Ambient light control and calibration via a console

Information

  • Patent Grant
  • 9833707
  • Patent Number
    9,833,707
  • Date Filed
    Monday, October 29, 2012
    12 years ago
  • Date Issued
    Tuesday, December 5, 2017
    7 years ago
  • CPC
  • Field of Search
    • US
    • 463 031000
    • 463 037000
    • 463 039000
    • 463 043000
    • 315 294000
    • 315 297000
    • 315 307000
    • 315 312000
    • CPC
    • A63F13/12
    • A63F13/30
    • A63F13/54
    • A63F2300/575
    • A63F13/22
    • A63F13/23
    • A63F13/213
    • A63F2300/0045
    • H05B37/0254
    • H05B33/0815
    • H05B37/02
    • H05B33/0842
    • H05B33/0854
    • H05B33/0857
    • G01S7/497
    • G01S7/52004
  • International Classifications
    • A63F13/22
    • A63F13/52
    • Term Extension
      1246
Abstract
Ambient light control and calibration systems and methods are provided herein. According to some embodiments, exemplary systems may include a console that includes a processor that executes logic to control a plurality of nodes to reproduce a virtual lighting scheme of a virtual environment in a physical user environment. Additionally, the system may include a plurality of nodes that each includes a light emitting device, a receiver that communicatively couples the node to the console, and a processor that executes logic to control the light emitting device.
Description
FIELD OF THE PRESENT TECHNOLOGY

The present technology relates generally to ambient light control via a console, such as a gaming system. The present technology may allow for virtual lighting schemas of a virtual environment to be replicated by light emitting nodes distributed throughout a physical user environment, such as a room.


SUMMARY OF THE PRESENT TECHNOLOGY

According to various embodiments, the present technology may be directed to systems that include: (a) a console that comprises a processor that executes logic to control a plurality of nodes to reproduce a virtual lighting scheme of a virtual environment in a physical user environment; and (b) each of the plurality of nodes comprising: (i) a light emitting device; (ii) a receiver that communicatively couples the node to the console; and (ii) a processor that executes logic to control the light emitting device.


The present technology may be directed to nodes that include: (a) one or more processors; and (b) logic encoded in one or more tangible media for execution by the one or more processors and when executed operable to perform operations comprising: (i) positionally calibrating by: (1) outputting calibration signals; (2) receiving calibration signals from other nodes within a user environment; and (3) calculating distances between the node and other nodes within the user environment using the calibration feedback; and (ii) providing the calculated distances to a console that is communicatively coupled to the node.


The present technology may be directed to system that include (a) a first node that comprises: (i) a light emitting device that receives light calibration signals; (ii) an audio emitter; (iii) an audio receiver that receives audio calibration signals; (iv) a processor that executes logic to: (1) control the light emitting device; and (2) calculate a relative position of the first node from light and audio calibration signals received from additional nodes within a user environment; and (b) a console that controls a plurality of nodes to reproduce a virtual lighting environment within the user environment, the first node included in a plurality of nodes which are distributed within the user environment.


The present technology may be directed to a method that includes: (a) generating a topology of nodes which are distributed throughout a physical user environment by analyzing calibration feedback received from the nodes; and (b) controlling the nodes to reproduce a virtual lighting scheme of a virtual environment in the physical user environment.


The present technology may be directed to a non-transitory machine-readable storage medium having embodied thereon a program. In some embodiments the program may be executed by a machine to perform a method. The method may comprise: (a) generating a topology of nodes which are distributed throughout a physical user environment by analyzing calibration feedback received from the nodes; and (b) controlling the nodes to reproduce a virtual lighting scheme of a virtual environment in the physical user environment.





BRIEF DESCRIPTION OF THE DRAWINGS

Certain embodiments of the present technology are illustrated by the accompanying figures. It will be understood that the figures are not necessarily to scale and that details not necessary for an understanding of the technology or that render other details difficult to perceive may be omitted. It will be understood that the technology is not necessarily limited to the particular embodiments illustrated herein.



FIG. 1 illustrates an exemplary architecture for practicing aspects of the present technology;



FIG. 2 illustrates block diagrams of an exemplary console and an exemplary node.



FIG. 3 is a block diagram of an exemplary computing system for implementing embodiments of the present technology.





DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS

While this technology is susceptible of embodiment in many different forms, there is shown in the drawings and will herein be described in detail several specific embodiments with the understanding that the present disclosure is to be considered as an exemplification of the principles of the technology and is not intended to limit the technology to the embodiments illustrated.


It will be understood that like or analogous elements and/or components, referred to herein, may be identified throughout the drawings with like reference characters. It will be further understood that several of the figures are merely schematic representations of the present technology. As such, some of the components may have been distorted from their actual scale for pictorial clarity.


Generally speaking, the present technology may be used to control light nodes which are distributed throughout a physical user environment, such as a room. A console may control the nodes by causing the nodes to emit light that replicates ambient lighting conditions of a virtual environment, generated, for example, by a videogame. These ambient lighting conditions may be referred to as a virtual lighting scheme.


According to some embodiments, light nodes may be plugged in to any wall outlet or inserted into any lighting fixture in a user environment. Thus, the user environment may include a plurality of light nodes that are distributed throughout.


In some stances, each of the light nodes may comprise an array of light emitting diodes (LED) that are configured to generate a spectrum of colored light. In some instances, the light node may be capable of emitting full range light but up to 440 lumens of white light. For example, the light nodes may use a multicolored (e.g., red, green, blue) “RGB” LED array. Additionally, the light node may comprise a high quality speaker, a microphone, a photo sensor capable of detecting color and intensity of light, and a reliable low latency communication receiver or transceiver which utilizes, for example, radio frequencies, infrared light, Bluetooth, powerline, or WiFi communications—just to name a few. A light node may be capable of determining its location relative to other light nodes within the user environment using various calibration techniques which will be described in greater detail below.


A console may emit a surround audio stream, decode the stream, and re-encode the stream based on predictions regarding what audio signals should be emitted from the current locations of the light nodes, or a closes approximation thereof. The console may also emit a light control stream to control the light emitted from each of the light nodes based upon a virtual lighting schema generated, for example, by a videogame.


Using calibration data obtained from the light nodes, the console may create an accurate map or topology of the user environment. The videogame may provide its ambient lighting conditions to a system library. Thus, the system library and the map of the user environment may be used together by the console to control operation of the light nodes.


The console may continually monitor and control the operation of the light nodes such that the light emitted by the light nodes corresponds to dynamically changing ambient lighting conditions of a virtual gaming environment. Advantageously, the present technology may be used to augment a videogame experience by bringing audio and lighting effects from the virtual world in to the physical world. The present technology may create a more immersive gaming experience in an inexpensive and easy to configure manner.


These and other advantages of the present technology will be described in greater detail below with reference to the collective drawings (e.g., FIGS. 1-3).



FIG. 1 illustrates an exemplary architecture 100 for practicing aspects of the present technology. According to some embodiments, the exemplary architecture 100, hereinafter “architecture 100,” may generally comprise a plurality of nodes, such as light nodes 105A-J, which is shown as being distributed around a physical environment such as a user environment 10.


In some instances, nodes 105A-G are each coupled to a different electrical outlet. Nodes 105H-J are each coupled with a different light fixture, such as a potted ceiling lights 110A-C. Each of the nodes 105A-J are communicatively couplable with a console 115 using, for example, a wired connection or wireless connection, such as WiFi, Bluetooth, near field communications (NFC), radio frequency, as well as any other wired or wireless connection type that would allow for transmission of audio and/or light related signals.


