configured to receive corresponding plugs. In another embodiment, a cable may extend from the back panel with a connector (e.g., a jack or plug) affixed to the external end of the cable to provide an interface for another connector. It is understood that the connection points may be positioned and organized in many different ways.


Inside the panel, the power in point 222 and power out point 230 may be coupled to circuitry 236 as well as to the power supply 238. In such embodiments, the circuitry 236 may aid in regulating the reception and transmission of power. In other embodiments, the power in point 222 and power out point 230 may be coupled only to the power supply 238 with a pass through power connection allowing some of the received power to be passed from the power in point 222 to the power out point 230. In some embodiments, the circuitry 236 may identify data used for the panel 150A and also send all data on to other coupled panels via the second data point 226. In such embodiments, the other panels would then identify the information relevant to that particular panel from the data. In other embodiments, the circuitry 236 may remove the data needed for the panel 150A and selectively send data on to other coupled panels via the second data point 226. For example, the circuitry 236 may send only data corresponding to a particular panel to that panel rather than sending all data and letting the panel identify the corresponding data. In some embodiments, the circuitry 236 may include a network receiver card for receiving data over a wide area network, local area network (LAN), or wireless LAN (WLAN).



FIG. 3A illustrates a cross-sectional view of a second embodiment of an LED display panel 150. FIG. 3B illustrates an embodiment receiver circuit 325 of the LED display panel 150.


Referring to FIG. 3A, the casing 350 of the modular LED display panel 150 has openings through which a first cable 360 and a second cable 365 may be attached. The LED display panels 150 are electrically connected together for data and for power using the first cable 360 and second cable 365. In some embodiments, the first cable 360 is an input cable and the second cable 365 is an output cable. Each modular LED display panel 150 is capable of receiving input using an integrated data and power cable from a preceding modular LED display panel and providing an output using another integrated data and power cable to a succeeding modular LED display panel. Each cable ends with an endpoint device or connector, which is a socket or alternatively a plug.


The modular LED display panel 150 also comprises a plurality of LEDs 310 mounted on one or more printed circuit boards (PCBs) 320, which are housed within a hermetically sealed enclosure or casing. A framework of louvers 330 is attached to the PCB 320 using an adhesive 340, which prevents moisture from reaching the PCB. The LEDs 310 may be directly exposed to the ambient in the direction of light emission or may be covered by a transparent or translucent material or coating. A heat sink 380 is attached between the PCB 320 and the casing 350 and contacts both the PCB 320 and the casing 350 to maximize heat extraction.


A receiver circuit 325 is mounted on the PCB 320. The receiver circuit 325 may be a single chip in one embodiment. Alternatively, multiple components may be mounted on the PCB 320. The receiver circuit 325 may be configured to process the received media and control the operation of the individual LEDs 310. For example, when a single tri-color LED is used to form each pixel, the receiver circuit 325 determines the color and brightness of the LED 310 to be displayed at each pixel by, for example, adjusting the current or pulse width of a plurality of signals applied to the red, green, and blue input pins of the LED 310. When multiple single-color LEDs are used to form each pixel, the receiver circuit 325 determines the brightness of each LED 310 within each pixel by, for example, adjusting the current or pulse width of a single signal applied to the LED 310. A power supply unit 370 may be mounted over the casing 350 for powering the LEDs 310.


Referring to FIG. 3B, a data and power signal received at first cable 360 is processed at an interface circuit 351 of receiver circuit 325. The incoming power is provided to a power supply unit 370.


Another output from the incoming power is provided to second cable 365. This provides redundancy so that even if a component in the LED display panel 150 is not working, the output power is not disturbed. Similarly, second cable 365 includes all the data being received in first cable 360.


In this embodiment, the interface circuit 351 provides the received data to the graphics processor 357 through a data bus 354. In some embodiments, the interface circuit 351 provides only the data segments intended for the LED display panel 150. In other embodiments, the interface circuit 351 provides all incoming data to the graphics processor 357. For example, the graphics processor 357 may perform any necessary decoding or (when signaling between panels is analog) analog-to-digital conversion of the received media. In other embodiments, the interface circuit 351 interfaces directly with the LED controller 359 without use of a graphics processor 357. In the embodiment of FIG. 3B, the graphics processor 357, LED controller 359, or interface circuit 351 may use the buffer video memory 355 as needed to store video segments during processing. In some embodiments, the buffer video memory 355 may be a component of the LED controller 359. The buffer video memory 355 may also be used to digitally store video segments temporarily until the receiver circuit 325 collects enough data for simultaneous display by the LEDs 310. This collection of data may be a video frame for simultaneous display by all of the LEDs of the display panel, or it may be a smaller portion of data for display by a subset of the LEDs in accordance with, for example, a scanning pattern. The buffer video memory 355 may also be used to temporarily store video segments destined for other display panels.


The LED controller 359, which may include an address decoder (e.g., a demultiplexer), receives the media to be displayed and identifies individual LEDs in the LEDs 310 that need to be controlled. The LED controller 359 may determine an individual LED's color, brightness, refresh time, and other parameters associated to generate the display. For example, at each pixel location in the display, the color of the pixel may be selected by powering one or more combination of red, blue, green, and white LEDs. The LED controller 359 may include control circuitry such as a row selector and column selector for determining LED parameters as an example. In one embodiment, the LED controller 359 may provide these LED parameters to the current driver 353, which acts as either a current source or a current sink to select the appropriate current for the particular LED. In some embodiments, the current driver 353 acts as a current source or sink to provide a constant current with a constant pulse width to the LEDs 310. In other embodiments, the current driver 353 varies the duty cycle of a constant current to pulse width modulate the brightness of the LEDs 310. The current driver 353 may either be a component of the LED controller 359 or may be located outside the LED controller 359, such as, for example, being located inside the power supply unit 370.


The power supply unit 370 may include, for example, a power converter for converting ac to dc, which is supplied to the LEDs 310. Alternatively, the power supply unit 370 may include a down converter that down converts the voltage suitable for driving the LEDs 310. In one embodiment, the power supply unit includes a scan controller that interfaces directly with the LEDs 310. For example, the current driver 353 may provide a constant current to the LEDs 310 while a scan controller of the power supply unit 370 controls the select line needed to turn ON or OFF a particular LED. In some embodiments, a scan controller of the power supply unit 370 is implemented as an array of switches or transistors that switches incoming power to a selected row or column of LEDs 3100. In other embodiments, the scan controller switches the output of the LED controller 359 to a selected row or column. The scan controller switches the LED controller output or power in accordance with, for example, an LED address, a row address, a column address, a pre-configured scanning pattern for scan groups of linked LEDs that should be activated simultaneously, or a scan select signal that specifies which scan group should be activated.



FIG. 4 illustrates an embodiment configuration for connecting LED display panels 150 to a video data source. Referring to FIG. 4, the LED display panels 150 are arranged in an array of rows and columns. Each LED display panel 150 of each row is electrically connected to an adjacent LED display panel 150 within that row. Each LED display panel is also electrically connected to a data source and to a power source. In various embodiments, a receiver unit 140 is mounted to the mechanical support structure or frame 110. The receiver unit 140 is configured to receive data from a controller 400 and to provide power, data, and communication to the LED display panels 150 through integrated power and data cables 460. The first cable 360 and the second cable 365 in FIG. 3A are specific applications of the integrated power and data cables 460 illustrated in FIG. 4.


The integrated power and data cable 460 includes wires for carrying data/control information and wires for carrying power. The data/control wires may include twisted pair. The length of the data and power wires may be controlled to provide signal propagation within each LED display panel within a specific time. The data/control wires may be configured to transport data at a high bit rate, e.g., at least 1 Mbit/s, and may be 100-1000 Mbit/s. To minimize noise, the cable as a whole may be shielded or the data/control wires or twisted pairs of data/control wires may be shielded separately. In some embodiments, the power connections to the power wires can be configured so that power is run across all of a row (or any other group of panels). In this manner, if the power supply of any one of the panels fails, the other panels will continue to operate. In some embodiments, a first LED display panel in each row may be electrically coupled to the receiver unit 140. The other LED display panels in each row may be daisy-chain coupled to an adjacent LED display panel.


A controller 400 may be connected to the receiver unit through a data network 440 that is a wired or wireless network. Data to be displayed at the multi-panel display system may be first received from a computer 450, which may be a media server, at a controller 400. The controller 400, which may also be part of the media server, may transmit the data to be displayed to one or more receiver units 140. A very large display may include more than one receiver units 140. The receiver units 140 receive the data to be displayed from the controller 400, and distribute it across to the multiple display panels.


The controller 400 may be remotely located or located on-site in various embodiments. The controller 400 is configured to provide data to display to the receiver unit 140. The output of the controller 400 may be coupled through a network cable or WLAN to the receiver unit 140. Alternatively, the output of the controller 400 may be coupled to an ingress router of the internet and the receiver unit 140 may be coupled to an egress router if the controller 400 is located remotely.


The receiver unit 140 connects the LED display panels with data to be displayed on the integrated display and with power to power each of the LED display panels 150. In one or more embodiments, the receiver unit 140 creates multiple outputs, where each output is configured for each panel under its control. Alternatively, the LED display panels 150 may be configured to decode the received data and select and display only the appropriate data intended to be displayed by that particular LED display panel 150. The receiver unit 140 may transmit the media or data to be displayed in a suitable encoded format.


In one or more embodiments, the receiver unit 140 transmits analog video. For example, in one embodiment, composite video may be outputted by the receiver unit 140. In a second embodiment, luminance-blue-difference-red-difference (YCBCR) analog component video may be outputted by the receiver unit 140. In a third embodiment, luminance-chrominance (YC) encoded analog video may be outputted by the receiver unit 140. In a fourth embodiment, red-green-blue (RGB) analog video may be outputted by the receiver unit 140. In other embodiments, the output video of receiver unit 140 comprises video to be displayed encoded in a digital video format (e.g., 4:4:4 YCBCR, 4:2:2 YCBCR, 4:4:4 RGB, 4:2:2 RGB, etc.) by each of the display panels under the receiver unit 140.



FIG. 5, which includes FIGS. 5A-5G, illustrates embodiment formats for digitally storing video data in video memory buffers of LED panels after the data has been transmitted by the receiver unit. FIG. 5A illustrates digital storage of RGB component data stored in three data sets in accordance with a 4:4:4 sampling ratio after the data has, for example, been transmitted across three channels or has been serially multiplexed on a single transmission channel from the receiver unit. FIG. 5B illustrates digital storage of RGB component data stored in four data sets in accordance with a 4:2:2 sampling ratio. FIG. 5C illustrates digital storage of YCBCR component data in three data sets in accordance with a 4:4:4 sampling ratio. FIG. 5D illustrates digital storage of YCBCR component data in three data sets in accordance with a 4:2:2 sampling ratio. FIG. 5E illustrates digital storage of YC data in three data sets. FIG. 5F illustrates digital storage of RGB data that is divided into three data sets in accordance with a pixel-by-pixel distribution.



FIG. 5A illustrates an embodiment frame of video data distributed in three data sets in accordance with a 4:4:4 RGB component 24-bit format. In other embodiments, different numbers of data sets and memory locations could be used. This exemplary frame contains 1152 pixels organized into 24 horizontal lines or rows of 48 pixels each, which corresponds to a 1′×2′ display panel with a pitch of 12.7 mm between pixels. Other frame sizes would be used for other embodiment panels having differing numbers of pixels. In this embodiment, data set A contains pixel components of 8 bits representing the blue component of each pixel. 8 bits is the word size of this embodiment. In other embodiments, different word sizes may be used. As an example, Bo is 8 bits of data storing the blue pixel value of the first pixel in the first line. A first group of 48 pixel blue components of 8 bits each precede a first new row divider. In an embodiment, this new row divider is a horizontal synchronization (HSYNC) symbol included in the data stream to demarcate the end of a horizontal line of data to be displayed. In other embodiments, the new row divider of FIG. 5A indicates that preceding pixels are stored in a different portion of memory than those pixels that follow the new row divider. This division into different areas of memory may be accomplished by, for example, sizing each memory partition to hold only the data necessary for a single row of pixels. Alternatively, a new row could be indicated by a control signal provided by the receiver unit to the panel to demarcate the end of a horizontal line of data to be displayed. The stored data contains each new row of data in subsequent groups of 48 blue components up to the end of the frame, which contains a total of 1152 8-bit blue components corresponding to the 1152 pixels in the frame. Similarly, data set B is divided into a new row after every 48 8-bit red pixel components in a set of 1152 red components, and data set C is a third digital data set is divided into a new row after every 48 8-bit green pixel components in a set of 1152 green components. In an embodiment, current driver 353 of FIG. 3B may use these RGB components in data sets A, B, and C to drive LEDs in an embodiment display panel having a 12.7 millimeter pitch.



FIG. 5B illustrates an embodiment frame of video data distributed over four digital memory locations of the buffer video memory 355 of FIG. 3B in accordance with a 4:2:2 RGB component 32-bit format. The difference between this embodiment and the embodiment of FIG. 5A is that 16 bits representing the red component of each pixel are included in the stored data, with 8 bits being provided by the R data in data set C and an additional 8 bits provided by the R′ data in data set D.



