WO1982004170A1 - Information distribution system - Google Patents

Information distribution system Download PDF

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Publication number
WO1982004170A1
WO1982004170A1 PCT/US1982/000641 US8200641W WO8204170A1 WO 1982004170 A1 WO1982004170 A1 WO 1982004170A1 US 8200641 W US8200641 W US 8200641W WO 8204170 A1 WO8204170 A1 WO 8204170A1
Authority
WO
WIPO (PCT)
Prior art keywords
optical
hub
distribution center
signal
subscriber
Prior art date
Application number
PCT/US1982/000641
Other languages
French (fr)
Inventor
Fiber Communications Inc Times
Douglas A Pinnow
Gary E Miller
Original Assignee
Times Fiber Communications
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Times Fiber Communications filed Critical Times Fiber Communications
Priority to DE8282901948T priority Critical patent/DE3278901D1/en
Priority to DE1982901948 priority patent/DE78843T1/en
Publication of WO1982004170A1 publication Critical patent/WO1982004170A1/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N7/00Television systems
    • H04N7/22Adaptations for optical transmission
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N7/00Television systems
    • H04N7/16Analogue secrecy systems; Analogue subscription systems
    • H04N7/173Analogue secrecy systems; Analogue subscription systems with two-way working, e.g. subscriber sending a programme selection signal
    • H04N7/17345Control of the passage of the selected programme
    • H04N7/17354Control of the passage of the selected programme in an intermediate station common to a plurality of user terminals

Definitions

  • the subject invention is directed to an information distribution system, particularly adapted for cable television (CATV) broadcasting.
  • CATV cable television
  • the television signal is transmitted to individual subscribers through coaxial cable.
  • Each subscriber's unit is tapped into a trunk line
  • a "ramified" distribution network is proposed by Grodner et al in U.S. Patent 3,751,670.
  • the television signal is transmitted directly to an individual subscriber from a distribution center using optical signals as the transmission medium.
  • the optical ' signals are transmitted in free space from the distribution center to a receiver at the subscriber station.
  • Mirrors are used when it is necessary to change the direction of the signal to avoid obstacles.
  • Each subscriber station is also equipped with means for generating and transmitting an optical signal to the distribution station to request service.
  • each individual subscriber receives a single signal directed from the distribution station, there is no need to employ frequency division multi ⁇ plexing in providing multi-channel service to the subscriber. This permits more precision in measuring the use of the system by each subscriber for accounting purposes.
  • the ramified distribution network exhibits different, but equally serious, shortcomings. For example, because each subscriber station must be within signalling range of a distribution station, many distribution stations are required to service an area which would normally be served by a single broad ⁇ casting station. This is especially true in an urban area where buildings limit the number of straight, unobstructed paths which are required for transmitting
  • O PI /, W1PO optical signals between the distribution and subscriber stations The only way in which the optical signals can be made to change direction is by interposing a series of mirrors, which presents other obvious dis- advantages. Additionally, weather conditions can adversely affect the quality of the optical signals transmitted through free space, thereby causing poor reception at the subscriber station.
  • Fiber optics have been used in a limited number of cable TV trunk lines and, in at least one case, t for distribution to homes in Japan.
  • the Japanese system known as Hi-OVIS, connects approximately 160 homes with a two-way switched video system.
  • Trans ⁇ mission is done at baseband on plastic clad silica fibers using LED sources.
  • the system requires two optical fibers for each subscriber unit to provide two-way video service. While the Hi-OVIS system avoids the problems associated with open air optical signalling, because of the complexity and expense of the video switch and the use of two-way video service, the system is far from economically viable.
  • Another system employing fiber optics is disclosed in U.S. Patent 4,135,202.
  • a common optical fiber connects a plurality of subscrib ⁇ ers with a central broadcasting station.
  • the system is similar to the trunk line system which conventionally employs coaxial cable.
  • the patent discloses connecting a plurality of subscribers to the central broadcasting station with a plurality of individual optical fibers.