Generally, the console 115 may include a dedicated device that cooperates with, for example a display 120. For example, the console 115 may comprise a gaming system, set top box, or other similar device. An exemplary console 115 is described in greater detail below with reference to FIG. 2.


Each of nodes 105A-J is substantially similar in construction and function relative to one another. Therefore, for purposes of brevity, an exemplary light node, such as node 105A will be described in greater detail below. FIG. 2 also illustrates an exemplary node, such as node 105A, constructed in accordance with the present disclosure. In some embodiments, node 105A may comprise a speaker 205 and a light emitter 210. According to some embodiments, the light emitter 210 may include an LED light array that is capable of emitting a very bright full spectrum of light. Additionally, the node 105A may comprise a microphone 215 and a photo sensor 220 capable of sensing intensity and color of environmental lighting conditions within a physical environment, such as the user environment 10 of FIG. 1.


More specifically, the speaker 205 may comprise a speaker capable of producing high quality audio output. The speaker 205 may produce audio output in the 20 Hz to 48 kHz range (e.g., the ability to emit ultra-sound frequencies can be used as an advantage). The speaker 205 may also produce a lower frequency range response in some instances. Thus, the speaker 205 may produce audio output that augments or replaces a sound system, such as a mono, stereo, or multichannel sound system (e.g., surround sound).


The light emitter 210 may comprise RGB LED lighting in an array form that could emit light in the range of 450 lumens of white light maximum, as well as, 200 lumens of any possible color the LED array is designed to emit. In some instances, the LED array may be controllable across a desired lumens range with a granularity of approximately 256 intensities per RGB LED element, although other ranges and granularity factors may also likewise be utilized in accordance with the present technology. While the node 105A has been described as including an LED array, it will be understood that the node 105A may comprise any type or combination of lighting elements such as fluorescent, compact fluorescent, incandescent, or any other lighting element that would be known to one of ordinary skill in the art with the present disclosure before them.


In some instances, the nodes 105A-J may be connected to the main power supply for the house (e.g., when associated with an outlet or lighting fixture). When the nodes 105A-J operated in an “always on” mode, heat generated by the nodes 105A-J may prove problematic. Thus, the LED array selected may be capable of generating 10 W RGB LED light, which will emit approximately 450 lumens of light (equivalent of 40 W incandescent).


In accordance with the present disclosure, the microphone 215 (e.g., sound transducer or transceiver) may include a microphone capable of being sampled at up to 192 kHz. The sample quality produced by the microphone 215 may vary according to design requirements, although a microphone with an eight bit resolution may be utilized, in an exemplary embodiment.


In some instances, the photo sensor 220 may comprise a broad-spectrum photo sensor that can detect the intensity and color of light. Therefore, the photo sensor 220 may be used to view ambient lighting conditions of the user environment 10 as well as calibrate the light output of the LED arrays of other nodes as elements within an LED array produce light output that varies with the age of the LED array and temperature at which the LED array is operating.


In some instances, the node 105A may comprise a communications module 225 that allows the node 105A to communicatively couple with other nodes in the area. The communications module 225 may also allow the node 105A to communicatively couple with a control device, such as the console 115. The communications module 225 may utilize any one or more communications media, including, but not limited to, RF, Bluetooth, WiFi, and power line transmission—just to name a few.


In some instances, the communications module 225 may utilize a primary communications media 225A, such as power line transmission, and an auxiliary media, such as low range Bluetooth. The auxiliary media may be used when the primary communications media is not be reliable enough or unavailable.


The node 105A may also comprise power source 230 which provides electrical energy to each of the various components of the node 105A. Alternatively, in some instances, the node 105A may comprise an interface, which allows the node 105A to electrically couple with, for example, an outlet, a light fixture, or other similar electrical interface that would allow a light fixture to receive power from a power source.


According to some embodiments, the node 105A is an “always on” device. In other instances, the node 105A may employ a stand-by mode that would allow for a significant reduction in power consumption levels relative to a standard night light (e.g., less than one watt if night light mode is active). In stand-by mode, the node 105A may monitor environmental lighting levels via the photo sensor 220 and activate the LED array to create a minimum light level within user environment 10 (or a section of user environment 10). The microphone 215 may detect a movement or other presence within the user environment 10, which may indicate a need for ambient lighting within the user environment 10.


The node 105A may also comprise a processor 235, which executes instructions stored in memory to perform the various methods or features of the node 105A. That is, the processor 235 may comprise a microprocessor, system on a chip, or an application specific integrated circuit that causes the node 105A to perform the various methods that will be described in greater detail below. According to some embodiments, the processor 235 may comprise a microprocessor having sufficient computing power to perform the various digital signal processing capabilities required to produce and mix audio and light signals received by the microphone 215 and the photo sensor 220 of the node 105A to determine a virtual location for the node 105A.


In addition to a processor having instructions, the node 105A may include other components of a computing device, such as the computing system 300 described in greater detail relative to FIG. 3.


In some embodiments, exemplary nodes may be constructed to resemble typical light features such as light bulbs, night lights, sconces, and so forth. Thus, these exemplary nodes may be used in place of their common counterparts.


Generally speaking, in an exemplary operation, an end user would plug in a plurality of nodes 105A-J (or any desired number of nodes) in to a desired power source or a power source for which the nodes have been configured to interface with, be it in a light-bulb form or night-light form. An auto calibration program may be executed on the console 115 that cause the nodes 105A-J to utilize LED arrays, speakers, photo sensors, and microphones to calibrate audio and lighting characteristics of the user environment 10.


In some instances, the console 115 may comprise an exemplary gaming console such as the Sony PlayStation™. The console 115 may utilize integrated or periphery devices to augment positional information calculated by the nodes 105A-J. For example, the console 115 may utilize a PlayStation Eye™ camera to determine positional information such as a quadrant of the user environment in which a node is located, a relative distance between each of the nodes and the console. The console 115 may also determine if one or more of the nodes 105A-J are obscured. The various types of calibration information determined from the nodes 105A-J and/or the console may be used to generate or improve a representation of the user environment utilized by the console 115.


Indeed, the console 115 may automatically detect the addition or removal of a node from the user environment 10. Once detected, the console 115 may automatically suggest running a calibration for the nodes again. Such automated behaviors of the console 115 may minimize the amount of technical knowledge required by the end-user when installing such a system.


The console 115 may execute a calibration program to cause the console 115 to emit a series of sounds from a speaker 250 associated with the console. The console 115 may also cause the nodes 105A-J to emit sound and light signals. The console 115 may use the node calculated location information retrieved from the nodes 105A-J, as well as augmenting information obtained from a console camera 240 and a microphone 245. Using these various types of information, the console 115 may calculate characteristics of the user environment 10, which would be used to map the user environment.


During this calibration process, the console 115 may generate something which resembles a fireworks show to allow the calibration to be executed in a manner which is pleasant and appealing to the end user. It is noteworthy that in an exemplary console 115 power-up sequence, audio/video could be used to verify current conditions within the user environment 10. The calibration sequence may contain appropriate sections of audio and lighting flashes that can be used to calibrate the audio and lighting characteristics of the user environment 10.


Once calibrated, the console 115 may have an approximate indication of where the nodes 105A-J are located with respect to each other, how far apart the nodes 105A-J are, relative to one another and/or the console 115, and whether or not the nodes 105A-J are occluded in some fashion.