FIG. 5C illustrates an embodiment frame of video data distributed over three digital memory locations of buffer video memory 355 in accordance with a 4:4:4 YCBCR component 24-bit format. The difference between this embodiment and the embodiment of FIG. 5A is that data set A contains blue difference data in 8-bit pixel components, data set B contains luminance data in 8-bit pixel components, and data set C contains red difference data in 8-bit pixel components.



FIG. 5D illustrates an embodiment frame of video data distributed over three digital memory locations of buffer video memory 355 in accordance with a 4:2:2 YCBCR component 24-bit format. The difference between this embodiment and the embodiment of FIG. 5C is that data set A contains 8-bit pixel components comprised of 4 bits representing the luminance component of each pixel and 4 bits representing either the blue-difference or red-difference component of each alternating pixel.



FIG. 5E illustrates an embodiment frame of equally sampled 24-bit YC video data distributed over three digital memory locations of buffer video memory 355. The difference between this embodiment and the embodiment of FIG. 5D is that blue difference and red difference data are replaced by 12-bit chrominance data, four bits of which are stored in each 8-bit pixel component of data set A, and eight bits of which are stored in each 8-bit pixel component of data set C.



FIG. 5F illustrates an embodiment frame of 4:4:4 24-bit RGB video data distributed over three digital memory locations of buffer video memory 355 in accordance with a pixel-by-pixel distribution. The difference between this embodiment and the embodiment of FIG. 5A is that the number of pixels in a video frame is divided between the three data sets so that, for example, all the component data for a given pixel could be stored in the same form in which it is transmitted over the same serial data channel. In this embodiment, each data set contains all components for a third of the pixels in a video frame, with the pixels assigned to each data set alternating with each pixel.



FIG. 5G illustrates an embodiment frame of 4:4:4 24-bit RGB data distributed over three data channels in accordance with a scanning pattern. The difference between this embodiment and the embodiment of FIG. 5A is that each data set is divided among two scan groups. During a first scanning period, the data in the first scan group of data sets A-C is digitally stored. During a second scanning period, the data in the second scan group of data sets A-C is digitally stored, overwriting the data in the first scan group. Storage of data continues in alternating scanning periods as each video frame is received and digitally stored in buffer video memory 355.



FIG. 6, which includes FIGS. 6A-6E, illustrates embodiment signaling configurations for transmitting data from the receiver unit to LED panels of different resolutions. FIG. 6A illustrates transmitting digital video data using a data-shifting daisy-chain configuration. FIG. 6B illustrates transmitting identifiably assigned digital video data using a pre-configured daisy-chain configuration. FIG. 6C illustrates transmitting identifiably assigned analog video data using a pre-configured daisy-chain configuration. FIG. 6D illustrates transmitting identifiably assigned digital video data in a dynamically adaptable daisy-chain configuration. FIG. 6E illustrates transmitting multiplexed digital video data using a data-shifting daisy-chain configuration.



FIG. 6A illustrates an embodiment transmitting serial digital video data to panels of different resolutions using a data-shifting daisy-chain configuration. The receiver unit 140 is pre-configured to know information about panels 150B-C, including the panels' resolutions, and pixel counts/local video frame sizes. A global video frame for collective display across embodiment panels 150B and 150C is divided into two local video frames. A first local video frame is divided into data sets 51E, 52E, and 53E that are stored in panel 150B. A variable number of data transmission channels M may be used. In this embodiment, when 3 data channels are used, panel 150B has 1,152 pixels organized into 24 horizontal lines of 48 pixels each, which could be implemented in, for example, a 1′×2′ display panel with a pitch of 12.7 mm between pixels. A second local video frame is divided into data sets 51A-51D, 52A-52D, and 53A-53D that are stored in panel 150C. In this embodiment, when 3 data channels are used, panel 150C has 4608 pixels organized into 48 horizontal lines of 96 pixels each, which could be implemented in a 1′×2′ display panel with a pitch of 6.35 mm between pixels. Different panel sizes and resolutions may be used in other embodiments.


In embodiments of the present invention, any of the formats of FIGS. 5A-5G may be used for the data sets 51A-E, 52A-E, and 53A-E that are respectively divided for transmission into M data channels and optionally into multiple scan groups and are then buffered into video memory in panels 150B and 150C. In other embodiments, other digital data storage formats may be used. In FIG. 6A, the video memories of panels 150B and 150C are implemented as shift registers 355A. When three data channels are used to transmit, for example, 4:4:4 RGB component video, blue pixel components could be transmitted in the first data channel, green components could be transmitted in the second data channel, and red components could be transmitted in the third data channel, so that buffered data sets 51A-51D collectively could represent the blue component of a 4,608 pixel local video frame, buffered data set 51E could represent the blue component of an 1152 pixel local video frame, and buffered data sets 52A-52E and 53A-53E could respectively represent the green and red components of these two frames. When more than three data channels are present, the data could be divided into smaller bit amounts in each channel than the 4 or 8-bit groups depicted in the data sets of FIGS. 5A-5G. In other embodiments, any number of data channels could divide up the number of pixels in a video frame in accordance with the data set formatting depicted in FIG. 5F-5G.


In FIG. 6A, data set 51A is sent serially across the first data channel between the receiver unit 140 and panel 150B in accordance with a bit clock, until a first location in one of the shift registers 355A of panel 150B is full. Then data set 51B is sent serially across the first data channel between receiver unit 140 and panel 150B, and each bit of data set 51A is shifted into the shift registers 355A of panel 150C as each bit of data set 51B is received by panel 150B. Transmission of data sets 51C-51E continues until data sets 51A-51D are completely shifted into the shift registers 355A of panel 150C and data set 51E is stored in the shift registers 355A of 150B. In the same way, data sets 52A-52E and 53A-53E are sent serially by receiver unit 140 to panel 150B, with data sets 52A-52D and 53A-53D then shifted into the shift registers 355A of panel 150C so that only the local video frame for panel 150B comprising data sets 51E, 52E, and 53E continues to be stored in the shift registers in panel 150B. At this time, the local video frame for panel 150C comprising data sets 51A-51D, 52A-52D, and 53A-53D is stored in panel 150C.


A frame clock, latch signal, or other control signal provided by the receiver unit 140 may signal panels 150B and 150C to display the local video frames stored in their buffer memories. In an embodiment, HSYNC data is transmitted serially with pixel data. In other embodiments, new rows in the data are indicated by an HSYNC signal, latch signal, or other control signal provided by the receiver unit 140. In an embodiment, multi-pin connections can be used to support signaling in the channels between the receiver unit 140 and the panels 150B and 150C. An exemplary 16-pin connection includes a latch pin, a clock pin, five address pins, an enable pin, three data pins, a signaling voltage pin, a signaling ground pin, a power supply pin, a power return pin, and a power ground pin. More or fewer pins may be provided for any of the foregoing pin types, and not all pin types may be provided in a multi-pin connection.



FIG. 6B illustrates transmitting identifiably assigned digital video data using a pre-configured daisy-chain configuration. The difference between this embodiment and the embodiment of FIG. 6A is that video data is sent in segments/packets over one or more data channels using a multiple access technique such as packet addressing or time division multiplexing such that the destination panel assigned to each segment is identifiable. In an embodiment, before receiver unit 140 begins sending data, it initializes panels 150B and 150C using a control channel by providing the interface circuits 351 of both panels with a unique address, time slot number (TSN), or other identifying information, which each interface circuit stores in a memory 500. A video frame destined for one of the panels is divided into one or more video segments. In an embodiment, a destination address is inserted by receiver unit 140 into the data stream as a header to the video segment. In other embodiments, a video segment intended for one of panels 150B and 150C is inserted by receiver unit 140 into a time slot in the data stream in accordance with a TSN assigned to the destination panel. In other embodiments, the receiver unit 140 indicates using a control/address signal on the control channel to indicate which of panels 150B or 150C should be actively receiving data. Interface circuit 351 in panel 150B determines, in accordance with the control/address signal or the address or TSN stored in its memory 500, whether data being received is intended for panel 150B, or whether it should be forwarded to the interface circuit of panel 150C.


In an embodiment, different panels 150B and 150C may have a different refresh rate. For example, panel 150B may have a slower refresh rate than panel 150C. The identifying information provided to panel 150B can notify it that inbound data from the receiver unit 140 is not intended to refresh panel 150B when panel 150B is not in its refresh period, in which case the inbound data will bypass the shift registers 355A of panel 150B. This bypassed data will then be delivered to panel 150C so that panel 150C may refresh its data in accordance with the higher refresh rate. For example, this may be used when panel 150B is intended to display text while panel 150C is intended to display high frame rate video such as sports or other action. By using multiple refresh rates, lower data rates may be used rather than having to send data to all panels at the refresh rate of the highest frame rate panel.



FIG. 6C illustrates transmitting assigned analog video data using a pre-configured daisy-chain configuration. The difference between this embodiment and the embodiment of FIG. 6B is that video data is sent in an analog form such as RGB component video, YCBCR component video, composite video, S-video, etc., in assigned time slots such that the destination display panel can be determined by interface circuits 351 in accordance with the assigned TSN for each panel. Analog data arriving at one of the graphics processors 357 is converted to digital data that is stored in buffer video memory 355 in accordance with, for example, one of the digital storage formats of FIGS. 5A-5G.



FIG. 6D illustrates transmitting digital video data using a dynamically adaptable daisy-chain configuration. The difference between this embodiment and the embodiment of FIG. 6B is that panels 150B and 150C can be dynamically added to the configuration using a hot plug detect channel and a bi-directional control channel. When a panel 150C is added to the configuration, it sends a signal on the hot plug detect channel to notify receiver unit 140 of its existence. An initialization sequence is then performed over the control channel. Panel 150C sends the receiver unit 140 its resolution information. In embodiments of the invention, panel 150C or panel 150B determines a unique address for panel 150C in accordance with the address of existing panel 150B, and then sends this address to receiver unit 140 over the control channel. In other embodiments, receiver unit 140 assigns a unique address to panel 150C over the control channel, which the interface circuit 351 stores in memory 500. Interface circuit 351 in panel 150B determines in accordance with the stored address whether data being received is intended for panel 150B, or whether it should be forwarded to the interface circuit of panel 150C.



FIG. 6E illustrates transmitting row-multiplexed digital video data using a data-shifting daisy-chain configuration. The differences between this embodiment and the embodiment of FIG. 6A are that three data channels are used, another panel 150D is included in a daisy chain after panel 150C, data is divided by rows among different shift registers 355A, and a scanning pattern is used to reduce memory requirements of the panels. In this embodiment, the receiver unit 140 is pre-configured to know information about panels 150B-D, including the panels' resolutions, pixel counts/local video frame sizes, number of scan groups, refresh rates, and number of rows and columns of shift registers 355A of each scan group. A global video frame for collective display across embodiment panels 150B-150D is divided into three local video frames, which are each in turn divided into 24 scan groups. A first scan group of a first local video frame is divided into data sets 51F, 52F, and 53F that is stored in panel 150B, which has 1,152 pixels organized into 24 horizontal lines of 48 pixels each and which could be implemented in, for example, a 1×2′ display panel with a pitch of 12.7 mm between pixels. A first scan group of a second local video frame is divided into data sets 51B-51E, 52B-52E, and 53B-53E that are stored in panel 150C, which has 4608 pixels organized into 48 horizontal lines of 96 pixels each. Panel 150C could be implemented in, for example, a 1′×2′ display panel with a pitch of 6.35 mm between pixels. A first scan group of a third local video frame is divided into data sets 51A, 52A, and 53A that is stored in panel 150D, which has the same resolution and number of pixels as panel 150B. Different panel sizes and resolutions may be used in other embodiments.


In the embodiment of FIG. 6E, data set 51A is sent serially across the first data channel between the receiver unit 140 and panel 150B in accordance with a bit clock, until a first location in one of the shift registers 355A of panel 150B is full. Then data set 51B is sent serially across the first data channel between the receiver unit 140 and panel 150B, forcing data set 51A to pass through the demultiplexer 502 of panel 150C and into an active shift register in panel 150C. In accordance with either a control signal (such as an address signal) or with the position in the data stream of the data set, the active shift register is either the combined first (topmost) shift register of panel 150C-which is formed from two daisy-chained 48-position shift registers and corresponds to the Nth row of pixels in the panel's pixel array, or the combined second shift register-which corresponds to pixels on row N+24, with N being the active scanning period. Each combined shift register in panel 150C contains 96 positions that correspond to the 96 columns in the pixel array. Each scan group contains two rows, such as the first 96-position shift register and the second 96-position shift register. When the active shift register of panel 150C is full and additional data arrives at the active shift register, data set 51A is then shifted into the first shift register of panel 150D, passing through a demultiplexer included in the panel, for example, to support future changes in scanning pattern and shift register components. In this example, in accordance with the control signal the active shift register of panel 150C is the first shift register when data sets 51B-51C are shifted into panel 150C, and the active shift register is the second shift register when data sets 51D-51E are shifted into panel 150C.


Referring again to FIG. 6E, transmission of data sets 51C-51F continues until data set 51A is completely shifted into panel 150D, data sets 51B-51E are completely shifted into the shift registers 355A of panel 150C and data set 51F is stored in the first shift register of 150B. In the same way, data sets 52A and 53A are sent serially by receiver unit 140 to panel 150D, data sets 52B-52E and 53B-53E are sent to panel 150C, and data sets 52F and 53F are sent by the receiver unit 140 to panel 150B. In an embodiment, a scanning clock, latch signal, pre-configured, or other control signal provided by the receiver unit 140 may then signal panels 150B-150D to display the scanning frames stored in their video memories. In other embodiments, the scanning frames are displayed in accordance with a timer.


