The invention relates generally to in-flight entertainment systems and, more particularly, to a full in-seat digital video system.
Current in-flight entertainment (IFE) systems are tailored to the needs of aircraft that carry more than 150 passengers. Such aircraft have spacious interiors as well as generous weight and power constraints, and the IFE system used therein have seat boxes mounted under the seat, large closets and monuments in which to store head-end equipment, and in-arm passenger control units to control the audio, video and cabin attendant functions. Additionally, many current IFE systems are not sufficiently robust enough to recover from the failure of any major component.
In accordance with the foregoing, a system for providing in-flight entertainment with data redundancy is provided. In an embodiment of the invention, the system includes a first server and a second server disposed within an aircraft, each having stored thereon digital content. The system also includes a network switch that is communicatively linked to both the first and the second servers, and video display units, each being located proximate to a passenger seat within the aircraft, communicatively linked to the network switch, and having a user interface that permits a passenger to request digital content. Both the first and second servers are configured to transmit their respective stored digital content to the video display units via the network switch. Each of the plurality of video display units decodes and displays the video content upon receiving it.
In another embodiment of the invention, a system for providing in-flight entertainment is located on-board an aircraft and includes an on-demand server with stored digital content, first and second network switches communicatively linked to the on-demand server, and video display units. Each video display unit is located proximate to a passenger seat within the aircraft and is communicatively linked to both the first and second network switches. Each video display unit has a user interface that permits a passenger at the seat to request digital content. The on-demand server transmits its stored digital content to a subset of the plurality of video display units via either the first or second network switch. Both the first network switch and the second network switch are configured to route the digital content to a subset of the plurality of video display units, which then decode and display the digital content upon receiving it.
In yet another embodiment of the invention, a system for providing data redundancy on an in-flight entertainment network that is deployed on an aircraft includes a server having stored therein digital content, video display units distributed throughout the aircraft and linked together in a daisy chain. The units at the two respective ends of the daisy chain are linked to a primary communications path and a secondary communications path. The server transmits its stored digital content to the video display units via both the primary and secondary communications path. Upon receiving the content, each of the plurality of video display units decodes and displays it.
An embodiment of the invention is illustrated in
The system 100 also includes a cabin management terminal 152 that is communicatively linked to the network and that permits the flight crew to control and configure aspects of the system. In the illustrated embodiment, the cabin management terminal (CMT) 152 is physically located in a cabin attendant shelter 150 on the aircraft. The system further includes a first on demand server 130-1 and a second on-demand server 130-2, which provide pre-stored digital content to the network. Digital content may also be provided from a variety of other sources including a satellite TV and radio (SAT TV) subsystem 140 that receives real-time TV and radio signals. The SAT TV subsystem 140 is interfaced to the ESU 120 through an audio-video controller (AVC) 170. In the illustrated embodiment, the on-demand servers 130-1 and 130-2 are physically located in a utility cabinet 172.
The hardware components of the IFE system 100 may be physically arranged in any suitable manner. In one embodiment, the ESU 120, on-demand servers 130-1 and 130-2, and the AVC unit 170 are installed in the cargo or electronics bay, including the rack provisions, cooling, and power, with the CMT 150 and dual RJ-45 data loading ports being installed in the main cabin. The CMT 150 may also be located in a forward facing closet, or located in the “hat-rack” or shelf inside the closet area. RJ-45 jacks and DC power jacks may be mounted along the sidewall for each group of seats, thereby providing both a data connection and a power connection for the parts of the IFE system 100 located near that group of seats.
The system may also include at least one wireless access point (WAP) 180 that may, in some situations, be used by passengers with laptop computers or other wireless devices. The WAP 180 provides wireless LAN network connectivity for airborne applications. The WAP 180 is connected to the IFE system 100 via the ESU 120 and allows passenger wireless devices (e.g., laptops) to connect to the on-board cache Web content and entertainment services, as well as off-aircraft connectivity services. The WAP 180 is ARINC 763 (Network Service System) compliant, and is based on the IEEE 802.11b standard. It employs DSSS (Direct Sequence Spread Spectrum) and operates in the 2.4 GHz radio frequency band. Each WAP 180 has a range of at least 300 feet (or at least 100 meters), and transfers data effectively at rates of at least 11 Mbps. Moreover, additional WAPs can be daisy-chained together. Furthermore, some or all of the network of the IFE system 100 may be wireless, using the WAP 180 to access the network.