As described above, each of the nodes 105A-J may utilize the various components described above to generate and detect light and audio signals to determine a location relative of a give node relative to other nodes in the user environment 10.


In an exemplary configuration sequence a first node 105A may output a flash of light from an LED array. At the same time, the first node 105A may emit a sound. Additional nodes such as nodes 105B, 105C, and 105D (total number is unlimited), each detect the light output by the first node 105A and time how long it takes for the audio signal from the first node 105A to arrive. The length of time between receipt of the light signal and the audio signal may be used by another node to determine an approximate distance between the first node 105A and the receiving node. Indeed, since sound travels at 330 meters/sec, if the nodes comprise a microphone that is capable of generating a sampling accuracy of 192 khz, the receiving node can determine a distance to within approximately 20 millimeters. Although, it will be understood that any obscuring objects may affect the audio travel time to some degree.


Each of the nodes 105A-J would execute this output sequence, which is received by the other receiving nodes. Each of the nodes 105A-J may then transmit their calibration feedback to the console 115. In some instances, the console 115 may use the calibration feedback to form a topology of the user environment 10 with an accurate indication of how nodes 105A-J are positioned within the user environment 10 relative to each other. Given enough nodes with enough separation, an additional parameter of height may also be determined. Thus, the calibration feedback augmented with height data to generate a three dimensional representation of the nodes 105A-J within the user environment 10.


When the console 115 is activated in a configuration mode, the console 115 may retrieve the calibration feedback from the nodes 105A-J and then confirm the relative locations of the nodes 105A-J with measurements generated by the console 115 using the console camera 240 (e.g., the PlayStation Eye™) camera to augment the relative node position data of the nodes 105A-J. The camera may determine height information of each of the nodes 105A-J, whether or not the nodes 105A-J are obscured, what direction the nodes 105A-J may be pointing, as well as relative positions of the nodes 105A-J to any other audio emitting devices in the user environment, such as a surround sound system.


Once the calibration feedback has been obtained and/or calculated, pictures of the user environment may be obtained by the console 115 using the console camera 240. For example, pictures may be taken when the nodes 105A-J have activated their lights in sequence to allow acquisition of depth information on objects by projecting and detecting the direction of shadows generated by objects within the user environment 10. This sequence may also be used even if the nodes are outside the direct field of view of the camera, as a shadow cast by a node may provide relative position information of nodes or objects with the user environment 10.


In some embodiments, the console camera 240 may be adapted to detect infra-red light. The LED arrays of the nodes 105A-J may be tuned to emit a color in the infra-red range. In other instances, each node may include a dedicated IR transceiver that may broadcast and/or received IR signals.


The detection of IR signals may also allow for the detection and tracking of the movement of objects within the user environment 10 with greater level of accuracy than obtaining images of the user environment with the console camera 240.


According to some embodiments, a program such as a videogame, which is being facilitated by the console 115, may desire to control environmental lighting (e.g., nodes 105A-J) of the user environment 10. Generally, executable code within the program may indicate to a system library used by the console 115 where ambient lights are within a virtual environment. The location and operation of ambient lights within the virtual environment may be referred to as a virtual lighting scheme.


The console 115 can then use the virtual lighting scheme to control the nodes 105A-J within the user environment 10 to approximately match the lighting within the virtual environment. In some instances, the system library may be updated frequently to match activity occurring within the program. Thus, lighting elements used by the nodes 105A-J and controlled by the console 115 can be used to produce light conditions within the user environment that approximate the lighting conditions within the virtual environment which is being displayed to an end user.


During game play, depth information captured by the console camera 240 associated with the console 115 may be used to augment the replication of the lighting conditions of the virtual environment. That is, because the console 115 knows the location of all of the nodes 105A-J, the console 115 can control the nodes 105A-J to cause them to act in a particular desired sequence. During operation, the images of the user environment may be captured and then used, along with the known location information of the nodes 105A-J to create motion vectors that describe how shadows move within the user environment. These motion vectors may be used by the console 115 to create additional three-dimensional depth information than would otherwise be possible with just the camera alone.


By way of non-limiting example, if an end user is playing a videogame and the ambient light is bright within the videogame environment, console may cause the nodes 105A-J to use their respective lighting elements to light up the entire user environment. In contrast, if an end user enters an area of a virtual environment where there are lots of “Zombies,” the console 115 may progressively darken the user environment down to a sinister red color. The red color may be generated from controlling nodes that are positioned behind or in front of users U1 and U2. The change in lighting may foreshadow danger. The console 115 may cause a multicolor LED array of one or more nodes to emit colored light in accordance with color parameters included in the virtual lighting scheme being used by the console 115.


In an additional example, if there are flickering lanterns in a hallway within a virtual environment, the console 115 may cause various nodes within the user environment to flicker in accordance with their positions within the virtual environment. For example, if an end user within the virtual environment passes a flickering light in the virtual environment, nodes assigned to similar positions within the user environment would flicker sequentially from front to behind or vice versa as the end user passes the virtual light within the virtual environment.


In an additional example, if a gun-shot occurs behind an end user in a virtual environment, a node may briefly flash one of the light emitters to indicate the gun fire, in a directional fashion. Because the console 115 knows where nodes are located within the user environment the console 115 may use the nodes to “move” light that is occurring across a virtual scene within the user environment to give an indication of movement within the user environment. In another example, when a flash grenade is used within a virtual environment, the nodes within the user environment can flash bright and fade down, as would occur within the virtual environment.


Additionally, a light emitter (e.g., LED array) within a node may be positioned in such a way that the console 115 can control the projection of the light in a non-linear fashion from the node. For example, if the node includes an LED array, the console 115 may use the LED array to emit light in a fan shape so that the console 115 has broader control of light emitted within the user environment in the area of the node.


Alternative uses for the present technology may include controlling ambient lighting within a room to reduce unnecessary lighting of unoccupied rooms. In an exemplary embodiment, the nodes (or other devices within a room) emit ultra-sonic frequencies. These ultrasonic frequencies may be detected by the nodes and used for echo location of objects within the user environment. The echo location data generated may be used to track object movement, direction, and velocity within a user environment.


Additionally, since the console 115 provides a centralized control mechanism, user environment lighting via the nodes may be adjusted based on personal preference, time of day, other devices in operation, or other metrics that may be used to change user environment lighting that would be known to one of ordinary skill in the art.


Additionally, in some embodiments, using analysis of the images that are being processed through the console 155, the audio and visual environment from a movie may be replicated in the user environment while end users are watching the movie.


In some embodiments, rather than control sequences being determined or read from a program at the console, a control stream may be sent to the console 115, or directly to the nodes 105A-J to actively manage the user environment lighting characteristics in a manner controlled by the director of a movie. The control stream may be received along with a corresponding video stream.


As used herein, the term “module” may also refer to any of an application-specific integrated circuit (“ASIC”), an electronic circuit, a processor (shared, dedicated, or group) that executes one or more software or firmware programs, a combinational logic circuit, and/or other suitable components that provide the described functionality. In other embodiments, individual modules may include separately configured web servers.



FIG. 3 illustrates an exemplary computing system 300 that may be used to implement an embodiment of the present technology. The computing system 300 of FIG. 3 may be implemented in the contexts of the likes of computing systems, networks, exchanges, servers, or combinations thereof disclosed herein. The computing system 300 of FIG. 3 includes one or more processors 310 and main memory 320 (also referred to herein as memeory 320). Main memory 320 stores, in part, instructions and data for execution by processor 310. Main memory 320 may store the executable code when in operation. The system 300 of FIG. 3 further includes a mass storage device 330, portable storage medium drive(s) 340 (also referred to herein as portable storage 340 and as portable storage device 340), output devices 350, user input devices 360, a graphics display 370, and peripheral devices 380 (also referred to herein as peripheral(s) 380).