Referring again to FIG. 6E, during scanning period N, panel 150C illuminates the first and 25th row of pixels in its pixel array and panels 150B and 150D illuminate their first row of pixels in accordance with the data stored in video memory. During 23 subsequent scanning periods, additional data is shifted into panels 150B-150D, which then in accordance with the scanning period sequentially illuminate 23 other linked scan groups made up of pixel rows of the LED display. In other embodiments, any number of scanning periods may be used. The scanning period is indicated by, for example, a scan select signal, a scanning timer, or an address select signal sent by receiver unit 140.



FIG. 7, which includes FIGS. 7A-7E, illustrates embodiment panel circuit diagrams implementing the signaling configurations of FIG. 6. FIG. 7A illustrates a panel with two shift registers coupled in parallel through two current drivers to two rows of pixels. FIG. 7B illustrates two shift registers coupled together to form a long shift register providing parallel data for two rows of pixels. FIG. 7C illustrates two shift registers coupled together to form a long shift register providing data for a single row of pixels. FIG. 7D illustrates a shift register coupled to a scan controller to provide data for multiple rows of pixels in accordance with a scanning pattern. FIG. 7E illustrates two shift registers coupled to a demultiplexer and to a scan controller to provide data for multiple rows of pixels in accordance with a scanning pattern.


Referring to FIG. 7A, only blue data driving blue LEDs is shown for illustrative purposes. In an embodiment, red and green data would drive red LEDs and green LEDs, which are not shown. In other embodiments, red, green, and blue data would drive different input pins of tri-colored LEDs. In FIG. 7A, data, power, and control signaling (including, for example address and latch signaling) is received at an interface circuit 351 of one of the panels. Power is then supplied to the power supply unit 370, which then powers two rows that are 1×16 LED arrays 505 of blue LEDs. Blue data is shifted serially from the interface circuit to the shift registers 355A of LED controller 359. This data is shifted through a data bus 354. In other embodiments, individual data wires take the place of the data bus 354. The blue data is shifted in accordance with a latch or clock signal provided to the shift registers 355A. As the shift registers 355A fill with stored digital data words in their 16 data word positions, they provide this data on 16 parallel outputs to current drivers 353. In accordance with a current driver synchronization signal (not shown), which may be derived from a clock or latch signal provided by the receiver unit 140 to interface circuit 351, the current drivers 353 then act as current sinks to control the current or duty cycle of the two rows of 16 LEDs each in LED arrays 505. Other embodiments may use current drivers as current sources, and may use shift registers of various sizes.


Referring to FIG. 7B, the difference between this embodiment and the embodiment of FIG. 7A is that two shift registers 355A are coupled together to from a single long shift register. In FIG. 7B, 32 words of digital data must be stored in this combined shift register before data is provided on 32 parallel outputs to current drivers 353, which then control the current or duty cycle of the two rows of 16 LEDs each in LED arrays 505.


Referring to FIG. 7C, the difference between this embodiment and the embodiment of FIG. 7B is that the two 16-LED arrays 505 are configured to form a single row of 32 LEDs. In FIG. 7C, 32 words of digital data must be stored in a single long shift register before data is provided on 32 parallel outputs to current drivers 353, which then control the current or duty cycle of the single row of 32 LEDs in LED arrays 505.


Referring to FIG. 7D, only a single shift register 355A is shown for illustrative purposes. In FIG. 7D, latch signaling from the interface circuit 351 passes to the shift register 355A through a demultiplexer 502 that may also be coupled to other shift registers that are not shown. The demultiplexer 502 acts as a register switch to provide the latch signal only to an active shift register, which prevents the remaining shift registers from shifting in incoming serial data. The demultiplexer is controlled by an address select signal to select the active shift register. A scan select signal or other control signal, a scan timer, or the ordering of latch signals may also be used to control the demultiplexer 502. In other embodiments, the demultiplexer 502 acts as a data switch to pass serial data to the shift registers in accordance with, for example, the number of words received by a data counter.


Referring again to FIG. 7D, when the shift register 355A is full of 16 words of stored digital data, it then provides this data on 16 parallel outputs to a current driver 353, which then controls the current or duty cycle of 8 scan groups comprising one or more rows of 16 LEDs each in LED arrays 505. The shift register 355A receives data intended for the Nth LED row (the first row of the Nth scan group) during the Nth scan period. The power supply unit 370 includes a scan controller 700 that couples power to an active scan group in accordance with the address select signal provided by the receiver unit 140 to synchronize the demultiplexer 502 and scan controller 700. A scan select signal or scan timer may also be used to synchronize the scan controller 700. In other embodiments, the scan controller 700 is located outside the power supply unit 370 and may couple current from the current driver 353 to the LED arrays 505. In FIG. 7D, the scan controller 700 is an array of switches 504, which may be implemented, for example, as an array of transistors. The scan controller 700 may also be implemented using one or more demultiplexers.


Referring to FIG. 7E, the difference between this embodiment and the embodiment of FIG. 7D is that the rows of LEDs in LED arrays 505 are organized into only 4 scan groups of at least two rows each. The scan controller 700 switches power to pairs of rows in each of the 4 scan groups. When each of the two illustrated shift registers 355A is full of 16 words of stored digital data, it then provides this data on 16 parallel outputs to a current driver 353, which then controls the current or duty cycle of one row in each of the 4 scan groups. The demultiplexer 502 and the two shift registers 355A and two current drivers 353 are all components of the LED controller 359. In other embodiments, the demultiplexer 502 is located outside multiple LED controllers that each include only one shift register 355A and current driver 353 such that the demultiplexer 502 only activates one LED controller at a time.


Referring again to FIG. 7E, a first shift register provides data to control current to a first row in each of the 4 scan groups, and the second shift register provides data to control current to a second row in each of the 4 scan groups. In other embodiments, other numbers of shift registers may be used, and data for multiple rows in a scan group may be provided by a single scan group.



FIG. 8 illustrates a method of assembling the modular multi-panel display system discussed in various embodiments. A mechanical support structure such as the frame 110 described in FIG. 1 above is assembled taking into account various parameters such as the size and weight of the multi-panel display, location and zoning requirements, and others (box 801). For example, as previously described, the mechanical support structure includes a plurality of vertical bars and horizontal bars. The mechanical support structure may be fabricated from a corrosion resistant material in one or more embodiments. For example, the mechanical support structure may be coated with a weather-proofing coating that prevents the underlying substrate from corroding.


A plurality of LED display panels are mounted on to the mechanical support structure so as to form an integrated display panel that includes an array of rows and columns of LED display panels as described in various embodiments (box 803). Each of the LED display panels is hermetically sealed. Mounting the LED display panels may comprise mounting each LED display panel to a vertical or horizontal beam using an attachment plate.


Each of the LED display panels is electrically connected to a data source and to a power source (box 805). For example, a first LED display panel in each row is electrically coupled to a receiver unit. The other LED display panels in each row may be daisy-chain coupled to an adjacent LED display panel. In embodiments that are dynamically adaptable, no further configuration of the data source is necessary. In pre-configured embodiments, the data source is configured with information related to, for example, the number of LED display panels and the resolution and pitch of each LED display panel in each daisy-chained row.


Since the assembled display structure is light weight, significant assembly advantages can be achieved. For example, the panels can be assembled within a warehouse that is remote from the final location where the display will be utilized. In other words, the panels can be assembled at a first location, shipped to second location and finalized at the second location.


In FIG. 9, a method of configuring and displaying data on the modular multi-panel display system in accordance with pre-configured embodiments of the present invention is illustrated. The panel is initially set up with mechanical and electrical connections in accordance with the method of FIG. 8 (box 901). The controller 400 and receiver unit 140 are then configured with information about individual LED display panels 150, including, for example, the panels' resolutions, pixel counts/local video frame sizes, number of scan groups, and number of rows and columns of each scan group. (box 902). In other embodiments, the modular display system is dynamically adaptable so that the LED display panels 150 send panel information to the receiver unit 140, which forwards some of all of this panel information to the controller 400. In accordance with the panel information, the controller 400 sends data to the receiver unit 140, which then sends data for display at the LED display panels 150 (box 903). As an example, an LED display panel 150 may be removed and replaced with a panel having a different resolution (box 904). The controller 400 and receiver unit 140 are then re-configured by an operator with updated panel information that includes the new resolution information (box 905). In dynamically adaptable embodiments, the LED display panels 150 send panel information to the receiver unit 140 and then to the controller 400. In accordance with this updated panel information, the controller 400 again sends data to the receiver unit 140, which then sends data again for display at the LED display panels 150 (box 906).


Although embodiments of the present invention have been described as being LED display panels, various embodiments of the present invention may also be applied to any type of display panel including organic display including passive-matrix or active-matrix displays, organic transistor based displays, micro-mirror displays, plasma display, liquid crystal display, surface-conduction electron-emitter display, field emission display, and others.


While this invention has been described with reference to illustrative embodiments, this description is not intended to be construed in a limiting sense. Various modifications and combinations of the illustrative embodiments, as well as other embodiments of the invention, will be apparent to persons skilled in the art upon reference to the description. It is therefore intended that the appended claims encompass any such modifications or embodiments.