  • Each subscriber is further connected to the central station by one or more individual auxiliary transmission lines.
  • Another object of the invention is to provide an information distribution system which makes available to the subscriber a wide variety of services in addition to video programs.
  • an information distribution system comprised of at least one hub distribution center (more simply referred to as the hub) connected to a plurality of individual transmission lines.
  • the hub distribution center is equipped with means for selecting a single information signal from a plurality of signals having different characteristic frequencies in response to a signal received from a subscriber unit, for convert- ing the single signal to the transmission frequency and for transmitting the signal to an individual subscriber unit.
  • the hub distribution center also contains means for receiving signals generated and transmitted from each subscriber unit over its individual connection to the hub, to select an information signal available at the hub.
  • Each subscriber unit contains means for generating a signal which identifies one of the information channels available at the hub and means for transmitting this signal to the hub.
  • the transmission lines which connect the hub and the subscribers are comprised of fiber optic cables or bidirectional coaxial cables.
  • the hub system of the invention is particularly suited for cable TV distribution in which case the inform ⁇ ation signals would be video channels fed to the hub.
  • FIG 1 illustrates an information distribution system designed in accordance with the invention.
  • Figure 2 is a functional diagram showing a subscriber unit in a conventional cable TV distribution system.
  • Figure 3 is a functional diagram showing the connection of a subscriber unit to a hub distribution center in accordance with the invention.
  • Figure 3a is a functional diagram of a residential interface unit (RIU) in accordance with a preferred embodiment of the invention.
  • Figure 3b is a functional diagram of a digital controller which is part of a central distribution unit (CDU) in accordance with a preferred embodiment of the invention.
  • CDU central distribution unit
  • FIG. 3c is a functional diagram of a converter module which is part of a central distribution unit (CDU) in accordance with a preferred embodiment of the invention.
  • CDU central distribution unit
  • Figure 4 shows the unit required at the hub and subscriber unit for receiving and transmitting optical signals of different wavelengths between a subscriber unit and a hub over a single, bidirectional optical fiber.
  • Figure 5 shows the unit required at the hub and subscriber unit for receiving and transmitting optical signals of the same wavelength between a subscriber unit and a hub over a single, bidirectional optical fiber.
  • Figure 6 shows a preferred fiber optic cable connection between a hub distribution center and a subscriber unit.
  • Figure 6a is a cross-sectional view of the riser cable shown in Figure 6.
  • Figure 6b is a cross-sectional view of the home run cable shown in Figure 6.
  • FIG. 1 The Figures of Drawing illustrate various embodiments of a distribution system designed in accordancewith the invention.
  • the system is composed of hub distribution centers 1 which are connected by trunk lines 2.
  • Each hub distri ⁇ bution center is also connected to a plurality of subscriber units 3 by transmission lines 4.
  • the trunk lines may be constructed from conventional coaxial cable or from fiber optic cable. It is also possible for the hub distribution centers to receive the trunk signals via satellite, in which case the trunk lines would be eliminated in favor of satellite receivers.
  • the trunk lines feed into central distribution stations which provide the signal for a plurality of hub distribution centers.
  • the transmission lines which connect a subscriber unit to a hub are fiber optic cable or bidirectional coaxial cable as described in detail hereinafter.
  • the hub center may be located several miles from the subscribers, generally in rural areas, or very close to the subscribers, e.g., in the same building, in high-rise dwellings in urban areas.
  • Urban settings are particularly suited for the system of the invention since each high-rise dwelling can be serviced by a single hub center.
  • FIGs 2 and 3 The design of a commercial, state-of-the-art subscriber unit employed in existing cable TV systems and the combination of a subscriber unit with a hub distribution center in accordance with the invention are depicted in Figures 2 and 3, respectively, for purposes of comparison.
  • the subscriber unit of a conventional system is seen to be provided with a CATV feed 6, directly from trunk line 5.