In the system illustrated in
In general, the system and method described herein uses a layering approach that combines a large, many port switch at a head-end of a network with a small, localized switch close to the seats. While the actual configuration of the switches is flexible, the basic concept is that each SVDU is connected to one or more head-end servers through a flat, layer 2, Ethernet switch matrix. In this regard,
In an embodiment of the invention, each SVDU 110 can be any suitable monitor for in-seat on-demand content and multicast digital broadcast video and audio viewing in-seat video. The SVDU may include an 8.9″ touch screen liquid crystal display (LCD) monitor that features a 16:9 widescreen aspect ratio and is designed to fit in the limited space of a jet seat (e.g., a regional jet Economy Class seat). For example, the SVDUs 110 may be designed to be installed in seat arms, seat backs, consoles, and/or wall mounted. Moreover, the SVDUs can include a decorative shroud. The SVDU 110 may be approximately 2-3 pounds and require approximately 10-15 watts of power. Users may interact with the SVDU via the touch screen monitor.
According to an embodiment of the invention, each SVDU 110 executes a high-speed, high-performance Web browser processor that enables applications and Web menu pages to load. The SVDUs are also capable of providing advanced features, such as displaying video program while simultaneously displaying a Web page or graphic from another source (similar to Picture-in-Picture). The SVDUs have a large amount of memory storage that allows some applications, such as games, to be resident within the SVDU. When a passenger selects a local game to play, all of the loading and interaction is within the SVDU. This not only speeds up the loading of the game, it also ensures that games are available even if there is a failure of the IFE network. Web page technology is used for easy passenger Graphical User Interface (GUI) design and modification. A generic GUI is standard with the IFE system 100, and customizations of all menus and applications may be performed to meet each airline's unique requirements.
Each SVDU 110 can also include: (1) integrated hardware MPEG decoders; (2) local games storage and processing; (3) one or more USB ports for passenger peripherals (such as remote keyboard, game controllers, etc.); (4) a privacy filter; and (5) an integral credit card reader for financial transactions. Additionally, the SVDU may have an external audio jack instead of an integrated audio jack, and may have a separate passenger control device for the passenger to use as a data entry and navigation aid.
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The CMT 150 receives DC power from the DC power converter 160 and network connectivity via the ESU 120. The front panel of CMT 150 can include a power switch, brightness control, and Universal Serial Bus (USB) ports for carry-on external peripherals (e.g., CD/DVD-ROMs, floppy disc drives, USB thumb drives and keyboards). Crew operation of CMT 150 may also be via a portable USB-type keyboard.
The AVC 170 provides at least 24 channels of encoding of analog video and audio sources such as tape decks, DVD players, and satellite audio and video signals. The AVC 170 encodes in real time the external analog signals and provides MPEG-1 multicast digital streams to the IFE system 100.
The SAT TV 140 may include: an Antenna Control Unit (ACU), a radome assembly, a System Signal Processor (SSP), and a Receiver Decoder Unit (RDU). The ACU is a full range Ku-band antenna operating over the entire Direct Broadcasting Satellite (DBS) range of 10.7 to 12.75 GHz. The ACU provides fully automated acquisition and tracking of the designated satellite. The radome assembly is designed with a blunt aerodynamic approach providing a low drag solution and yielding a negligible impact on fuel burn. The radome passes the full range of DBS frequencies with minimal loss and features a single centerline diverter strip to protect against lightning strikes. Moreover, the radome features blow-out panels for pressurization and incorporates drainage paths to account for water condensation. The SSP processes the aircraft navigation data received from the ARINC 429 interface, and the SSP shares satellite information with the RDU through a RS-485 data bus. The SSP also controls the ACU acquisition through an RS-422 interface. The RDU provides eight channels of DBS signal programming.
Various features and embodiments of the present invention will now be described with reference to
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In an embodiment of the invention, the IFE system is able to load flight information automatically according to the flight phase. In particular, for example, flight information can be input via the ARINC 429 interface connections to the flight guidance computer and the air data computer. Moreover, content can be scripted and automatically broadcasted from the server to the IFE system. In this regard, many different scripts can be stored on the aircraft and triggered by various parameters such as flight phase and routing. This allows route specific programming with little or no flight attendant intervention. Scripting can be provided to manage the in-seat IFE access as needed. The cabin crew has the possibility to override the automated functionality via the CMT 150. Furthermore, the IFE system includes loader ports 175 (
Although only a few exemplary embodiments of the present invention have been described in detail above, those skilled in the art will readily appreciate that many modifications are possible in the exemplary embodiments without materially departing from the novel teachings and advantages of this invention. Accordingly, all such modifications are intended to be included within the scope of this invention as defined in the following claims.
This application claims priority to U.S. Provisional Patent Application Ser. No. 60/625,476 filed on Nov. 5, 2004, which is incorporated herein by reference in its entirety.
Number | Date | Country | |
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60625476 | Nov 2004 | US |