Claims
  • 1. A modular light-emitting diode (LED) display panel comprising: attachment points for use in attachment as part of a multi-panel modular LED display;a printed circuit board comprising a first side and an opposite second side;a driver circuit electrically coupled to the printed circuit board;a plastic casing attached to the opposite second side of the printed circuit board, a perimeter of the plastic casing being substantially rectangular and having a height and a width; anda display surface comprising a plurality of LEDs arranged as pixels and attached to the first side of the printed circuit board, wherein the pixels are arranged in a rectangular array comprising at least fifty pixels, and wherein each of the pixels of the rectangular array is a surface mount device (SMD) module comprising a plurality of LED devices and a top surface, the top surface being exposed to an external environment,each of the pixels of the rectangular array is spaced from each respective adjacent pixel of the rectangular array by a pitch,wherein the pitch is a predetermined constant number, andwherein the pitch does not depend on the height and the width so that the modular LED display panel can be swapped with another modular LED display panel having a pitch different from the pitch of the modular LED display panel while having the same height as the height of the modular LED display panel and the same width as the width of the modular LED display panel.
  • 2. The modular LED display panel according to claim 1, further comprising a sealing compound overlying the first side of the printed circuit board, wherein the display surface protected from water by the sealing compound.
  • 3. The modular LED display panel according to claim 1, wherein the plastic casing is a water-sealed plastic casing, and wherein the driver circuit is protected from water by the water-sealed plastic casing.
  • 4. The modular LED display panel according to claim 1, wherein the modular LED display panel is configured to be operational when submerged in water up to a depth of at least one meter.
  • 5. The modular LED display panel according to claim 1, wherein the plastic casing comprises plastic sidewalls and a plastic back surface configured to be exposed to the external environment without additional enclosures.
  • 6. The modular LED display panel according to claim 1, wherein the driver circuit is directly attached to the opposite second side of the printed circuit board, and wherein the plastic casing encloses the driver circuit.
  • 7. The modular LED display panel according to claim 1, further comprising: a power supply for powering the plurality of LEDs, the power supply comprising a power converter for converting alternating current (AC) power to direct current (DC) power; anda power supply housing mounted outside the plastic casing, the power supply being disposed in the power supply housing, wherein the power supply housing and the power supply form a power supply unit.
  • 8. The modular LED display panel according to claim 1, further comprising a power supply disposed within the plastic casing.
  • 9. The modular LED display panel according to claim 1, further comprising a flexible cable configured to provide power and data to the plurality of LEDs, the flexible cable comprising a plurality of data connectors surrounded by an end enclosure, each data connector electrically coupled to a corresponding data wire, anda plurality of power connectors surrounded by the end enclosure, each power connector electrically coupled to a corresponding power wire.
  • 10. The modular LED display panel according to claim 1, wherein the height is at least half of the width.
  • 11. The modular LED display panel according to claim 10, wherein, a ratio of the height to the width is at least 1:2 to at most 3:4.
  • 12. The modular LED display panel according to claim 11, wherein the height is half of the width.
  • 13. A modular light-emitting diode (LED) display sub-assembly comprising: a front side and an opposite back side, wherein the front side of the modular LED display sub-assembly comprises a display surface of the modular LED display sub-assembly;a frame comprising a top horizontal member, a bottom horizontal member, a left vertical member, and a right vertical member;a plurality of modular LED display panels attached to the frame, wherein all of the plurality of modular LED display panels have a substantially rectangular perimeter and the same length, width, height, and shape, wherein each of the plurality of modular LED display panels comprises: attachment points facilitating attachment of the modular LED display panel to the frame;a printed circuit board comprising a first side and an opposite second side;a driver circuit electrically coupled to the printed circuit board;a casing attached to the opposite second side of the printed circuit board; anda plurality of LEDs arranged as pixels and attached to the first side of the printed circuit board, wherein the pixels are arranged in a rectangular array comprising at least fifty pixels as part of the display surface, and wherein each of the pixels of the rectangular array is a surface mount device (SMD) module comprising a plurality of LED devices and a top surface, the top surface being exposed to an external environment,each of the pixels of the rectangular array is spaced from each respective adjacent pixel of the rectangular array by a pitch,wherein the pitch is a predetermined constant number, andwherein the pitch does not depend on the height and the width so that each of the plurality of the modular LED display panels can be swapped with another modular LED display panel having a pitch different from the pitch of a modular LED display panel being swapped while having the same height as the height of the modular LED display panel being swapped and the same width as the width of the modular LED display panel being swapped.
  • 14. The modular LED display sub-assembly according to claim 13, wherein the plurality of modular LED display panels comprises a first LED modular display panel attached to the frame and a second LED modular display panel attached the frame, andwherein the pitch of the rectangular array of the first modular LED display panel is different from the pitch of the rectangular array of the second modular LED display panel.
  • 15. The modular LED display sub-assembly according to claim 13, wherein each of the plurality of modular LED display panels further comprises a sealing compound overlying the first side of the printed circuit board, wherein the display surface is protected from water by the sealing compound.
  • 16. The modular LED display sub-assembly according to claim 13, wherein, for each of the plurality of modular LED display panels, the first side of the printed circuit board is water-sealed and the opposite second side of the printed circuit board with the casing is water-sealed.
  • 17. The modular LED display sub-assembly according to claim 13, wherein the modular LED display sub-assembly is configured to be operational when submerged in water up to a depth of at least one meter.
  • 18. The modular LED display sub-assembly according to claim 13, wherein the casing of each of the plurality of modular LED display panels is a plastic casing.
  • 19. The modular LED display sub-assembly according to claim 13, wherein the casing of each of the plurality of modular LED display panels comprises an aluminum casing.
  • 20. The modular LED display sub-assembly according to claim 13, wherein the casing of each of the plurality of modular LED display panels physically contacts the frame.
  • 21. The modular LED display sub-assembly according to claim 13, further comprising: a power supply for powering the plurality of LEDs, the power supply comprising a power converter for converting alternating current (AC) power to direct current (DC) power; anda power supply housing mounted to the frame, the power supply being disposed in the power supply housing, wherein the power supply housing and the power supply form a power supply unit.
  • 22. The modular LED display sub-assembly according to claim 13, wherein each of the modular LED display panels further comprises a flexible cable configured to provide power and data to the plurality of LEDs, the flexible cable comprising a plurality of data connectors surrounded by an end enclosure, each data connector electrically coupled to a corresponding data wire, anda plurality of power connectors surrounded by the end enclosure, each power connector electrically coupled to a corresponding power wire.
  • 23. A modular light-emitting diode (LED) display panel comprising: attachment points for use in attachment as part of a multi-panel modular LED display;a printed circuit board comprising a first side and an opposite second side;a water-sealed plastic casing attached to the opposite second side of the printed circuit board, a perimeter of the water-sealed plastic casing being substantially rectangular and having a height and a width;a driver circuit electrically coupled to the printed circuit board, the driver circuit being directly attached to the opposite second side of the printed circuit board, wherein the water-sealed plastic casing encloses the driver circuit; anda display surface comprising a plurality of surface mount device (SMD) LED modules arranged as pixels and attached to the first side of the printed circuit board, wherein the pixels are arranged in a rectangular array comprising at least fifty pixels, and wherein each of the pixels of the rectangular array is spaced from each respective adjacent pixel of the rectangular array by a pitch,wherein the pitch is a predetermined constant number, andwherein the pitch does not depend on the height and the width so that the modular LED display panel is configured to be swapped with another modular LED display panel having a pitch different from the pitch of the modular LED display panel while having the same height as the height of the modular LED display panel and the same width as the width of the modular LED display panel.
  • 24. The modular LED display panel according to claim 23, wherein the modular LED display panel is configured to be operational when submerged in water up to a depth of at least one meter.
  • 25. The modular LED display panel according to claim 23, further comprising: a power supply for powering the plurality of SMD LED modules, the power supply comprising a power converter for converting alternating current (AC) power to direct current (DC) power; anda power supply housing mounted outside the water-sealed plastic casing, the power supply being disposed in the power supply housing, wherein the power supply housing and the power supply form a power supply unit.
  • 26. The modular LED display panel according to claim 23, further comprising a power supply disposed within the water-sealed plastic casing.
  • 27. The modular LED display panel according to claim 23, further comprising a flexible cable configured to provide power and data to the plurality of SMD LED modules, the flexible cable comprising a plurality of data connectors surrounded by an end enclosure, each data connector electrically coupled to a corresponding data wire, anda plurality of power connectors surrounded by the end enclosure, each power connector electrically coupled to a corresponding power wire.
  • 28. The modular LED display panel according to claim 23, wherein the height is at least half of the width.
  • 29. The modular LED display panel according to claim 28, wherein, a ratio of the height to the width is at least 1:2 to at most 3:4.
  • 30. The modular LED display panel according to claim 29, wherein the height is half of the width.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a continuation application of U.S. application Ser. No. 15/409,288, filed on Jan. 18, 2017, which is a continuation application of U.S. application Ser. No. 14/550,685, filed on Nov. 21, 2014, now issued as U.S. Pat. No. 9,582,237, which claims the benefit of U.S. Provisional Application No. 62/065,510, filed on Oct. 17, 2014, U.S. Provisional Application No. 62/025,463, filed on Jul. 16, 2014, and U.S. Provisional Application No. 61/922,631, filed on Dec. 31, 2013, which applications are hereby incorporated herein by reference.