  • the feed consists of all available video channels in a frequency division multiplexed mode.
  • the multiplexed video channels are directed into tuner 7 which selects an individual channel in response to a channel select signal, converts it to the appropriate viewing frequency (generally corresponding to Channels 2, 3, or 4) and transmits it to the subscriber's TV set.
  • the tuner is stabilized by a phase-lock loop contained in decoder 9 that receives a reference signal from a crystal controlled oscillator. This renders the tuner insensitive to drifting, thereby eliminating the need for periodic tuner adjustments.
  • the channel select signal is generated by a micro-processor controlled channel select unit 10. To operate this unit, the subscriber pushes a button corresponding to the desired function (e.g., on-off, video channel, or other service) on keyboard 11 and activates the micro-processor 12 which is programmed to send the appropriate information to the decoder 9. As pictured in Figure 2, the keyboard is often placed in a handheld, remote control unit 13, for added convenience.
  • a characteristic signal is transmitted and received by remote control receiver 14 where it is con ⁇ verted to an electrical signal and fed to the micro ⁇ processor.
  • the channel select unit also contains a digital display 15, driven by display drive 16, which displays the number of the channel selected by the subscriber.
  • Decoder 9 receives and interprets the channel select information transmitted by the micro-processor in the form of serial data and clock bit streams.
  • the serial data identifies the channel, while the clock identifies the serial data as valid.
  • the decoder selects the requested video channel from the tuner by generating a characteristic voltage which identifies the video channel.
  • the tuner is stabilized by the phase-lock loop which insures that the tuner remains responsive to the voltages generated by the decoder.
  • Power supply 17 provides the power to drive the various components of the subscriber unit.
  • Relay 18 is provided to turn the TV on and off when the on-off button is pressed on the channel select unit.
  • the subscriber unit is comprised of channel select unit 30, which is identical to the channel select unit 10 contained in the subscriber unit of Figure 2.
  • the unit comprises keyboard 31, micro-processor 32, handheld remote control panel 33, remote control receiver 34, display 35 and display drive 36, all functioning in the same manner as discussed with respect to Figure 2.
  • Power supply 37 and .relay 38 are also present for the reasons previously stated.
  • the subscriber unit in the system of the invention differs from the conventional unit in that the decoder and tuner which select the requested video channel and convert it to the appropriate viewing frequency are separate from the subscriber unit and housed in the hub distribution center. Accordingly, the subscriber unit must contain means for transmitting the channel select - -
  • the former is provided by multiplexer 39 and optical transmitter 40.
  • the multiplexer combines the serial data and clock output from the micro-processor and directs it to the optical transmitter where it is transformed into an optical signal and transmitted to the hub through opti ⁇ cal fiber 41. Because the channel select information is multiplexed, only one optical fiber is required for transmission. Without a multiplexer, two transmission lines would be necessary to carry the channel select information to the hub. Hence, while the inclusion of the multiplexer in the subscriber unit is not absolutely necessary, it is much preferred as it simplifies transmission of the channel select informa ⁇ tion.
  • the need for a multiplexer can be avoided by employing a micro-processor which provides only data output which can be transmitted directly to the optical transmitter without multiplexing as described hereinafter with respect to the preferred embodiments of the invention.
  • the components of the subscriber unit are housed in two separate parts.
  • the channel select unit 30 is conveniently housed in a keypad located on the subscriber's TV set.
  • the keypad allows for tiered access to over 100 video channels and other functions such as opinion polling, pay-per-view, parental authorization codes and other interactive services made available by the cable operator at the hub.
  • the remaining components of the subscriber unit are housed in a permanently mounted wall unit, referred to as a
  • FIG. 3a depicts a typical RIU for use in the system of the invention. It comprises digital LED transmitter 61, and a low-noise wideband optical receiver 62.
  • the optical receiver uses a low voltage, high speed PIN detector 63, packaged to provide optiumum coupling to a large core optical fiber without using a pigtail.