The components shown in FIG. 3 are depicted as being connected via a single bus 390. The components may be connected through one or more data transport means. Processor 310 and main memory 320 may be connected via a local microprocessor bus, and the mass storage device 330, peripheral device(s) 380, portable storage device 340, and graphics display 370 may be connected via one or more input/output (I/O) buses.


Mass storage device 330, which may be implemented with a magnetic disk drive or an optical disk drive, is a non-volatile storage device for storing data and instructions for use by processor 310. Mass storage device 330 may store the system software for implementing embodiments of the present technology for purposes of loading that software into main memory 320.


Portable storage device 340 operates in conjunction with a portable non-volatile storage medium, such as a floppy disk, compact disk, digital video disc, or USB storage device, to input and output data and code to and from the computing system 300 of FIG. 3. The system software for implementing embodiments of the present technology may be stored on such a portable medium and input to the computing system 300 via the portable storage device 340.


Input devices 360 provide a portion of a user interface. Input devices 360 may include an alphanumeric keypad, such as a keyboard, for inputting alpha-numeric and other information, or a pointing device, such as a mouse, a trackball, stylus, or cursor direction keys. Additionally, the system 300 as shown in FIG. 3 includes output devices 350. Suitable output devices include speakers, printers, network interfaces, and monitors.


Graphics display 370 may include a liquid crystal display (LCD) or other suitable display device. Graphics display 370 receives textual and graphical information, and processes the information for output to the display device.


Peripherals devices 380 may include any type of computer support device to add additional functionality to the computing system. Peripheral device(s) 380 may include a modem or a router.


The components provided in the computing system 300 of FIG. 3 are those typically found in computing systems that may be suitable for use with embodiments of the present technology and are intended to represent a broad category of such computer components that are well known in the art. Thus, the computing system 300 of FIG. 3 may be a personal computer, hand held computing system, telephone, mobile computing system, workstation, server, minicomputer, mainframe computer, or any other computing system. The computer may also include different bus configurations, networked platforms, multi-processor platforms, etc. Various operating systems may be used including Unix, Linux, Windows, Macintosh OS, Palm OS, Android, iPhone OS and other suitable operating systems.


It is noteworthy that any hardware platform suitable for performing the processing described herein is suitable for use with the technology. Computer-readable storage media refer to any medium or media that participate in providing instructions to a central processing unit (CPU), a processor, a microcontroller, or the like. Such media may take forms including, but not limited to, non-volatile and volatile media such as optical or magnetic disks and dynamic memory, respectively. Common forms of computer-readable storage media include a floppy disk, a flexible disk, a hard disk, magnetic tape, any other magnetic storage medium, a CD-ROM disk, digital video disk (DVD), any other optical storage medium, RAM, PROM, EPROM, a FLASHEPROM, any other memory chip or cartridge.


Computer program code for carrying out operations for aspects of the present invention may be written in any combination of one or more programming languages, including an object oriented programming language such as Java, Smalltalk, C++ or the like and conventional procedural programming languages, such as the “C” programming language or similar programming languages. The program code may execute entirely on the user's computer, partly on the user's computer, as a stand-alone software package, partly on the user's computer and partly on a remote computer or entirely on the remote computer or server. In the latter scenario, the remote computer may be connected to the user's computer through any type of network, including a local area network (LAN) or a wide area network (WAN), or the connection may be made to an external computer (for example, through the Internet using an Internet Service Provider).


The corresponding structures, materials, acts, and equivalents of all means or step plus function elements in the claims below are intended to include any structure, material, or act for performing the function in combination with other claimed elements as specifically claimed. The description of the present invention has been presented for purposes of illustration and description, but is not intended to be exhaustive or limited to the invention in the form disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art without departing from the scope and spirit of the invention. Exemplary embodiments were chosen and described in order to best explain the principles of the present technology and its practical application, and to enable others of ordinary skill in the art to understand the invention for various embodiments with various modifications as are suited to the particular use contemplated.


While various embodiments have been described above, it should be understood that they have been presented by way of example only, and not limitation. The descriptions are not intended to limit the scope of the technology to the particular forms set forth herein. Thus, the breadth and scope of a preferred embodiment should not be limited by any of the above-described exemplary embodiments. It should be understood that the above description is illustrative and not restrictive. To the contrary, the present descriptions are intended to cover such alternatives, modifications, and equivalents as may be included within the spirit and scope of the technology as defined by the appended claims and otherwise appreciated by one of ordinary skill in the art. The scope of the technology should, therefore, be determined not with reference to the above description, but instead should be determined with reference to the appended claims along with their full scope of equivalents.