US Referenced Citations (402)
Number Name Date Kind
1816254 Heath Jul 1931 A
3150455 Indorf Sep 1964 A
4457090 McDonough Jul 1984 A
4497125 Hutchinson Feb 1985 A
4637674 Kobler Jan 1987 A
4782336 Bailey Nov 1988 A
4964231 De Maat et al. Oct 1990 A
5036248 McEwan et al. Jul 1991 A
5172504 De Maat et al. Dec 1992 A
5313729 Sakai et al. May 1994 A
5341088 Davis Aug 1994 A
5379202 Daun Jan 1995 A
5410328 Yoksza et al. Apr 1995 A
5446440 Gleason et al. Aug 1995 A
5523769 Lauer et al. Jun 1996 A
5563470 Li Oct 1996 A
5600910 Blackburn Feb 1997 A
5722767 Lin Mar 1998 A
5785415 Matsumura et al. Jul 1998 A
5796376 Banks Aug 1998 A
5900850 Bailey et al. May 1999 A
5914698 Nicholson et al. Jun 1999 A
5949581 Kurtenbach et al. Sep 1999 A
5990802 Maskeny Nov 1999 A
5991153 Heady Nov 1999 A
6045240 Hochstein Apr 2000 A
6065854 West et al. May 2000 A
6114632 Planas, Sr. et al. Sep 2000 A
6150996 Nicholson et al. Nov 2000 A
6162849 Zhuo et al. Dec 2000 A
6169632 Kurtenbach et al. Jan 2001 B1
6175342 Nicholson et al. Jan 2001 B1
6208073 Wang et al. Mar 2001 B1
6237290 Tokimoto et al. May 2001 B1
6314669 Tucker Nov 2001 B1
6329593 Yang Dec 2001 B1
6335829 Van De Voorde Jan 2002 B1
6362801 Yuhara Mar 2002 B1
6364507 Yang Apr 2002 B1
6414650 Nicholson et al. Jul 2002 B1
6441943 Roberts et al. Aug 2002 B1
6445373 Yamamoto Sep 2002 B1
6473002 Hutchison Oct 2002 B1
6550521 McNabb Apr 2003 B1
6558021 Wu et al. May 2003 B2
6570548 Smith May 2003 B2
6582100 Hochstein et al. Jun 2003 B1
6595671 Lefebvre et al. Jul 2003 B2
6608264 Fouladpour Aug 2003 B1
6634124 Bierschbach Oct 2003 B1
6657605 Boldt, Jr. et al. Dec 2003 B1
6677918 Yuhara et al. Jan 2004 B2
6693551 Pederson Feb 2004 B2
6731077 Cheng May 2004 B1
6737983 Temple May 2004 B1
6741222 Tucker May 2004 B1
6810612 Huang Nov 2004 B2
6813853 Tucker Nov 2004 B1
6819303 Berger et al. Nov 2004 B1
6834001 Myono Dec 2004 B2
6924973 Kim Aug 2005 B2
6932495 Sloan et al. Aug 2005 B2
6956541 Mcclintock Oct 2005 B2
6956545 Mcclintock et al. Oct 2005 B2
6998538 Fetterolf, Sr. et al. Feb 2006 B1
7055271 Lutz et al. Jun 2006 B2
7064674 Pederson Jun 2006 B2
7072407 Schurig Jul 2006 B2
7080927 Feuerborn et al. Jul 2006 B2
7086188 Tsao Aug 2006 B2
7091933 McClintock et al. Aug 2006 B2
7102601 Devos et al. Sep 2006 B2
7131226 Gray et al. Nov 2006 B2
7138659 Raos et al. Nov 2006 B2
7144748 Popovich Dec 2006 B2
7161558 Eidem et al. Jan 2007 B1
7170480 Boldt, Jr. et al. Jan 2007 B2
7191506 Gray et al. Mar 2007 B2
7204602 Archer Apr 2007 B2
7207693 Ratcliffe Apr 2007 B2
7210957 Mrakovich et al. May 2007 B2
7220022 Allen et al. May 2007 B2
7244044 Liao Jul 2007 B2
7244058 DiPenti et al. Jul 2007 B2
7245279 Wang Jul 2007 B2
7267459 Matheson Sep 2007 B2
7268501 Chen Sep 2007 B1
7287878 Miller Oct 2007 B2
7311431 Chew et al. Dec 2007 B2
7319408 Temple Jan 2008 B2
7325955 Lucas et al. Feb 2008 B2
7334361 Schrimpf et al. Feb 2008 B2
7336195 Van De Ven Feb 2008 B2
7355562 Schubert et al. Apr 2008 B2
7377669 Farmer et al. May 2008 B2
7450085 Thielemans et al. Nov 2008 B2
7473020 Pickering Jan 2009 B2
7495576 Maskeny et al. Feb 2009 B2
7502950 Brands Mar 2009 B1
7520628 Sloan et al. Apr 2009 B1
7543976 Abogabir Jun 2009 B2
7549777 Huang Jun 2009 B2
7557781 Chuang et al. Jul 2009 B2
7572043 Kolstee et al. Aug 2009 B2
7576707 Nishimura Aug 2009 B2
7605772 Syrstad Oct 2009 B2
7614771 Mckechnie et al. Nov 2009 B2
7665874 Chadwell et al. Feb 2010 B2
7674000 Valerio, Jr. et al. Mar 2010 B2
7688280 Callegari et al. Mar 2010 B2
7694444 Miller et al. Apr 2010 B2
7703941 Lee Apr 2010 B2
7774968 Nearman et al. Aug 2010 B2
7779568 Gettelfinger et al. Aug 2010 B2
7797865 Patel et al. Sep 2010 B2
7823308 Munson et al. Nov 2010 B1
7868903 Wendler et al. Jan 2011 B2
7869198 Nearman et al. Jan 2011 B1
7907133 Joffer et al. Mar 2011 B2
7926213 Kludt et al. Apr 2011 B1
7928968 Shon et al. Apr 2011 B2
7950174 Xu May 2011 B2
7971378 Campoy Odena Jul 2011 B2
7972031 Ray et al. Jul 2011 B2
7994516 Chan et al. Aug 2011 B2
8007121 Elliott et al. Aug 2011 B2
8016452 Dunn Sep 2011 B2
8066403 Sanfilippo et al. Nov 2011 B2
8074387 Mancuso Dec 2011 B2
8081145 Ronkholz et al. Dec 2011 B2
8092046 Wu et al. Jan 2012 B2
8104204 Syrstad Jan 2012 B1
8111208 Brown Feb 2012 B2
8113687 Villard et al. Feb 2012 B2
8115229 Christy Feb 2012 B2
8122627 Miller Feb 2012 B2
8130175 Joffer et al. Mar 2012 B1
8136277 Patterson et al. Mar 2012 B2
8136279 Nearman et al. Mar 2012 B1
8154864 Nearman et al. Apr 2012 B1
8156672 Xu Apr 2012 B2
8168990 Christy May 2012 B2
8172097 Nearman et al. May 2012 B2
8183794 Grajcar May 2012 B2
8184114 Oh et al. May 2012 B2
8228261 Callegari et al. Jul 2012 B2
8246220 Epstein et al. Aug 2012 B2
8269700 Joffer et al. Sep 2012 B2
8281344 Mathias Oct 2012 B1
8301939 Gloege et al. Oct 2012 B2
8314433 Christy Nov 2012 B2
8344410 Wendler et al. Jan 2013 B2
8350788 Nearman et al. Jan 2013 B1
8362696 Zheng Jan 2013 B2
8368112 Chan et al. Feb 2013 B2
D681263 Van Eekeren et al. Apr 2013 S
8410993 Jenks et al. Apr 2013 B2
8414149 Nearman Apr 2013 B2
8434898 Sanfilippo et al. May 2013 B2
8465178 Wilcox et al. Jun 2013 B2
8522494 Ward Sep 2013 B2
8552928 Wendler et al. Oct 2013 B2
8558755 Kharrati et al. Oct 2013 B2
8581269 Kuk et al. Nov 2013 B2
8599108 Kline et al. Dec 2013 B2
8604509 Wendler et al. Dec 2013 B2
8610779 Wu Dec 2013 B2
8624425 Feng et al. Jan 2014 B2
8648774 Kline et al. Feb 2014 B2
8678612 Jasmin, Jr. et al. Mar 2014 B2
8697458 Nolan et al. Apr 2014 B2
8702048 Kludt et al. Apr 2014 B2
8702262 Park et al. Apr 2014 B2
8714665 Campagna et al. May 2014 B2
8740408 Yoon et al. Jun 2014 B2
8766880 Kharrati et al. Jul 2014 B2
8794795 Yaphe et al. Aug 2014 B2
8803766 Kline et al. Aug 2014 B2
8824124 Carlson et al. Sep 2014 B1
8824125 Cox et al. Sep 2014 B1
8858028 Kim Oct 2014 B2
8870395 Wu Oct 2014 B2
8922458 Sefton et al. Dec 2014 B2
8929083 Cox et al. Jan 2015 B2
8932123 Murayama et al. Jan 2015 B2
8963895 Cope et al. Feb 2015 B2
9013367 Cope Apr 2015 B2
9018846 Chew Apr 2015 B2
9047039 Perkins et al. Jun 2015 B2
9047791 Cox et al. Jun 2015 B2
9052085 Chan Jun 2015 B2
9058755 Cope et al. Jun 2015 B2
9069519 Hall Jun 2015 B1
9071809 Cope et al. Jun 2015 B2
9108261 Patrick Aug 2015 B1
9131600 Hall Sep 2015 B1
9134773 Hall Sep 2015 B2
9164722 Hall Oct 2015 B2
9167191 Kondo et al. Oct 2015 B2
9195281 Hall Nov 2015 B2
9207904 Hall Dec 2015 B2
9228732 Li Jan 2016 B2
9234652 Wu Jan 2016 B2
9243790 Speer et al. Jan 2016 B2
9330589 Cope et al. May 2016 B2
9349306 Hall May 2016 B2
9412926 Keller et al. Aug 2016 B2
9416551 Hall Aug 2016 B2
9494302 Shen et al. Nov 2016 B2
9528283 Hall Dec 2016 B2
9535650 Hall Jan 2017 B2
9538588 Mutschelknaus et al. Jan 2017 B2
9546781 Myers Jan 2017 B2
9587814 Carney et al. Mar 2017 B2
9615474 He et al. Apr 2017 B2
9642272 Hall May 2017 B1
9655267 Cope et al. May 2017 B2
9711690 Li et al. Jul 2017 B2
9863586 Yang et al. Jan 2018 B2
9916782 Hall Mar 2018 B2
9964261 Ying et al. May 2018 B2
20010037591 Nicholson et al. Nov 2001 A1
20020122134 Kalua Sep 2002 A1
20020126086 Takeuchi et al. Sep 2002 A1
20020176267 Tanaka et al. Nov 2002 A1
20030034963 Moon et al. Feb 2003 A1
20030058191 Yuhara et al. Mar 2003 A1
20030058666 Myono Mar 2003 A1
20030117420 Ando et al. Jun 2003 A1
20030120236 Graef et al. Jun 2003 A1
20030146882 Ogino et al. Aug 2003 A1
20030156406 Galli Aug 2003 A1
20030156407 Galli Aug 2003 A1
20030158886 Walls et al. Aug 2003 A1
20030167666 Close Sep 2003 A1
20030193816 Rahn Oct 2003 A1
20030210236 Martin et al. Nov 2003 A1
20040008155 Cok Jan 2004 A1
20040040248 Vilnes Mar 2004 A1
20040090391 Kondo May 2004 A1
20040104871 Boldt, Jr. et al. Jun 2004 A1
20040123501 Safavi et al. Jul 2004 A1
20040186723 Mizutani et al. Sep 2004 A1
20040196049 Yano et al. Oct 2004 A1
20040222941 Wong et al. Nov 2004 A1
20040240230 Kitajima et al. Dec 2004 A1
20050052373 Devos et al. Mar 2005 A1
20050052374 Devos et al. Mar 2005 A1
20050052375 Devos et al. Mar 2005 A1
20050078104 Matthies et al. Apr 2005 A1
20050081414 Lutz et al. Apr 2005 A1
20050116667 Mueller et al. Jun 2005 A1
20050134525 Tanghe et al. Jun 2005 A1
20050134526 Willem et al. Jun 2005 A1
20050151708 Farmer et al. Jul 2005 A1
20050178034 Schubert et al. Aug 2005 A1
20050189311 Colby et al. Sep 2005 A1
20050190520 Schomaker et al. Sep 2005 A1
20050212717 Baumstark Sep 2005 A1
20050213328 Matheson Sep 2005 A1
20050231949 Kim et al. Oct 2005 A1
20050259036 Callegari et al. Nov 2005 A1
20050259418 Callegari et al. Nov 2005 A1
20050264471 Yamazaki et al. Dec 2005 A1
20060017658 Biondo et al. Jan 2006 A1
20060028594 Chou Feb 2006 A1
20060031720 Choi Feb 2006 A1
20060039142 Temple Feb 2006 A1
20060055641 Robertus et al. Mar 2006 A1
20060056169 Lodhie et al. Mar 2006 A1
20060132048 Popovich Jun 2006 A1
20060139917 Ward Jun 2006 A1
20060164587 Oh Jul 2006 A1
20060164758 Oh Jul 2006 A1
20060170614 Tzong et al. Aug 2006 A1
20060171148 Huang Aug 2006 A1
20060185612 Bonner et al. Aug 2006 A1
20060227003 Ven Oct 2006 A1
20060241878 Jung et al. Oct 2006 A1
20060242871 Kondo et al. Nov 2006 A1
20060243948 Ishiwa et al. Nov 2006 A1
20060244681 Nakajima Nov 2006 A1
20060254103 Strick et al. Nov 2006 A1
20060256033 Chan et al. Nov 2006 A1
20060262533 Lin et al. Nov 2006 A1
20060274493 Richardson et al. Dec 2006 A1
20060279493 Syrstad Dec 2006 A1
20070000849 Lutz et al. Jan 2007 A1
20070008259 Barker Jan 2007 A1
20070068055 Segan et al. Mar 2007 A1
20070218751 Ward Sep 2007 A1
20070241988 Zerphy et al. Oct 2007 A1
20070247842 Zampini et al. Oct 2007 A1
20070279314 Brown Dec 2007 A1
20080047184 Dean Feb 2008 A1
20080060234 Chou et al. Mar 2008 A1
20080078733 Nearman et al. Apr 2008 A1
20080130282 Negley Jun 2008 A1
20080141571 Kottwitz Jun 2008 A1
20080141572 Tomich et al. Jun 2008 A1
20080263924 Nearman et al. Oct 2008 A1
20080266206 Nelson et al. Oct 2008 A1
20080285087 Perkins et al. Nov 2008 A1
20080303747 Velicescu Dec 2008 A1
20090009103 Mckechnie et al. Jan 2009 A1
20090009945 Johnson et al. Jan 2009 A1
20090009997 Sanfilippo et al. Jan 2009 A1
20090015997 Barajas et al. Jan 2009 A1
20090021497 Wendler et al. Jan 2009 A1
20090021532 Gloege et al. Jan 2009 A1
20090024929 Gloege et al. Jan 2009 A1
20090058760 Aoki Mar 2009 A1
20090073080 Meersman Mar 2009 A1
20090096711 Jang et al. Apr 2009 A1
20090121986 Tu et al. May 2009 A1
20090128461 Geldard et al. May 2009 A1
20090146910 Gardner Jun 2009 A1
20090146918 Kline et al. Jun 2009 A1
20090146919 Kline et al. Jun 2009 A1
20090147028 Sefton et al. Jun 2009 A1
20090190353 Barker Jul 2009 A1
20090241388 Dunn Oct 2009 A1
20090251391 Ng et al. Oct 2009 A1
20090284978 Elliott et al. Nov 2009 A1
20090289160 Kludt et al. Nov 2009 A1
20090296387 Reisenauer et al. Dec 2009 A1
20090322251 Hilgers Dec 2009 A1
20100019535 Chang et al. Jan 2010 A1
20100026973 Hemphill et al. Feb 2010 A1
20100045689 Hsieh Feb 2010 A1
20100073914 Park et al. Mar 2010 A1
20100090934 Elliott et al. Apr 2010 A1
20100109571 Nishino et al. May 2010 A1
20100123732 Jenks et al. May 2010 A1
20100135022 Deguara Jun 2010 A1
20100245109 Ashoff et al. Sep 2010 A1
20100251583 Brown et al. Oct 2010 A1
20100270582 Nolan et al. Oct 2010 A1
20100288895 Shamie Nov 2010 A1
20100295424 Alexander Nov 2010 A1
20100295760 Somerville Nov 2010 A1
20100309185 Koester et al. Dec 2010 A1
20110002129 Zheng et al. Jan 2011 A1
20110019414 Jiang et al. Jan 2011 A1
20110025696 Wyatt et al. Feb 2011 A1
20110031513 Hsieh et al. Feb 2011 A1
20110051409 Nearman Mar 2011 A1
20110057215 Chen et al. Mar 2011 A1
20110072697 Miller Mar 2011 A1
20110074833 Murayama et al. Mar 2011 A1
20110085321 Eli Apr 2011 A1
20110089824 Zheng Apr 2011 A1
20110090138 Zheng Apr 2011 A1
20110096568 Schattinger et al. Apr 2011 A1
20110116232 Brown et al. May 2011 A1
20110133659 Li et al. Jun 2011 A1
20110134640 Bertele Jun 2011 A1
20110138663 Chen Jun 2011 A1
20110140999 Beland et al. Jun 2011 A1
20110168653 Garrett et al. Jul 2011 A1
20110181493 Williams et al. Jul 2011 A1
20110181495 Chu et al. Jul 2011 A1
20110188235 Bollmann Aug 2011 A1
20110188981 Bonn et al. Aug 2011 A1
20110194284 Quaal et al. Aug 2011 A1
20110205757 Whyte Aug 2011 A1
20110216482 Moscovitch et al. Sep 2011 A1
20110219650 Wright et al. Sep 2011 A1
20110235332 Cheung Sep 2011 A1
20110267328 Venkatasubramanian et al. Nov 2011 A1
20110267699 Wu Nov 2011 A1
20120005563 Gloege et al. Jan 2012 A1
20120019490 Huang Jan 2012 A1
20120021873 Brunner Jan 2012 A1
20120062540 Quadri et al. Mar 2012 A1
20120112235 Preuschl et al. May 2012 A1
20120206277 Cai Aug 2012 A1
20120218753 Joffer et al. Aug 2012 A1
20120218758 Wang et al. Aug 2012 A1
20120236509 Cope et al. Sep 2012 A1
20120299480 Peting et al. Nov 2012 A1
20120319926 Koebrich et al. Dec 2012 A1
20130002634 Wendler et al. Jan 2013 A1
20130027861 Rosenau et al. Jan 2013 A1
20130182440 Ferrie et al. Jul 2013 A1
20130200821 Yoneoka et al. Aug 2013 A1
20130229797 Nearman Sep 2013 A1
20130271973 Rycyna, III Oct 2013 A1
20130279161 Pickard et al. Oct 2013 A1
20130321387 Ohe Dec 2013 A1
20140085885 Hatano Mar 2014 A1
20140153241 Templeton Jun 2014 A1
20140160363 Mutschelknaus et al. Jun 2014 A1
20140259645 Cox et al. Sep 2014 A1
20140267784 Rykowski Sep 2014 A1
20140267896 Cox et al. Sep 2014 A1