  • a low-noise, wide band trans- impedance amplifier 64 performs the necessary current-to- voltage transformation.
  • the video channel and FM band are made available at separate connectors via a buffer stage 65 and power splitter 66.
  • Line receiver 67 regener ⁇ ates the data streams transmitted from the subscriber's keypad and directs it to the optical transmitter 61. The need for a multiplexer is avoided in this embodiment since only data and conjugate data streams are trans ⁇ mitted from the keypad.
  • Voltage regulator 68 provides the necessary power to drive the. keypad and RIU.
  • the optical signal is received by optical receiver 42 and demultiplexed -by demultiplexer 43.
  • This returns the channel select information into the same form as exited the micro-processor in the subscriber unit.
  • the channel select information is directed to decoder 44 which, as previously described, interprets the information and selects the desired video channel from tuner 45.
  • the tuner receives the CATV feed 46 in frequency division multiplexed form from trunk line 47, converts the reques ⁇ ted video channel to the appropriate viewing frequency and directs it to optical transmitter 48 where it is transformed into an optical signal and transmitted to the requesting subscriber unit through optical fiber 49.
  • the components in the hub are driven by power supply 50.
  • the hub should be constructed with a view towards expansion.
  • the components of the hub are organized into central distribution units (CDU) comprised of two main sections, a digital controller and converter modules. Each CDU is capable of servicing twenty-four subscribers.
  • the digital controller depicted in Figure 3b, communicates with subscribers as well as cable operators to exercise necessary control in delivering authorized levels of
  • the major components of the digital controller are the supervisory i controller 70, data receivers 71 and subscriber control modules 72.
  • Supervisory controller 70 provides the necessary control over data flow to implement the various services as well as supporting the many diagnostic functions designed into the system. It contains a mini-computer comprised of electrically programmable read only memory (EPROM) 73, random access memory (RAM) 74, and micro ⁇ processor 75, and an input/output interface 76 for communicating with the cable operator.
  • EPROM electrically programmable read only memory
  • RAM random access memory
  • micro ⁇ processor 75 micro ⁇ processor
  • Data receivers 71 receive the digital channel select signal transmitted from the subscriber.
  • Each data* receiver supports eight subscribers,and up to three data receivers may be installed in each CDU. Hence, a total of twenty-four subscribers can be serviced by each CDU contained in the hub.
  • Subscriber control modules 72 are micro-processor based channel selection control units.
  • One module services up to eight subscribers by acting upon commands which are routed to it by the supervisory controller. Commands include the channel select signal transmitted from a data receiver as well as enable/disable authoriz ⁇ ations for tiered service. Following receipt of a channel select signal, the micro-processor in the module
  • the phase locked loop circuitry is contained in a converter module.
  • the converter module is a programm ⁇ able channel selection unit which delivers one subscriber selected and authorized channel as well as the entire FM band to the uplink optical fiber through which it is transmitted to the subscriber. One module is required per subscriber.
  • the converter module comprises up/down converter 80 which is switched between trunk lines 81 and 82 on command from the subscriber.
  • Each trunk line contains a maximum of fifty-four video channels stacked in a frequency division multiplexed format.
  • Channel select and other commands to the module are sent from the subscriber control module in serial form to phase locked loop circuitry 83.
  • the phase locked loop circuitry generates the necessary control voltage to set up/down converter's VCO frequency in response to the channel select command on its data input line.
  • Amplifiers 84 and 85 enhance the FM band and the video channel which is selected.
  • Control of the LED drive by automatic gain control 86 assures specified modulation depth and performance level in spite of certain extent of channel- to-channel level variation.
  • the video and FM signals are combined in mixer 87 and directed to transconductance amplifier 88 which performs the necessary voltage-to current transformation.
  • a conventional wideband LED 89 is used to transmit the multiplexed TV and FM signal on frequency upstream to the subscriber.
  • SPC subscriber program controller
  • the smallest version of this system is capable of supporting from 20,000 to 30,000 subscribers.