Claims
  • 1. A method, comprising: generating a topology of nodes which are distributed throughout a physical user environment by analyzing calibration feedback received from the nodes, the calibration feedback defining a relative position of a node within the physical user environment, the calibration feedback generated by causing the nodes to output calibration signals to other nodes;causing the nodes to emit light;obtaining images of the physical user environment;generating a three dimensional topology of the physical user environment from the images of the physical user environment and the calibration feedback; andcontrolling the nodes to reproduce a virtual lighting scheme of a virtual environment in the physical user environment.
  • 2. The method according to claim 1, further comprising: analyzing shadows of objects included in the images to create motion vectors; andupdating the three dimensional topology using the motion vectors.
  • 3. The method according to claim 1, further comprising receiving the virtual lighting scheme from a system library, the virtual lighting scheme including virtual lighting conditions of a videogame.
  • 4. The method according to claim 1, further comprising receiving the virtual lighting scheme from a control stream received along with a video stream, the virtual lighting scheme including virtual lighting conditions of a movie.
  • 5. The method according to claim 1, wherein the analyzing the calibration feedback comprises: receiving a light calibration signal from a second node within the physical user environment;receiving an audio calibration signal from the second node within the physical user environment; andcalculating a relative distance between the node and the second node from the light and audio calibration signals.
  • 6. A system comprising: a processor; anda memory coupled to the processor, the memory storing instructions executable by the processor to: generate a topology of nodes which are distributed throughout a physical user environment by analyzing calibration feedback received from the nodes, the calibration feedback defining a relative position of a node within the physical user environment, the calibration feedback generated by causing the nodes to output calibration signals to other nodes;cause the nodes to emit light;obtain images of the physical user environment;generate a three dimensional topology of the physical user environment from the images of the physical user environment and the calibration feedback; andcontrol the nodes to reproduce a virtual lighting scheme of a virtual environment in the physical user environment.
  • 7. The system of claim 6, wherein the processor further: analyzes shadows of objects included in the images to create motion vectors; andupdates the three dimensional topology using the motion vectors.
  • 8. The system of claim 6, wherein the processor further receives the virtual lighting scheme from a system library, the virtual lighting scheme including virtual lighting conditions of a videogame.
  • 9. The system of claim 6, wherein the processor further receives the virtual lighting scheme from a control stream received along with a video stream, the virtual lighting scheme including virtual lighting conditions of a movie.
  • 10. The system of claim 6, wherein the analyzing the calibration feedback comprises: receiving a light calibration signal from a second node within the physical user environment;receiving an audio calibration signal from the second node within the physical user environment; andcalculating a relative distance between the node and the second node from the light and audio calibration signals.
US Referenced Citations (142)
Number Name Date Kind
3147341 Gibson, Jr. Sep 1964 A
3200193 Biggs Aug 1965 A
4016540 Hyatt Apr 1977 A
4090216 Constable May 1978 A
4104625 Bristow et al. Aug 1978 A
4355334 Fitzgibbon et al. Oct 1982 A
4445187 Best Apr 1984 A
4475132 Rodesch Oct 1984 A
4514727 Van Antwerp Apr 1985 A
4569026 Best Feb 1986 A
4677569 Nakano et al. Jun 1987 A
4704696 Reimer et al. Nov 1987 A
4752069 Okada Jun 1988 A
4757525 Matthews et al. Jul 1988 A
4952917 Yabuuchi Aug 1990 A
5057744 Barbier et al. Oct 1991 A
5167010 Elm et al. Nov 1992 A
5241671 Reed et al. Aug 1993 A
5274560 LaRue Dec 1993 A
5321833 Chang et al. Jun 1994 A
5358259 Best Oct 1994 A
5377997 Wilden et al. Jan 1995 A
5405152 Katanics et al. Apr 1995 A
5446714 Yoshio et al. Aug 1995 A
5498002 Gechter Mar 1996 A
RE35314 Logg Aug 1996 E
5598297 Yamanaka et al. Jan 1997 A
5617407 Bareis Apr 1997 A
5649861 Okano et al. Jul 1997 A
5659732 Kirsch Aug 1997 A
5704837 Iwasaki et al. Jan 1998 A
5724567 Rose et al. Mar 1998 A
5732232 Brush, II et al. Mar 1998 A
5765150 Burrows Jun 1998 A
5786801 Ichise Jul 1998 A
5802361 Wang et al. Sep 1998 A
5818553 Koenck et al. Oct 1998 A
5823879 Goldberg et al. Oct 1998 A
5870740 Rose et al. Feb 1999 A
5890122 Van Kleeck et al. Mar 1999 A
5947823 Nimura Sep 1999 A
5948040 DeLorme et al. Sep 1999 A
5974412 Hazlehurst et al. Oct 1999 A
5977968 Le Blanc Nov 1999 A
6001013 Ota Dec 1999 A
6012053 Pant et al. Jan 2000 A
6017272 Rieder Jan 2000 A
6067539 Cohen May 2000 A
6098061 Gotoh et al. Aug 2000 A
6155924 Nakagawa et al. Dec 2000 A
6168524 Aoki et al. Jan 2001 B1
6183366 Goldberg et al. Feb 2001 B1
6202058 Rose et al. Mar 2001 B1
6210273 Matsuno Apr 2001 B1
6264560 Goldberg et al. Jul 2001 B1
6273818 Komoto Aug 2001 B1
6283861 Kawai et al. Sep 2001 B1
6296570 Miyamoto et al. Oct 2001 B1
6319121 Yamada et al. Nov 2001 B1
6327590 Chidlovskii et al. Dec 2001 B1
6363378 Conklin et al. Mar 2002 B1
6366272 Rosenberg et al. Apr 2002 B1
6375571 Ohnuma et al. Apr 2002 B1
6409604 Matsuno Jun 2002 B1
6413163 Yamauchi et al. Jul 2002 B1
6419580 Ito Jul 2002 B1
6428411 Togami Aug 2002 B1
6434556 Levin et al. Aug 2002 B1
6456977 Wang Sep 2002 B1
6508706 Sitrick et al. Jan 2003 B2
6529875 Nakajima et al. Mar 2003 B1
6533663 Iwao et al. Mar 2003 B1
6538666 Ozawa et al. Mar 2003 B1
6554707 Sinclair et al. Apr 2003 B1
6556983 Altschuler et al. Apr 2003 B1
6571208 Kuhn et al. May 2003 B1
6572478 Miyamoto et al. Jun 2003 B2
6582230 Aoshima et al. Jun 2003 B1
6582309 Higurashi et al. Jun 2003 B2
6585599 Horigami et al. Jul 2003 B1
6652384 Kondo et al. Nov 2003 B2
6684127 Fujita et al. Jan 2004 B2
6705945 Gavin et al. Mar 2004 B2
6729954 Atsumi et al. May 2004 B2