20140268565 Cox Sep 2014 A1
20140285963 Vasilevsky Sep 2014 A1
20140301088 Lu et al. Oct 2014 A1
20150145851 Takeda et al. May 2015 A1
20150205565 Koguchi Jul 2015 A1
20160086521 Hall Mar 2016 A1
Foreign Referenced Citations (361)
Number Date Country
2520549 Nov 2002 CN
2538040 Feb 2003 CN
2544372 Apr 2003 CN
2549557 May 2003 CN
2646812 Oct 2004 CN
1556516 Dec 2004 CN
2674579 Jan 2005 CN
2706836 Jun 2005 CN
2727885 Sep 2005 CN
2733499 Oct 2005 CN
1739134 Feb 2006 CN
3509179 Feb 2006 CN
2822095 Sep 2006 CN
2824292 Oct 2006 CN
2834111 Nov 2006 CN
2874691 Feb 2007 CN
2899008 May 2007 CN
2906921 May 2007 CN
200956227 Oct 2007 CN
101250936 Aug 2008 CN
101294700 Oct 2008 CN
101334953 Dec 2008 CN
101404316 Apr 2009 CN
201226214 Apr 2009 CN
201229746 Apr 2009 CN
201229747 Apr 2009 CN
201233695 May 2009 CN
201247561 May 2009 CN
201262959 Jun 2009 CN
201307381 Sep 2009 CN
201345201 Nov 2009 CN
101629707 Jan 2010 CN
100592355 Feb 2010 CN
101699154 Apr 2010 CN
201438351 Apr 2010 CN
101701674 May 2010 CN
201449702 May 2010 CN
201465466 May 2010 CN
101355132 Jun 2010 CN
101737646 Jun 2010 CN
101737648 Jun 2010 CN
201539725 Aug 2010 CN
201540699 Aug 2010 CN
201550216 Aug 2010 CN
101834173 Sep 2010 CN
201575434 Sep 2010 CN
201576411 Sep 2010 CN
201576412 Sep 2010 CN
201576430 Sep 2010 CN
201577260 Sep 2010 CN
201584129 Sep 2010 CN
101887940 Nov 2010 CN
201622789 Nov 2010 CN
201651984 Nov 2010 CN
201655193 Nov 2010 CN
201655196 Nov 2010 CN
201662978 Dec 2010 CN
201681560 Dec 2010 CN
101640237 Jan 2011 CN
201748196 Feb 2011 CN
201748199 Feb 2011 CN
101546801 Mar 2011 CN
201765771 Mar 2011 CN
201796561 Apr 2011 CN
201803140 Apr 2011 CN
201803144 Apr 2011 CN
201804915 Apr 2011 CN
201812454 Apr 2011 CN
201812456 Apr 2011 CN
201838265 May 2011 CN
201845522 May 2011 CN
102110764 Jun 2011 CN
201868043 Jun 2011 CN
201868044 Jun 2011 CN
102136229 Jul 2011 CN
201904981 Jul 2011 CN
201910212 Jul 2011 CN
201910213 Jul 2011 CN
102163392 Aug 2011 CN
102168702 Aug 2011 CN
201916876 Aug 2011 CN
201918125 Aug 2011 CN
201925281 Aug 2011 CN
201946238 Aug 2011 CN
201954484 Aug 2011 CN
201956020 Aug 2011 CN
201965586 Sep 2011 CN
201965861 Sep 2011 CN
201973531 Sep 2011 CN
201973623 Sep 2011 CN
201975022 Sep 2011 CN
201976382 Sep 2011 CN
102214783 Oct 2011 CN
202012808 Oct 2011 CN
202025488 Nov 2011 CN
202042136 Nov 2011 CN
202049690 Nov 2011 CN
202058388 Nov 2011 CN
202067478 Dec 2011 CN
202084254 Dec 2011 CN
102314812 Jan 2012 CN
202102651 Jan 2012 CN
202134169 Feb 2012 CN
102368367 Mar 2012 CN
202171165 Mar 2012 CN
102418912 Apr 2012 CN
202230681 May 2012 CN
202230682 May 2012 CN
102509520 Jun 2012 CN
202266799 Jun 2012 CN
101872828 Jul 2012 CN
101872829 Jul 2012 CN
102544319 Jul 2012 CN
202307009 Jul 2012 CN
102623618 Aug 2012 CN
102623621 Aug 2012 CN
202383944 Aug 2012 CN
102682669 Sep 2012 CN
102682671 Sep 2012 CN
202422683 Sep 2012 CN
202423377 Sep 2012 CN
102737554 Oct 2012 CN
102738366 Oct 2012 CN
102760392 Oct 2012 CN
202502685 Oct 2012 CN
101872827 Nov 2012 CN
102168702 Nov 2012 CN
102800765 Nov 2012 CN
202521184 Nov 2012 CN
202523329 Nov 2012 CN
202523334 Nov 2012 CN
202523337 Nov 2012 CN
202523345 Nov 2012 CN
202523349 Nov 2012 CN
202523351 Nov 2012 CN
202523374 Nov 2012 CN
202523377 Nov 2012 CN
202549195 Nov 2012 CN
202563838 Nov 2012 CN
102818152 Dec 2012 CN
202581065 Dec 2012 CN
202584617 Dec 2012 CN
202584622 Dec 2012 CN
202584625 Dec 2012 CN
202601717 Dec 2012 CN
202602105 Dec 2012 CN
202615728 Dec 2012 CN
202632682 Dec 2012 CN
202646254 Jan 2013 CN
202650452 Jan 2013 CN
202650463 Jan 2013 CN
202656470 Jan 2013 CN
202677752 Jan 2013 CN
202677753 Jan 2013 CN
202679828 Jan 2013 CN
202691652 Jan 2013 CN
202707716 Jan 2013 CN
202713825 Jan 2013 CN
302301505 Jan 2013 CN
302301906 Jan 2013 CN
101740706 Feb 2013 CN
102185078 Feb 2013 CN
102930785 Feb 2013 CN
202721932 Feb 2013 CN
202736790 Feb 2013 CN
202743586 Feb 2013 CN
202758554 Feb 2013 CN
202758555 Feb 2013 CN
102163392 Mar 2013 CN
103000088 Mar 2013 CN
202795924 Mar 2013 CN
202816279 Mar 2013 CN
202838846 Mar 2013 CN
103022318 Apr 2013 CN
103065559 Apr 2013 CN
201689615 Apr 2013 CN
202855217 Apr 2013 CN
202887627 Apr 2013 CN
202905030 Apr 2013 CN
202905033 Apr 2013 CN
202905040 Apr 2013 CN
202905043 Apr 2013 CN
202905058 Apr 2013 CN
302417520 Apr 2013 CN
302417587 Apr 2013 CN
103124483 May 2013 CN
101976720 Jun 2013 CN
103177664 Jun 2013 CN
103177665 Jun 2013 CN
202976707 Jun 2013 CN
101894898 Jul 2013 CN
103196051 Jul 2013 CN
203038588 Jul 2013 CN
203038597 Jul 2013 CN
203038598 Jul 2013 CN
203038599 Jul 2013 CN
203055361 Jul 2013 CN
203055365 Jul 2013 CN
203102774 Jul 2013 CN
203102775 Jul 2013 CN
103268738 Aug 2013 CN
203136407 Aug 2013 CN
203165372 Aug 2013 CN
103280164 Sep 2013 CN
203176910 Sep 2013 CN
203192335 Sep 2013 CN
203202526 Sep 2013 CN
203231179 Sep 2013 CN
103346238 Oct 2013 CN
103354067 Oct 2013 CN
203232680 Oct 2013 CN
203240341 Oct 2013 CN
203242660 Oct 2013 CN
203250487 Oct 2013 CN
203250491 Oct 2013 CN
302600355 Oct 2013 CN
302607812 Oct 2013 CN
302607814 Oct 2013 CN
103413497 Nov 2013 CN
103456244 Dec 2013 CN
103456247 Dec 2013 CN
203325368 Dec 2013 CN
203336167 Dec 2013 CN
203339216 Dec 2013 CN
203339217 Dec 2013 CN
302682535 Dec 2013 CN
102682669 Jan 2014 CN
203386338 Jan 2014 CN
203415183 Jan 2014 CN
302705434 Jan 2014 CN
302716898 Jan 2014 CN
302716899 Jan 2014 CN
203490915 Mar 2014 CN
203491298 Mar 2014 CN
203491299 Mar 2014 CN
302761262 Mar 2014 CN
302761263 Mar 2014 CN
103730068 Apr 2014 CN
203526759 Apr 2014 CN
203528543 Apr 2014 CN
203535913 Apr 2014 CN
203571647 Apr 2014 CN
203571663 Apr 2014 CN
203573584 Apr 2014 CN
203573585 Apr 2014 CN
203573586 Apr 2014 CN
203573592 Apr 2014 CN
302789638 Apr 2014 CN
302790357 Apr 2014 CN
302790361 Apr 2014 CN
203606693 May 2014 CN
203607042 May 2014 CN
203607050 May 2014 CN
203631082 Jun 2014 CN
203644330 Jun 2014 CN
103956136 Jul 2014 CN
203690339 Jul 2014 CN
203743962 Jul 2014 CN
302864854 Jul 2014 CN
104009145 Aug 2014 CN
104009146 Aug 2014 CN
203787033 Aug 2014 CN
302917815 Aug 2014 CN
203849976 Sep 2014 CN
203910233 Oct 2014 CN
203932101 Nov 2014 CN
203950801 Nov 2014 CN
203950834 Nov 2014 CN
204005499 Dec 2014 CN
204117521 Jan 2015 CN
204117522 Jan 2015 CN
303084137 Jan 2015 CN
303084275 Jan 2015 CN
204141352 Feb 2015 CN
204143784 Feb 2015 CN
204229808 Mar 2015 CN
102814429 Apr 2015 CN
204257141 Apr 2015 CN
204285400 Apr 2015 CN
204288709 Apr 2015 CN
303169413 Apr 2015 CN
303169414 Apr 2015 CN
303169875 Apr 2015 CN
303170948 Apr 2015 CN
303227404 May 2015 CN
204423826 Jun 2015 CN
103022318 Jul 2015 CN
204463732 Jul 2015 CN
204496855 Jul 2015 CN
303276898 Jul 2015 CN
303278324 Jul 2015 CN
204534276 Aug 2015 CN
303316383 Aug 2015 CN
303339773 Aug 2015 CN
303339774 Aug 2015 CN
103032767 Sep 2015 CN
103337224 Sep 2015 CN
204613541 Sep 2015 CN
204634223 Sep 2015 CN
204665178 Sep 2015 CN
103544896 Oct 2015 CN
103557498 Oct 2015 CN
204695705 Oct 2015 CN
303405173 Oct 2015 CN
103280164 Feb 2016 CN
103456244 Feb 2016 CN
105447283 Mar 2016 CN
103367612 Apr 2016 CN
103219447 May 2016 CN
105632354 Jun 2016 CN
205406020 Jul 2016 CN
205406022 Jul 2016 CN
205408340 Jul 2016 CN
303746225 Jul 2016 CN
103337583 Aug 2016 CN
103441209 Aug 2016 CN
103794702 Aug 2016 CN
205447200 Aug 2016 CN
205487176 Aug 2016 CN
205487177 Aug 2016 CN
303776642 Aug 2016 CN
303805061 Aug 2016 CN
205555209 Sep 2016 CN
104143315 Nov 2016 CN
103730563 Apr 2017 CN
304222223 Jul 2017 CN
103472817 Dec 2017 CN
0863496 Sep 1998 EP
863496 Sep 1998 EP
1469450 Oct 2004 EP
2956925 Dec 2015 EP
1585394 Mar 1981 GB
06337644 Dec 1994 JP
0816114 Jan 1996 JP
1138905 Feb 1999 JP
1152878 Feb 1999 JP
2001242796 Sep 2001 JP
2001337626 Dec 2001 JP
2002368284 Dec 2002 JP
2003092195 Mar 2003 JP
2004354571 Dec 2004 JP
2005062461 Mar 2005 JP
2005084683 Mar 2005 JP
2006023464 Jan 2006 JP
2006221067 Aug 2006 JP
2007533066 Nov 2007 JP
2010181721 Aug 2010 JP
20020069818 Sep 2002 KR
0223956 Mar 2002 WO
2004019657 Mar 2004 WO
2004042690 May 2004 WO
2005083660 Sep 2005 WO
2007061496 May 2007 WO
2007083879 Jul 2007 WO
2008043025 Apr 2008 WO
2008157262 Dec 2008 WO
2009000896 Dec 2008 WO
2011062570 May 2011 WO
2013159655 Oct 2013 WO
2014005600 Jan 2014 WO
2015103079 Jul 2015 WO
Non-Patent Literature Citations (278)
Entry
NEC, “LED Wall Display,” Indoor and Outdoor LED Wall Display for Professional-Grade Digital Signage, Empowered Innovation, pp. 1114-ITC0007950-1114-ITC0007951.
“DC-DC Converter Tutorial,” Maxim Integrated, Tutorial 2031, Nov. 29, 2001, 14 Pages.
“Magic Cube LED Panel for Indoor/Outdoor,” ROE Creative Display, pp. RESP_PRIORART-1114-ITC0002334-RESP_PRIORART-1114-ITC0002340.
“Magic Cube LED Panel for Indoor/Outdoor,” Roe Creative Display, pp. RESP_PRIORART-1114-ITC0007759-RESP_PRIORART-1114-ITC0007762.
“4100 Series Digital Billboard,” Installation Manual, Daktronics, DD1914625, Sep. 4, 2011, 51 pages.
“4100 Series Digital Billboard,” Daktronics Service Manual, DD1922557, Jan. 4, 2012, 37 pages.
“Barco LiveDots Introduces 14mm Transparent LED Display,” Light Sound Journal.com, Jun. 7, 2013, 2 pages.
“Building a DC-DC Power Supply that Works,” Maxim Integrated, Tutorial 1897, Sep. 22, 2010, 10 pages.
“Element Labs Introduces Revolutionary Cobra TM Technology Platform,” LEDs Magazine, Oct. 24, 2008, 3 pages.
“How to Apply the Acrylic Conformal Coating,”MG Chemicals, Mar. 29, 2011, pp. 1-3, Ver. 1.
“Avago Technologies Introduces Industry's First Water Resistant High-Brightness Surface Mount Tricolor LEDs,” LED, The Global Information Hub for Lighting Technologies, Products, Materials and Tools, Jan. 28, 2010 7 Pages.
“N2 System Modular LED Sign System,”Cirrus LED Systems, 2 pages.
Clarendon Press Oxford, “The Compact Oxford English Dictionary,” Second Edition, Complete Text Reproduced Micrographically, pp. PRIORART-ITC_001677-PRIORART-ITC_001679.
“DiColor I-Series Pro Touring LED Displays,” Mega Systems Inc., 7 pages.
“EVLED Media Screen Series,” Elation Professional, 8 Pages.
Hu, Run, et al., “Study on the Optical Properties of Conformal Coating Light-Emitting Diode by monte Carlo Simulation,” IEEE Photonics technology Letter, Nov. 15, 2011, vol. 23, No. 22, pp. 1673-1675.
LED Industry News, “Multimedia Farms Selects Barco for Portable LED Display Solutions,” LIGHTimes Online-LED Industry News, Aug. 3, 2010, pp. 1114-ITC0009454-1114-ITC0009456.
LED,“New Fully IP-65 Rated Indoor/Outdoor LED Display From PixLED,” The Global Information Hub for Lighting Technologies, Products, Materials & Tools, Jan. 25, 2012, pp. 1114-ITC0009457-1114-ITC0009463.
Media Planet, “Digital Place-Based Media,”Apr. 2010, No. 3, pp. 1114-ITC0009079-1114-ITC0009084.
“Mirage Semi-Transparent Led Curtain,” Magic Digital Lighting, Clay Paky, www.claypaky.it, pp. 1114-ITC0004190-1114-ITC0004197.
NEMA, “Degrees of Protection Provided by Enclosures (IP Code),”Ansi/IEC 60529-2004 (R2011), NEMA Standards Publication,Nov. 3, 2004, pp. ITC-001872-ITC-001928.
Nichia Corporation, “Nichia Releases SMD LED for Outdoor Displays,” LIGHTimes Online—LED Industry News, LED Applications, Single and Multi-Chip Packaged LEDs, Jun. 18, 2012, pp. 1114-ITC0009464-1114-ITC0009466.
Barco, Inc., “C11 Lightweight, indoor/outdoor LED video display,” company website product technical specification sheet, M00360-R02-0111-DS Jan. 2011, 2 pages, Kortrijk, Belgium.
Barco, Inc., “C8,” company website product specification sheet, Dec. 16, 2015, 3 pages.
Cirrus LED Systems, “N2 & X2 System Modular LED Sign System,” product specification sheet, E352796, 1 page, San Rafael, United States.
Cirrus LED Systems, “Introducing N2,” product brochure, 8 pages, San Rafael, United States.
Lang, Justin, “LED Display Panels,” Buyers Guide, Nov. 2013, pp. 47-49, plsn.com.
Barco, Inc., “Barco LiveDots adds new member to its C-series LED display family,” company website news press release, Apr. 8, 2013, 3 pages, Kortrijk, Belgium.
Barco, Inc., “PXL System User Manual,”Revised Jun. 15, 2010, 196 pages.
Barco, Inc., “Say hello to our brand-new C8 LED display!,” company website news press release, Apr. 8, 2013, 3 pages.
Cheng, Ting et al., “Thermal analysis and optimization of multiple LED packaging based on a general analytical solution,” International Journal of Thermal Sciences 49 (2010), pp. 196-201, Elsevier.
Sturm, James C., et al., “Thermal Effects and Scaling in Organic Light-Emitting FLat-Panel Displays,” Invited Paper, IEEE Journal of Selected Topics in Quantum Electronics, vol. 4, No. 1, Jan./Feb. 1998, pp. 75-82.
Shenzhen Dicolor Optoelectronics Co., Ltd., “U-Smart Series Outdoor Waterproof P10.66 LED Rental Screen,” Presentation & introduction, 27 pages.
Hughes, Tom, “Understanding Outdoor LED Electronic Signs,” Technology Report, Jul. 20, 2001, 20 pages, 9711-6007, Adaptive Micro Systems, Inc.
Waterfire Signs, “Watch What Happens—2008 LED Signs,” marketing brochure, Copyright 2007, 20 pages, Time-O-Matic, Danville, Illinois, USA.
Yescozette Magazine, “An Up-Close Look at Yesco Electronics,” 3 pages.
PLSN, “Lighting More Than the Torch,” Projection, Lights & Staging News, PLSN New Product Guide, p. 22, www.plsn.com, Sep. 2008, Vik, 9.8, pp. 1114-ITC0000408-1114-ITC0000479.