  • the SPC permits the cable operator to provide various levels or tiers of video and other information services such as mail, telephone, data, home security, etc. by providing enable/disable authorization signals to each subscriber control module depending upon the level of service contracted for by the subscriber.
  • the SPC also provides the accounting system for billing the subscribers on the basis of subscriber use of the system. This allows for one time, per viewing charges as well as regular service charges for use of the system.
  • optical receiver 51 at the subscriber unit, which converts it to an electronic signal of the appropriate viewing frequency and directs it to the subscriber's TV set or radio.
  • baseband and VSB transmissions maximize the transmission properties of the optical fiber, they require a relatively expensive component to be present at the subscriber unit to convert the transmitted carrier frequency up to one of the conventional TV channels.
  • a carrier frequency corresponding to Channel 2 (54 to 60 MHz) , Channel 3 (60 to 66 MHz), or Channel 4 (66 to 72 MHz) can be used to transmit the video signal.
  • these higher frequencies tax the optical fiber and light emitters to a greater extent than baseband or VSB frequencies, they provide the advantage of eliminating the expense of a frequency converter in the subscriber unit.
  • one TV channel either on Channel 3 (60 to 66 MHz) or Channel 4 (66 to 72 MHz) and PM band consisting of twenty carriers in the 88-108 MHz range, are transmitted to the subscriber over the uplink fiber.
  • the digital channel select data from the subscriber unit is transmitted downstream at 9.6 kb/s using NRZ code.
  • the transmission frequency of the video signal will determine the type of optical fiber " used to connect the subscriber to the hub.
  • low frequency trans ⁇ mission may be accomplished using step-index fiber.
  • transmission of video signals at the Channel 2, 3, or 4 carriers can be achieved using specially designed step index fibers with low numerical apertures.
  • step index fiber having a numerical aper ⁇ ture of 0.15 ⁇ 0.02 transmission distance on the order of 500 meters can be achieved.
  • transmission distance on the order of 500 meters can be achieved.
  • use of more expen- sive graded-index fiber may become necessary because further reductions in the numerical aperture of the step index fiber may make it too sensitive to microbending losses.
  • large core fiber that is, fiber having a light transmitting core greater than 150 microns and preferably about 200 microns in diameter, which exhibits a bandwidth-length product " equal to or greater than 40 MHz-km.
  • the large core fiber is also advantageous for use with inexpensive optical connectors because tolerances on centering the fiber are substantially reduced when using the large core.
  • fiber optic cable may be used in the system of the invention.
  • P the hub can be employed. This is the system shown in Figure 3.
  • the downstream and upstream signals can be transmitted over a single optical fiber.
  • bidirectional couplers must be provided at each end of the transmission line. If light having diff ⁇ erent wavelengths is used on the streams, the system can be designed so that only one bidirectional coupler is required for each hub-subscriber transmission line. For short runs, the cost of an extra optical fiber will be less than the cost of the bidirectional couplers, making the two-fiber cable preferable. On the other hand, cost factors will favor the use of a single-fiber cable with bidirectional couplers in long runs. Two suitable designs for systems employing a bidirectional fiber optic cable are pictured in Figures 4 and 5, and discussed in detail below.
  • Hybrid cables employing combinations of optical fiber and metal wires may also be used in the system of the invention.
  • a fiber optic cable contain ⁇ ing a single optical fiber and twin metal reinforcing wires running parallel to the fiber can be employed.
  • the downstream video signal would be transmitted through the fiber while the much lower frequency channel select information would be transmitted through the twin metal wires.
  • steel wires are adequate, while for longer runs wires made from metals of lower electrical resistivity, such as copper or copper clad steel, are preferred.
  • Figures 4 and 5 illustrate two suitable designs for the transmission means at the hub and subscriber unit, when a single, bidirectional optical fiber cable is used to connect the subscriber unit and hub.