6899628 Leen et al. May 2005 B2
6920426 Takechi Jul 2005 B2
6928433 Goodman et al. Aug 2005 B2
6935954 Sterchi et al. Aug 2005 B2
6966832 Leen et al. Nov 2005 B2
6979267 Leen et al. Dec 2005 B2
7029394 Leen et al. Apr 2006 B2
7062561 Reisman Jun 2006 B1
7085722 Luisi Aug 2006 B2
7137891 Neveu et al. Nov 2006 B2
7155157 Kaplan Dec 2006 B2
7172118 Urken Feb 2007 B2
7180529 Covannon et al. Feb 2007 B2
7202613 Morgan Apr 2007 B2
7233904 Luisi Jun 2007 B2
7438642 Walker et al. Oct 2008 B2
7452273 Amaitis et al. Nov 2008 B2
7455589 Neveu et al. Nov 2008 B2
7572187 Van Luchene Aug 2009 B2
7613616 Luisi Nov 2009 B2
7717782 Van Luchene May 2010 B2
7731589 Kataoka et al. Jun 2010 B2
7764026 Dowling Jul 2010 B2
7880746 Marks et al. Feb 2011 B2
7946909 Neveu et al. May 2011 B2
7965859 Marks Jun 2011 B2
8295549 Marks Oct 2012 B2
8442403 Weaver May 2013 B2
8714983 Kil May 2014 B2
9108108 Zalewski et al. Aug 2015 B2
9126116 Turner et al. Sep 2015 B2
9155960 Argiro Oct 2015 B2
20010009867 Sakaguchi et al. Jul 2001 A1
20020068626 Takeda et al. Jun 2002 A1
20020082065 Fogel et al. Jun 2002 A1
20020103031 Neveu et al. Aug 2002 A1
20020169617 Luisi Nov 2002 A1
20030109305 Gavin et al. Jun 2003 A1
20040029625 Annunziata Feb 2004 A1
20040166935 Gavin et al. Aug 2004 A1
20060039017 Park et al. Feb 2006 A1
20060178179 Neveu et al. Aug 2006 A1
20060190270 Luisi Aug 2006 A1
20070060231 Neveu et al. Mar 2007 A1
20070087797 Van Luchene Apr 2007 A1
20070244704 Luisi Oct 2007 A1
20070257928 Marks et al. Nov 2007 A1
20070279427 Marks Dec 2007 A1
20080064019 Kaufman et al. Mar 2008 A1
20080109491 Gupta May 2008 A1
20090063463 Turner et al. Mar 2009 A1
20100041475 Zalewski et al. Feb 2010 A1
20100111374 Stoica May 2010 A1
20100138764 Hatambeiki Jun 2010 A1
20100171430 Seydoux Jul 2010 A1
20100213873 Picard et al. Aug 2010 A1
20100312366 Madonna et al. Dec 2010 A1
20160018934 Turner et al. Jan 2016 A1
Foreign Referenced Citations (83)
Number Date Country
1201180 Dec 1998 CN
18385783 Dec 2002 CN
1848742 Dec 2006 CN
101836362 Sep 2010 CN
101849436 Sep 2010 CN
101968827 Feb 2011 CN
201010245413.8 May 2014 CN
104797311 Jul 2015 CN
19905076 Jun 2002 DE
789296 Aug 1997 EP
0850673 Jul 1998 EP
0898237 Feb 1999 EP
0901803 Mar 1999 EP
0913175 May 1999 EP
1029569 Aug 2000 EP
1078661 Feb 2001 EP
1262955 Dec 2002 EP
1355707 Oct 2003 EP
1388357 Feb 2004 EP
1434627 Jul 2004 EP
1630754 Mar 2006 EP
1650706 Apr 2006 EP
1793588 Jun 2007 EP
1262955 Mar 2010 EP
2322257 May 2011 EP
2355627 Sep 1998 GB
2351637 Jan 2001 GB
2356785 May 2001 GB
2411065 Aug 2005 GB
S59-202779 Nov 1984 JP
H07-178246 Jul 1995 JP
H08155140 Jun 1996 JP
9265379 Oct 1997 JP
H10-272258 Oct 1998 JP
H10295935 Nov 1998 JP
2000-334168 Jan 1999 JP
H11-000467 Jan 1999 JP
H11-070273 Mar 1999 JP
H11-119791 Apr 1999 JP
H11-197359 Jul 1999 JP
2000024322 Jan 2000 JP
2000-116946 Apr 2000 JP
2000-176154 Jun 2000 JP
2001009156 Jan 2001 JP
2001029649 Feb 2001 JP
2001-079265 Mar 2001 JP
2001-157779 Jun 2001 JP
2001-198350 Jul 2001 JP
2002-052256 Feb 2002 JP
2002-085835 Mar 2002 JP
2002-092474 Mar 2002 JP
2002-159740 Jun 2002 JP
2002-166048 Jun 2002 JP
2002-191868 Jul 2002 JP
2003-047768 Feb 2003 JP
2003-228585 Aug 2003 JP
2004-529678 Sep 2004 JP
2005-505357 Feb 2005 JP
3741687 Nov 2005 JP
2006-031670 Feb 2006 JP
2006-087459 Apr 2006 JP
2006-099125 Apr 2006 JP
3865721 Oct 2006 JP
2007-249899 Sep 2007 JP
2011-025044 Feb 2011 JP
5580131 Jul 2014 JP
200072753 Dec 2000 KR
0464877 Dec 2004 KR
10-0469822 Jan 2005 KR
10-2002-0044919 Jun 2005 KR
10-2007-0052493 Sep 2008 KR
10-1226305 Jan 2013 KR
1994018790 Aug 1994 WO
WO9714102 Apr 1997 WO
2001082626 Nov 2001 WO
WO2002060548 Aug 2002 WO
WO2003031003 Apr 2003 WO
2005040900 May 2005 WO
2006033360 Mar 2006 WO
2007130641 Nov 2007 WO
2009052659 Apr 2009 WO
2009060376 May 2009 WO
2014070677 May 2014 WO
Non-Patent Literature Citations (138)
Entry
Examination Report dated Sep. 29, 2014 in EP Application No. 10007803.9 filed Jul. 27, 2010.
Internet.com, “Graphical User Interface,” available at http://www.webopedia.com; accessed Sep. 24, 2004. Last Modified May 17, 2004.
Screen Shot of a Civilization Building Game; Available at http://www.s2.com.br/s2arquivos/361/Imagens/2323Image.jpg (accessed Oct. 11, 2005).
Screen Shot of a Civilization Building Game; Available at http://www.s2.com.br/s2arquivos/361/Imagens/2324Image.jpg (accessed Oct. 11, 2005).
Screen Shot of a Flight Simulator; Available at http://foto.spullenbank.nl/common/img/00/00/03/31/—T33178.jpg (accessed Oct. 11, 2005).
Screen Shot of a Flight Simulator; Available at http://orbit.madphys.ucl.ac.uk/images/gallery 64.jpg (accessed Oct. 11, 2005).
Screen Shot of a Role Playing Game; Available at http://images.fok.nl/upload/lotrrotk2.jpg (accessed Oct. 11, 2005).
Screen Shot of a Role Playing Game; Available at http://images.fok.nl/upload/lotrrotk3.jpg (accessed Oct. 11, 2005).
Arcadia, vol. 2, No. 12, Enterbrain, Inc., Dec. 1, 2001, pp. 56-63.
Konami Official Guide Perfect Series, Tokimeki Memorial—Forever with You: Official Guide, First Edition, Konami Corporation, Jun. 29, 1997.
Login, vol. 21, No. 4, Enterbrain, Inc. Apr. 1, 2002, pp. 70-77.
Reynolds, Craig, “Flocks, Herds, and Schools: A Distributed Behavioral Model,” Proceedings of SIGGRAPH '87, Computer Graphics 21(4), Jul. 1987.
Reynolds, Craig, “Interaction with Groups of Autonomous Characters,” Proceedings of Game Developer Conference 2000, San Francisco, CA 2000.
Reynolds, Craig, “Steering Behaviors for Autonomous Characters,” Proceedings of Game Developers Conference 1999.
Super Mario Brothers: Complete Cheat Book, Tokuma Publishing Co., Ltd., Nov. 20, 1985, p. 9.
Yu, Bin et al., “A Social Mechanism of Reputation Management in Electronic Communities,” Proceedings of 4th International Workshop on Cooperative Information Agents, 2000.
Aguilera, S. et al., “Impaired Persons Facilities Based on a Multi-Modality Speech Processing System,” Proc. On Speech & Language Tech., 1993.
Arons, B., “Authoring and Transcription Tools for Speech-Based Hypermedia,” Proc. Of American Voice I/O Society, 1991.
Arons, B., “Hyperspeech: Navigating in Speech-Only Hypermedia,” Proc. Of Hypertext, 1991.
Bennacef, S.K., A Spoken Language System for Information Retrieval Proc. Of ICSLP, 1994.
Gauvain, J.L. et al., “Speech Recognition for an Information Kiosk,” Proc. Of ICSLP, 1996.