PLSN, “Backfield Scramble at Mile High Stadium,” Projection, Lights & Staging News, Road Test: Vectorworks Spotlight 2009, p. 70, www.plsn.com, Oct. 2008, vol. 9.9, pp. 1114-ITC0000304-1114-ITC0000355.
PLSN, “Backfield Scramble at Mile High Stadium,” Projection, Lights & Staging News, Road Test: Vectorworks Spotlight 2009, p. 70, www.plsn.com, Oct. 2008, vol. 9.9, pp. 1114-ITC0000356-1114-ITC0000407.
U.S. Appl. No. 61/922,631, pp. 1-75, filed Dec. 31, 2013.
U.S. Appl. No. 62/025,463, pp. 1-184 filed Jul. 16, 2014.
Roe, “Magic Cube,” LED Panel for Indoor/Outdoor, Roe Creative Display, 4 pgs. 1114-ITC0007887-1114-ITC0007890.
SJ, “Measure Methods of Light Emitting Diode (LED) Panels,” SJ/T 11281-2007, SJ/T 11281-2003, 2007, pp. 1114-ITC0002365-1114-ITC0002385.
SJ, “LED generic Specification for LED Panels,” SJ/T 11141-2012, SJ/T 11141-2003, 2012, pp. 1114-ITC0002341-1114-ITC0002364.
SMD Diodes, “Semi-Transparent Led Curtain,” Mar.-Apr. 2011, pp. 1114-ITC0004198-1114-ITC00044202.
Sony, “Large LED Display System,” LPU-1601 LED Display Panel Unit, LPU-2001 LED Display Panel Unit, LDC-HD01 LED Display Control Processor, 2011, 1114-ITC0004205-1114-ITC0004212.
Sander, “Full Color LED Unit SDM-P20-OSD4S-88,” Jun. 7, 2010, Version 1-5, pp. 1114-ITC0009467-1114-ITC0009471.
Daktronics, “Daktronics DVX LED Video Display, Waterproof Test,” 4 pages.
Daktronics, “Daktronics Outdoor LED Video Waterproof Test with On-Board Fan and Power Supply,” 5 pages.
Ledman, 7 pages.
Watchfire, 18 pages.
“Respondents' Identification of Claim Terms Requiring Constructions,”RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States Intemational Trade Commission, Investigative No. 337-TA-1114, Jul. 26, 2018, 10 pages.
“Complainant Ultravision Technologies, LLC's List of Claim Terms to be Construed,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, Investigative No. 337-TA-1114, Jul. 26, 2018, 9 pages.
“Respondents' Identification of Disputed Claim Terms and Proposed Construction,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, Investigative No. 337-TA-1114, Aug. 14, 2018, 20 pages.
“Complainant Ultravision Technologies, LLC's Proposed Claim Construction and Supporting Evidence,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, Investigative No. 337-TA-1114, Aug. 14, 2018, 22 pages.
“Respondents' Notice of Prior Art,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, Investigative No. 337-TA-1114, Sep. 10, 2018, 10 pages.
“Exhibit A—Respondents' Notice of Prior Art (Prior Art Publications),” RE: Certain Modular LED Display Panels and components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States Intemational Trade Commission, ITC Inv. No. 337-TA-1114, Sep. 10, 2018, 26 pages.
“Exhibit B—Respondents' Notice of Prior Art (Prior Art Products),” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 10, 2018, 9 pages.
“Commission Investigative Staffs Notice of Prior Art,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade commission, Investigative No. 337-TA-1114, Sep. 10, 2018, 8 pages.
“Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, Investigative No. 337-TA-1114, Sep. 21, 2018, 35 pages.
“Exhibit 4 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 44 pages.
“Exhibit 5 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 19 pages.
“Exhibit 7 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 22 pages.
“Exhibit 8 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 51 pages.
“Exhibit 9 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 20 pages.
“Exhibit 10 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 35 pages.
“Exhibit 11 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 24 pages.
“Exhibit 13 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 24 pages.
“Exhibit 14 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 34 pages.
“Exhibit 15 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 48 pages.
“Exhibit 17 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, pp. 1-29.
“Exhibit 17 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, pp. 30-58.
“Exhibit 24 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” Re: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 40 pages.
“Exhibit 25 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 54 pages.
“Exhibit 26 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 42 pages.
“Exhibit 27 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 41 pages.
“Exhibit 28 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 29 pages.
“Exhibit 29 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 29 pages.
“Exhibit 30 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 44 pages.
“Exhibit 33 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 50 pages.
“Exhibit 34 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 13 pages.
“Exhibit 40 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 93 pages.
“Exhibit 41 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 223 pages.
“Exhibit 42 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 433 pages.
“Exhibit 44 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 28 pages.
“Exhibit 45 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 31 pages.
“Exhibit 46 of Respondents' Combined Supplemental Responses to Opening Contention Interrogatories,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Sep. 21, 2018, 31 pages.
“Respondents' Motion for Leave to Amend and Assert Additional Defenses that the Patents are Unenforceable for Inequitable Conduct, Patent Misuse, Unclean Hands, and/or Improper Inventorship” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Oct. 11, 2018, 30 pages.
“Respondents' Motion for Leave to Supplement the Invalidity Contentions Based on Information Recently Received,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Oct. 23, 2018, 12 pages.
“Declaration Of Patrick J. Mccarthy in Support of Respondents' Motion for Leave to Supplement the Invalidity Contentions Based on Information Recently Received,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade commission, IITC Inv. No. 337-TA-1114, Oct. 23, 2018, 2 pages.
“Exhibit 1 of Motion for Leave to Supplement the Invalidity Contentions Based on Information Recently Received,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Oct. 23, 2018, 20 pages.
“Exhibit 2 of Motion for Leave to Supplement the Invalidity Contentions Based on Information Recently Received,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Oct. 23, 2018, 3 pages.
“Exhibit 3 of Motion for Leave to Supplement the Invalidity Contentions Based on Information Recently Received,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Oct. 23, 2018, 36 pages.
“Ultravision's Opposition to Respondents' Motion for Leave to Amend and Assert Additional Defenses that the Patents are Unenforceable for Inequitable Conduct, Patent Misuse, Unclean Hands, and/or Improper Inventorship” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Nov. 5, 2018, 20 pages.
Cirrus LED Systems, Internet Archive Wayback Machine, “The N2 System Setup & Installation ZERO Lead Time,” Outdoor LED Displays-Cirrus LED Systems, https://web.archive.org/web/20131228140224/http://cirrusled.com/, Dec. 28, 2013, 4 Pages.
Cirrus LED Systems, Internet Archive Wayback Machine, “Introducing N2 System Innovative Outdoor LED Display Solution from Cirrus,” LED Panels, N2 System-Cirrus LED System, https://web.archive.org/web/20130921080129/http://www.cirrusled.com/products/n2-system Sep. 21, 2013, 3 Pages.
Cirrus LED, Internet Archive Wayback Machine, “Nubis System The Next Generation Reinventing the LED Display,” LED Outdoor Display Signs, Electronic Digital Message Sign Billboards, LED Displays Manufacturer, https://web.archive.org/web/20120213172356/http://www.cirrusled.com:80/, Feb. 13, 2012, 1 Page.
Cirrus N2 LED Displays, Internet Archive Wayback Machine, “LED Panels,” Martin Supply Company Inc., https://web.archive.org/web/20130916051706/http://martin-supply.com/category/nubis, Sep. 16, 2013, 2 Pages.
Cirrus LED Systems, Internet Archive Wayback Machine, “The Next Generation of LED Display,” Outdoor LED Displays-Cirrus LED Systems, https://web.archive.org/web/20130830230540/http://www.cirrusled.com/, Aug. 30, 2013, 2 pages.
Cirrus LED Systems, Internet Archive Wayback Machine, “N2-19C,” 19mm Pixel Pitch LED Sign-Cirrus LED Systems, https://web.archive.org/web/20130921075058/http://www.cirrusled.com/products/n2-system/full-color-rgb/19mm-pixel-pitch-led-sign, Sep. 21, 2013, 2 Pages.
Cirrus Systems, “N2 LED Display System Video,” Published on Youtube on Jul. 24, 2013.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 1-59.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 60-107.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 108-160.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 161-222.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 223-280.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 281-340.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 341-405.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 406-468.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 469-536.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 537-595.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 596-666.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 667-723.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 724-787.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 788-852.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 853-936.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 937-998.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 999-1049.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 1050-1106.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 1107-1151.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 1152-1216.
Serial No. EP14875899.8, filed Sep. 18, 2015, pp. 1217-1285.
Serial No. EP14875899.8, filed Sep. 18, 2015, p. 1286.
European Patent Office, EP Application No. 14875899.8, “Summons to Attend Oral Proceedings Pursuant to Rule 115 (1) EPC,” dated Dec. 19, 2018, 15 pages.
Applicant Admitted Prior Art, Shenzhen Only 19×19 Panel, Feb. 17, 2013, pp. 1-8.
Applicant Admitted Prior Art, Shenzhen Only 19×19 Panel, Feb. 17, 2013, pp. 9-14.
Applicant Admitted Prior Art, Shenzhen Only 19×19 Panel, Feb. 17, 2013, pp. 15-19.
Applicant Admitted Prior Art, Shenzhen Only 19×19 Panel, Feb. 17, 2013, p. 20.
Applicant Admitted Prior Art, Shenzhen Only 19×19 Panel, Feb. 17, 2013, pp. 21-23.
Applicant Admitted Prior Art, Shenzhen Only 19×19 Panel, Feb. 17, 2013, pp. 24-32.
Applicant Admitted Prior Art, UltraPanel, Dec. 1, 2012, 15 pages.
English Translation of Previously cited CN 203607050U, Published on May 21, 2014, Shenzhen Aoto Electronics Co., Ltd., 6 pages.
Lighthouseled, “Possibilities” and “Specifications,” Aug. 9, 2013, 1 page.
Samsung, “User Manual, UD22B,” B146-00286A-02, Jul. 2012, 145 pages.
Prismview, A Samsung Electronics Company, “Deploying a Digital Billboard with Prismview, Steps from Contracting Through Installation,” White Paper, Aug. 2012, 4 pages.
YESCO Electronics, “The Layered Service Approach for Digital Outdoor Displays,” White Paper, YESCO Electronics Service Plans, Aug. 2012, 6 pages.
Lighthouse Create Impact, “10mm Visual Resolution with Oval LEDs, Bi10-ER, Large Scale LED Panel, A Modular System for Outdoor Applications,” Operation Manual, Jul. 2011; Document version 1.3; 33 pages.
Internet Archive Wayback Machine, “Outdoor/Indoor LED Display, LED Screen, LED Panel, LED Video Wall, LED Curtain, LED Strip,” https://web.archive.org/web/20130728075831/http://www.szaoto.com:80/product1.html, Jul. 2013, 2 pages.
Internet Archive Wayback Machine, “AOTO M Series Rental LED Display,” https://web.archive.org/web/20111211101926/http://www.szaoto.com:80/product13.html, Dec. 11, 2011, 1 page.
ACC Silicones, “Clear Silicone Gel,” https://web.archive.org/web/20140622080139/https://www.acc-silicones.com/products/gels.ashx, Jun. 22, 2014, 4 pages.
AOTO, Article “AOTO Launches World Highest Resolution Outdoor LED Display—M8 in ISE 2012,” http://en.aoto.com/article/detail/201705111014.html, 2012, 3 pages.
Internet Archive Wayback Machine, “AOTO Launches Worlds Highest-Resolution M3 LED Display in ISE,” https://www.szaoto.com:80/news_23.html, Dec. 11, 2011, 1 page.
Barco, “LED Display Systems,” LiveDots Product Catalog 2011, http://web.archive.org/web/20120318082027/http:/www.barco.com/Downloads/liveDots/LED_Product_Catalog.pdf, Mar. 18, 2012, 28 pages
Glux, “BAtn Series,” www.glux.com.cn/en, 2013, 2 pages.
“C-5 Rental Display,” Installation Manual, Nov. 15, 2011, R5905120, 80 pages.
CYsn, Glux Visual Effects Tech (Shenzhen) Co., Ltd, http://www.glux.cc/business-provide-self-cysn.html, Oct. 1, 2013, 2 pages.
Extended European Search Report received in EP Application No. 14875899.8 dated Aug. 2, 2016, 16 pages.
International Search Report and Written Opinion received in International Application No. PCT/US2014/072373 dated May 27, 2015, 19 pages.
Li Yan, et al., “Potting Process Design of Outdoor LED Display Module,” CKNI, Dec. 31, 2006, 1 page.
Luminautics, “LED Display Primer,” www.luminautisc.com, 2011, 21 pages.
Internet Archive Wayback Machine, AOTO M Series Rental LED Display, “M Series Rental LED Display,” https://web.archive.org/web/20111211101926/http://www.szaoto.com:80/product13, Dec. 11, 2011, 1 page.
“Mirage Semi-Transparent Led Curtain,” Magic Digital Lighting, Clay Paky, www.claypaky.it, pp. 1114-ITC0004190-1114-1TC0004197.
MOtn, Glux Visual Effects Tech (Shenzhen) Co., Ltd, http://www.glux.cc/business-provide-self-cysn.html, Oct. 1, 2013, 2 pages.
Internet Archive Wayback Machine, AOTO, “News Center,” http://szaoto.com/news.html, Dec. 7, 2013, 2013, 3 pages.
Internet Archive Wayback Machine, “AOTO M Series Rental LED Display,” https://web.archive.org/web/20130909053329/http://szaoto.com:80/product13.html, Sep. 2013, 1 page.
Daktronics, “Daktronics LED Billboard Technology,” www.daktronics.com Nov. 14, 2013, 3 pages.
Daktronics, “The Smarter Approach to Digital Outdoor,” Daktronics Digital Billboard Products, 2013, 16 pages.
Ekta, “WOWStrip,” www.ekta-led.com, Jun. 19, 2014, 5 pages.
“What is IP? Explained: Ingress Protection rating (IP Rating, IP65-IP68) system,” Waterproof TVs Direct; Apr. 11, 2012; http://waterproftvs-direct.co.uk/blog/waterproof-tv/what-is-ip-ip-explained-ingress-protection-rating-ip-rating-ip65-ip68-system.
WOWstrip Semi-Transparent LED Displays product page, http://www.ekta-led.com/prod/68/17/1901, retrieved Jun. 19, 2014, 3 pages.
Osram Opto Semiconductors, “Outdoor Capability of Silicone SMT LEDs used in LED Sign Board Applications,” Jan. 31, 2004, 17 pages.
Barco, “Outdoor LED Display Solutions,” SLite, www.barco.com, Apr. 2007, 4 pages.
SEfl, Glux Visual Effects Tech (Shenzhen) Co., Ltd, http://www.glux.cc/business-provide-self-cysn.html, Oct. 1, 2013, 2 pages.
Glux, “SEfl Series,” www.glux.com.cn, 2013, 1 page.
UK Intellectual Property Office, Search Report in Application No. GB1518912.9, dated Mar. 2, 2016, pp. 1-6.
VUEPIX, Product Catalog, 2012, www.vuepix.com, 36 pages.
Xavier, Dominic Michael, “Development of a Large Scale Flexible LED Display Matrix for the Screen Industry,” Thesis, Faculty of Built Environment and Engineering, Queensland University of Technology, Feb. 2013, 543 pages.
Yung, K.C., et al., “Thermal Pertormance of High Brightness LED Array Package on PCB,” Nov. 30, 2010, 2 pages.
“Petition for Inter Partes Review,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 90 pages.
Petitioner Shenzhen AOTO Electronics Co., Ltd.,“Petitioner's Power of Attorney,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , Inter Partes Review of U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 3 pages.
Petitioner Ledman Optoelectronic Co., Ltd., “Petitioner's Power of Attorney,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , Inter Partes Review of U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 3 pages.
Petitioner Leyard Optoelectronic Co., “Petitioner's Power of Attorney,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark office, Before the Patent Trial and Appeal Board , Inter Partes Review of U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 3 pages.
Petitioner Shenzhen Liantronics Co., “Petitioner's Power of Attorney,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark office, Before the Patent Trial and Appeal Board , Inter Partes Review of U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 3 pages.
Petitioner Unilumin Group Co. Ltd., “Petitioner's Power of Attorney,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark office, Before the Patent Trial and Appeal Board , Inter Partes Review of U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 3 pages.
Petitioner Yaham Optoelectronics Co. Ltd., “Petitioner's Power of Attorney,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark office, Before the Patent Trial and Appeal Board , Inter Partes Review of U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 3 pages.
“Exhibit 1001, U.S. Pat. No. 9,349,306 B2” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 83 pages.
“Exhibit 1002, Declaration of Mike Wood,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 90 pages.
“Exhibit 1004, U.S. Pat. No. 9,349,306” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, pp. 1-337.
“Exhibit 1004, U.S. Pat. No. 9,349,306” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, pp. 338-594.
“Exhibit 1005, U.S. Pat. No. 9,134,773” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, pp. 1-218.
“Exhibit 1005, U.S. Pat. No. 9,134,773” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, pp. 219-426.
“Exhibit 1005, U.S. Pat. No. 9,134,773” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, pp. 427-546.
“Exhibit 1006, US 2013/0271973 A1” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 62 pages.
“Exhibit 1007, US 2006/0227003 A1” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 11 pages.
“Exhibit 1008, CN 201449702 U” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 19 pages.
“Exhibit 1009, US 2007/0247842 A1” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 35 pages.
“Exhibit 1010, US 2005/0116667 A1” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 112 pages.
“Exhibit 1011, Joint Claim Construction Chart” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 19 pages.
“Exhibit 1012, Whats What Happens, 2008 LED Signs” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 20 pages.
“Exhibit 1013, U.S. Pat. No. 9,916,782” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, pp. 1-209.
“Exhibit 1013, U.S. Pat. No. 9,916,782” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, pp. 210-426.
“Exhibit 1013, U.S. Pat. No. 9,916,782” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, pp. 427-616.
“Exhibit 1032, Direct Current Definition,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 2 pages.
“Exhibit 1033, Alternating Current Definition,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 2 pages.
“Exhibit 1036, What We Do, International Electrotechnical Commission” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 1 page.
“Exhibit 1040, US 2007/0263381 A1,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 9 pages.
“Exhibit 1041, What is an IP Rating?—Progressive Automations Inc.,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 23 pages.
“Exhibit 1042, LED Display Solutions,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 24 pages.
“Exhibit 1043, LED Video Displays,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 2 pages.
“Exhibit 1044, LED Display Panels by Justin Lang,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 2 pages.
“Exhibit 1045, IPx6 Rated Surface Mount LED,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 2 pages.
“Exhibit 1046, Bi-Weekly Declaration Regarding Asserted Claims,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 6 pages.
“Exhibit 1047, Xin Min Liu Certification of Translation,” RE: Shenzhen AOTO Electronics Co., Ltd.; Leyard Optoelectronic Co.; Shenzhen Liantronics Co., Ltd.; Unilumin Group Co., Ltd.; Yaham Optoelectronics Co., Ltd.; and Ledman Optoelectronic Co., Ltd. Vs Ultravision Technologies, LLC, United States Patent and Trademark Office, Before the Patent Trial and Appeal Board , U.S. Pat. No. 9,349,306, Case No. IPR2019-00347, Nov. 20, 2018, 2 pages.
“Complaint,” RE: Certain Light Engines and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 96 pages.
“Exhibit 5 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 4 pages.
“Exhibit 6 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 72 pages.
“Exhibit 7 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 53 pages.
“Exhibit 8 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 26 pages.
“Exhibit 9 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 44 pages.
“Exhibit 10 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 32 pages.
“Exhibit 11 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 32 pages.
“Exhibit 12 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 37 pages.
“Exhibit 13 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 42 pages.
“Exhibit 14 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 45 pages.
“Exhibit 15 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 41 pages.
“Exhibit 16 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 51 pages.
“Exhibit 17 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 46 pages.
“Exhibit 18 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 50 pages.
“Exhibit 19 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 26 pages.
“Exhibit 20 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 35 pages.
“Exhibit 21of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 38 pages.
“Exhibit 22 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 50 pages.
“Exhibit 23 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 52 pages.
“Exhibit 24 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 33 pages.
“Exhibit 25 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 32 pages.
“Exhibit 26 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 38 pages.
“Exhibit 27 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 14 pages.
“Exhibit 28 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 27 pages.
“Exhibit 29 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 16 pages.
“Exhibit 30 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 14 pages.
“Exhibit 31 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 14 pages.
“Exhibit 32 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 18 pages.
“Exhibit 33 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 15 pages.
“Exhibit 34 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 18 pages.
“Exhibit 35 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 18 pages.
“Exhibit 36 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 17 pages.
“Exhibit 37 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 18 pages.
“Exhibit 38 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 13 pages.
“Exhibit 39 of Complaint,” Re: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 14 pages.
“Exhibit 40 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 16 pages.
“Exhibit 41 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 20 pages.
“Exhibit 42 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 37 pages.
“Exhibit 43 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 14 pages.
“Exhibit 44 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 50 pages.
“Exhibit 45 of Complaint” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 36 pages.
“Exhibit 46 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 5 pages.
“Exhibit 47 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 29 pages.
“Exhibit 48 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 4 pages.
“Exhibit 49 of Complaint,” RE: Certain Modular LED Display Panels and Components Thereof, Ultravision Technologies, Inc. v. Adduci, Mastriani and Schaumberg, L.L.P., United States International Trade Commission, IITC Inv. No. 337-TA-1114, Mar. 27, 2018, 8 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), 59 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-4, 59 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-5, 40 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-7, 345 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-8, 613 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-9, 32 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-10, 44 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-11, 29 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-12, 36 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-13, 60 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-16, 87 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-20, 49 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-21, 49 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-22, 58 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-23, 58 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-24, 59 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-28, 51 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-29, 58 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-30, 280 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-31, 663 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-32, 41 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-47, 174 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-48, 143 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-49, 281 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-50, 313 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-51, 208 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-52, 173 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-53, 405 pages.
Defendant Ledman Optoelectronic Co., Ltd.'s Mar. 27, 2020, Invalidity Contentions Under P.R. 3-3 & 3-4, Ultravision Technologies, LLC v. Ledman Optoelectronic Co., Ltd., Case No. 2:18-cv-101 (E.D. Tex.), Exhibit WP-54, 549 pages.
Related Publications (1)
Number Date Country
20190171403 A1 Jun 2019 US
Provisional Applications (3)
Number Date Country
62065510 Oct 2014 US
62025463 Jul 2014 US
61922631 Dec 2013 US
Continuations (2)
Number Date Country
Parent 15409288 Jan 2017 US
Child 16269356 US
Parent 14550685 Nov 2014 US
Child 15409288 US