Gauvain, J.L. et al., “Spoken Language Component of the Mask Kiosk,” Human Comfort and Security fo Information Systems, 1995.
Gauvain, J.L. et al., “The LIMSI Continuous Speech Dictation System,” Proc. ARPA Human Lang. & Technology, 1994.
Gauvain, J.L. et al., “The LIMSI Continuous Speech Dictation System: Evaluation on the ARPA Wall Street Journal Task,” Proc. Of the IEEE-ICASSP, 1994.
Goddeau, D. et al., “Galaxy: A Human-Language Interface to On-Line Travel Information,” Proc. Of ICSLP, 1994.
House, D., “Spoken-Language Access to Multimedia (SLAM): Masters Thesis,” Oregon Graduate Inst., Dept. Of CS and Eng., 1995.
Mostow, Jack et al., “Towards a Reading coach That Listens: Automated Detection of Oral Reading Errors”, Proc. Of the 11th Ntl. Conf. on A.I., 1993.
Russell, M. et al., “Applications of Automatic Speech Recognition to Speech and Language Development in Young Children,” Proc. Of ICSLP, 1996.
Lamel, L.F. et al., “Recent Developments in Spoken Language Systems for Information Retrieval,” ESCA ETRW Spoken Dialog Systems, 1995.
Language Industry Monitor, “Janet Baker's Optimism,” 1992.
Julie O'B. Dorsey et al., Design and Simulation of Opera Lighting and Projection Effects, Program of Computer Graphics, Computer Graphics, Jul. 1991, vol. 25, No. 4, New York.
Justin Calvert, SCEE's latest plans for its Eye Toy peripheral will effectively turn the PlayStation 2 into a videophone. First screens inside, SCEE announces Eye Toy; Chat, Game spot, http://www.gamespot.com/news/6095429.html, May 5, 2004.
Shree K. Nayer et al., Lighting Sensitivity Display, ACM Transactions on Graphics, Oct. 2004, vol. 23, No. 4, pp. 963-979, New York.
Simon Spagnoletti, Philips Ambilight TV, Home Entertainment, engadget, Jul. 8, 2004.
Keith Diefendorff, “Sony's Emotionally Charged Chip”, Microprocessor Report, vol. 13, No. 5, Apr. 19, 1999.
Sony Computer Entertainment, Inc., “Fantavision Game Manual”, 2000.
Wikipedia—The Free Encyclopedia, “Aimbot”, http://en.wikipedia.org/wiki/Aimbot (last updated Jun. 3, 2005; last accessed Jul. 5, 2005).
Agarwal, Ganesh, et al., “Ranking database Queries Using User Feedback: A Neural network Approach”, CS511 Project, Advanced Database Management Systems, Fall 2006.
Agichtein, Eugene, et al., “Improving Web Search Ranking by Incorporating User Behavior Information”, SIGIR 2006, Aug. 6-11, ACM.
Bhattacharjee, Rajat, et al., “Incentive Based ranking Mechanisms”, Position Paper, Department of Computer Science, Stanford University, 2006.
Chaudhuri, Surajit, et al., “Probabilistic Information Retrieval Approach for Ranking of Databased Query Results,” 2006.
Chidlovskii, Boris, et al., “Collaborative Re-Ranking of Search Results”, Xerox Research Centre Europe, AAAI-2000, Workshop on Al for Web Search, 2001.
Kang, Jaewood, et al., Establishing Value Mappings Using Statistical Models and User Feedback, CIKM '05, Oct. 31-Nov. 5, 2005, 2005, ACM.
W3C Working Draft Jun. 18, 2007, The XMLHttpRequest Object, W3C, http://www.w3.org/TR/2007/WD-XMLHttpRequest-20070618/.
European Search Report dated Jan. 19, 2004 in EP Application No. EP02009339. 1919EP dated Jan. 19, 2004.
Communication from the Examining Division for EP 02009339 dated Jan. 19, 2006. 1919EP dated Jan. 19, 2006.
Communication from the Examining Division for EP 02009339 dated Dec. 11, 2006. 1919EP dated Dec. 11, 2006.
Communication from the Examining Division for EP 02009339 dated Jul. 4, 2007. 1919EP dated Jul. 4, 2007.
Communication from the Examining Division for EP 02009339 dated Sep. 17, 2008. 1919EP dated Sep. 17, 2008.
Communication from the Examining Division about intention to grant a European Patent for EP 02009339 dated Nov. 16, 2009. 1919EP dated Nov. 16, 2009.
Communication re: Decision to grant a European Patent for EP 02009339 dated Feb. 18, 2010. 1919EP dated Feb. 18, 2010.
International Search Report for PCT/US02/32438 dated Feb. 4, 2013. 2053PCT dated Feb. 4, 2003.
International Search Report for PCT/US2007/010944 dated Feb. 18, 2008. 3727PCT dated Feb. 18, 2008.
Rule 109/110 Communication from the Examining Division regarding possible amendment of claims for EP 02769043.7 dated May 25, 2004. 2053EP dated May 25, 2004.
European Search Report dated Dec. 21, 2004 in EP Application No. EP02769043.7. 2053EP dated Dec. 21, 2004.
Communication from the Examining Division dated Apr. 28, 2005 in EP Application No. EP02769043.7. 2053EP dated Apr. 28, 2005.
Communication from the Examining Division regarding Summons to attend oral proceeding dated Oct. 24, 2006 in EP Application No. EP02769043.7. 2053EP dated Oct. 24, 2006.
Communication from the Examining Division regarding Decision to refuse a European patent application dated Jan. 31, 2007 in EP 027699043.7. 2053EP dated Jan. 31, 2007.
International Search Report for PCT/US02/02710 dated Sep. 12, 2002. 3656PCT dated Sep. 12, 2002.
Rule 109/110 Communication from the Examining Division regarding possible amendment of claims for EP 02704295.1 dated Sep. 5, 2007. 3656EP dated Sep. 5, 2007.
Communication from the Examining Division dated Apr. 23, 2004 in EP Application No. 02704295.1. 3656EP dated Apr. 23, 2004.
Communication from the Examining Division dated Dec. 15, 2004 in EP Application No. 02704295.1. 3656EP dated Dec. 15, 2004.
Communication from the Examining Division re: Summons to attend oral proceedings dated Dec. 13, 2005 in EP Application No. 02704295.1. 3656EP dated Dec. 13, 2005.
Communication from the Examining Division re: Decision to refuse a European Patent application dated Apr. 12, 2006 in EP Application No. 02704295.1. 3656EP dated Apr. 12, 2006.
Rejection dated in CN application 201010245413.8 dated Sep. 7, 2012 4383CN dated Sep. 7, 2012.
Rejection mailed in CN application 201010245413.8 dated Apr. 1, 2013 4383CN dated Apr. 1, 2013.
European Search Report for EP 10007803.9 dated Aug. 8, 2013. 4383EP dated Aug. 8, 2013.
Rejection dated Mar. 26, 2013 in JP Application No. 2010-167803 4383JP dated Mar. 26, 2013.
Rejection dated Mar. 16, 2012 in KR Application No. 10-2010-0072613 4383KR dated Mar. 16, 2012.
International Search Report & Written Opinion dated May 1, 2014 in Application No. PCT/US2013/067135 filed Oct. 28, 2013. 6133PCT dated May 1, 2014.
Rejection dated Mar. 2, 2004 in KR Application No. 10-2002-00265621 1919KR dated Mar. 2, 2004.
Decision to Grant dated Oct. 5, 2005 in JP Application 2002-5607373 3656JP dated Oct. 5, 2005.
Rejection dated Nov. 16, 2003 in JP Application 2002-5607373 3656JP dated Nov. 16, 2003.
Rejection dated in CN application 201010245413.8 dated Nov. 5, 2013 4383CN dated Nov. 5, 2013.
European Search Report for EP 03254168.2 dated Apr. 23, 2004. 2008EP dated Apr. 23, 2004.
1st Communication from the Examining Division in EP 03254168.2 dated Sep. 29, 2006. 2008EP dated Sep. 29, 2006.
Stern, Andrew. Virtual Babyz: Believable agents with Narrative Intelligence, Narrative Intelligence AAAI Symposium, Nov. 1999. Online. Viewed Apr. 28, 2006. http://www.cs.cmu.edu/afs/cs/user/michaelm/www/nidocs/Stern.html 2008US May 16, 2006.
“Babyz Features Page.” Online. Viewed May 3, 2006. www.babyz.net/features.html 2008US May 16, 2006.
“Babyz”. Wikipedia online reference. Viewed May 1, 2006. http://en.wikipedia.or.q/wiki/babyz 2008US May 16, 2006.
“Sprigg, Examiner's Affidavit,” Feb. 4, 2000. 2008US Feb. 5, 2007.
Northwestern University CS395, Game Design Course “Simulation and Modeling: Under the Hood of the Sims”, Spring 2002. http://www.cs.northwestern.edu/%7Eforbus/c95-gd/lectures/The—Sims—Under—the—Hood—files/frame.htm 2008US May 16, 2006.
Simpson, Dan. “The Complete Sims Guide” Feb. 6, 2005, pertinent sections printed from the Internet, may also be found in its entirety at: http://www.neoseeker.com/resourcelink.html?rlid=16238&rid=15516 2008US Nov. 17, 2005.
“Sequence Paradium 2—Laughter in the Dark—Tactical Guidebook”, First Edition, Keibunsha Inc., Feb. 10, 2005, pp. 5-32. 2008US Jan. 30, 2006.
Sprigg, Examiner's Affidavit, Nov. 9, 2005 2008US Nov. 17, 2005.
Stern, Andrew. “Andrew Stern”. Online. Viewed Apr. 28, 2006. http://quvu.net/andrew/resume.html 2008US May 16, 2006.
Stewart, Nick. “The Adrenaline Vault Review of the Sims”, Mar. 9, 2000. Printed from the Internet. 2008US Nov. 17, 2005.
“The Sims”, Oct. 14, 2005, pertinent sections printed from the Internet, may also be found in its entirety at: http://pc.gamespy.com/pc/the-sims/ 2008US Nov. 17, 2005.
Decision to Grant / Notice of Allowance dated Jun. 3, 2014 in JP 2010167803 filed Jul. 27, 2010. 4383JP dated Jun. 3, 2014.
Rejection dated Mar. 15, 2005 in JP 2003-288128 filed Aug. 6, 2003 2008JP dated Mar. 15, 2004.
Rejection dated Dec. 13, 2005 in JP 2003-288128 filed Aug. 6, 2003 2008JP dated Dec. 13, 2005.
Notice of Allowance dated Oct. 31, 2012 in KR 10-2010-0072613 4383KR 10/31/201.
Rejection dated Nov. 15, 2016 in CN 201380056819.3 filed Oct. 28, 2013. 6 pages [16 pages including translation].
“Office Action,” Chinese Patent Application No. 201380056819.3, dated Jun. 23, 2017, 3 pages [7 pages including translation].
OA, dated Dec. 17, 2003, U.S. Appl. No. 09/859,034, filed May 14, 2001.
FOA, dated Jun. 4, 2004, U.S. Appl. No. 09/859,034, filed May 14, 2001.
AA, dated Aug. 25, 2004, U.S. Appl. No. 09/859,034, filed May 14, 2001.
OA, dated Jan. 19, 2005, U.S. Appl. No. 09/859,034, filed May 14, 2001.
FOA, dated Jun. 24, 2005, U.S. Appl. No. 09/859,034, filed May 14, 2001.
AA, dated Sep. 2, 2005, U.S. Appl. No. 09/859,034, filed May 14, 2001.
NOA, dated Jan. 13, 2006, U.S. Appl. No. 09/859,034, filed May 14, 2001.
OA, dated Jul. 9, 2003, U.S. Appl. No. 10/268,278, filed Oct. 9, 2002.
NOA, dated Dec. 2, 2003, U.S. Appl. No. 10/268,278, filed Oct. 9, 2002.
NOA, dated Feb. 16, 2007, U.S. Appl. No. 11/403,716, filed Apr. 13, 2006.
OA, dated Feb. 25, 2003, U.S. Appl. No. 09/773,452, filed Jan. 31, 2001.
OA, dated Jun. 5, 2003, U.S. Appl. No. 09/773,452, filed Jan. 31, 2001.
FOA, dated Jun. 1, 2004, U.S. Appl. No. 09/773,452, filed Jan. 31, 2001.
FOA, dated Sep. 24, 2004, U.S. Appl. No. 09/773,452, filed Jan. 31, 2001.
AA, dated May 4, 2005, U.S. Appl. No. 09/773,452, filed Jan. 31, 2001.
OA, dated Sep. 13, 2005, U.S. Appl. No. 09/773,452, filed Jan. 31, 2001.
FOA, dated Mar. 16, 2006, U.S. Appl. No. 09/773,452, filed Jan. 31, 2001.
NOA, dated Jul. 11, 2006, U.S. Appl. No. 09/773,452, filed Jan. 31, 2001.
OA, dated Jun. 2, 2008, U.S. Appl. No. 11/375,296, filed Mar. 13, 2006.
NOA, dated Sep. 25, 2008, U.S. Appl. No. 11/375,296, filed Mar. 13, 2006.
OA, dated Mar. 25, 2010, U.S. Appl. No. 11/624,886, filed Jan. 19, 2007.
FOA, dated Aug. 24, 2010, U.S. Appl. No. 11/624,886, filed Jan. 19, 2007.
NOA, dated Feb. 18, 2011, U.S. Appl. No. 11/624,886, filed Jan. 19, 2007.
OA, dated May 2, 2008, U.S. Appl. No. 11/591,314, filed Oct. 31, 2006.
OA, dated Aug. 2, 2010, U.S. Appl. No. 11/591,314, filed Oct. 31, 2006.
NOA, dated Jan. 13, 2011, U.S. Appl. No. 11/591,314, filed Oct. 31, 2006.
NOA, dated Sep. 18, 2009, U.S. Appl. No. 11/764,795, filed Jun. 18, 2007.
OA, dated Apr. 1, 2011, U.S. Appl. No. 11/850,516, filed Sep. 25, 2004.
FOA, dated Sep. 15, 2011, U.S. Appl. No. 11/850,516, filed Sep. 25, 2004.
OA, dated Dec. 3, 2013, U.S. Appl. No. 11/850,516, filed Sep. 25, 2004.
OA, dated Dec. 3, 2013, U.S. Appl. No. 12/509,848, filed Jul. 27, 2009.
OA, dated Nov. 17, 2005, U.S. Appl. No. 10/364,951, filed Feb. 11, 2003.
FOA, dated May 16, 2006, U.S. Appl. No. 10/364,951, filed Feb. 11, 2003.
AA, dated Aug. 18, 2006, U.S. Appl. No. 10/364,951, filed Feb. 11, 2003.
OA, dated Feb. 5, 2007, U.S. Appl. No. 10/364,951, filed Feb. 11, 2003.
OA, dated May 29, 2014, U.S. Appl. No. 12/509,848, filed Jul. 27, 2009.
NOA, dated Jun. 19, 2014, U.S. Appl. No. 11/850,516, filed Sep. 5, 2007.
Non-Final Office Action, dated Aug. 11, 2014, U.S. Appl. No. 11/850,516, filed Sep. 5, 2007.
Notice of Allowance, dated Jan. 16, 2015, U.S. Appl. No. 11/850,516, filed Sep. 5, 2007.
Non-Final Office Action, dated Sep. 19, 2014, U.S. Appl. No. 12/509,848, filed Jul. 27, 2009.
Final Office Action, dated Feb. 25, 2015, U.S. Appl. No. 12/509,848, filed Jul. 27, 2009.
Notice of Allowance, dated Jun. 19, 2015, U.S. Appl. No. 12/509,848, filed Jul. 27, 2009.
“Notice of Allowance”, European Patent Application No. 10007803.9, Oct. 23, 2017, 7 pages.
Wikipedia Article on Diablo II, http://en.wikipedia.org/wiki/Diablo—II, 2010, 8 pages. As cited verbatim by Examiner in U.S. Appl. No. 11/591,314 in Notice of References cited on Aug. 2, 2010.
Diablo II Frost nova Description, http://diablo2.diablowiki.net/Frost—Nova, Oct. 30, 2009, 5 pages. As cited verbatim by Examiner in U.S. Appl. No. 11/591,314 in Notice of References cited on Aug. 2, 2010.
Related Publications (1)
Number Date Country
20140121009 A1 May 2014 US