  • a unit designed for transmitting and receiving optical signals of different wavelengths is pictured.
  • the electrical signal transmitted from the tuner at the hub (or keypad a t the subscriber unit) is directed to an optical transmitter 52 which generates the corresponding optical signal.
  • the optical signal source may be any of the known laser and LED sources. An InGaAs diode is preferred.
  • Optical receiver 53 is made from a semiconductor material which possesses an energy band gap between the * filled valence band and the higher empty conduction band which is greater than the quantum energy associated with the light signal produced by optical transmitter 52. This renders the receiver transparent to the optical signal produced by the transmitter.
  • the receiver when the receiver is a silicon-PIN photodiode, it receives light signals transmitted at 0.82 ym but is transparent to signals transmitted at 1.06 ym.
  • the hub signal can be transmitted directly into the optical fiber through the optical receiver without undue absorption.
  • a bidirectional coupler is required in the subscriber unit to extract the optical signal trans ⁇ mitted from the hub. Of course, the arrangement can be reversed so that the bidirectional coupler is placed at the hub rather than in the subscriber unit.
  • optical receiver 53 The particular type of optical receiver employed will depend on the optical signal source.
  • a silicon-PIN photodiode is most preferred in the system of the invention when InGaAs diodes are used as the optical signal sources.
  • the optical signal received by the unit is collected by optical receiver 53, transformed into an electrical signal and directed to the appropri-
  • O P1 subscriber control module at the hub or subscriber's TV set at the subscriber unit.
  • the coupler 54 taps the channel select signal transmitted up the fiber to the hub and the information signal transmitted to the subscriber and directs the signals to optical receiver 55 where they are transformed into electric signals and directed to the subscriber control moduleor the subscriber's TV set, at the hub and subscriber unit, respectively.
  • the optical signal generated by the hub and subscriber unit are directed into the fiber in each unit by the coupler.
  • the bidirectional coupler at the hub need tap only a small fraction of the signal being transmitted to the subscriber unit, while in the subscriber unit the coupler need provide only a relatively small tap in the fiber for introducing the channel select signal. Because of this, the video signal can be transmitted to the subscriber with minimal losses due to beam splitting, possibly less than 5% (i.e., -13dB) . This represents a small transmission penalty in view of the advantage of using standard light emitters having identical wavelengths for both upstream and downstream transmissions.
  • Each converter module contained in a CDU at the hub termin ⁇ ates at optical connectors in distribution box 90.
  • ' Vertical riser cable 91 originates at the distribution box and terminates at a junction box 92 on each floor.
  • Home run cable 93 connects an individual subscriber's residential interface unit 94 with the junction box.
  • Figures 6a and 6b show a cross-section of the vertical riser cable 91 and home run cable 93.
  • the verticalriser cable may contain as many as twenty-four optical fibers 95 housed with a protective jacket 96.
  • the home run cable contains two optical fibers 97 housed within a protective jacket 98. Reinforcing elements 99 may be embedded in the protective jacket for added strength.
  • OMPI have used conductive transmission paths have employed wire pairs.
  • wire pairs limit transmission distance due to poor attenuation characteristics and require an equalizer at the subscriber station to compensate for the high attenuation of the wire pair of the higher frequency components of the transmitted signal.
  • Coaxial cable is not subject to the same degree of attenuation and so is far preferable to wire pairs.
  • the distribution system of the invention can be transformed into a non-optical system by replacing the fiber optic network with bidirectional coaxial cable.
  • both ends of the transmission line must be equipped with bidirectional couplers to permit two-way transmission between the hub and the subscriber.
  • the optical signal transmitted from the hub is received at the subscriber unit by an optical receiver and converted into an electrical signal which is directed to the subscriber's TV set.
  • a conductive link is required to connect the optical receiver to the TV. Because the conductive link may operate as an antenna if it is longer than approximately -meter in extremely noisy electro magnetic environments, it is preferred to place the optical receiver sufficiently close to the TV so that less than %-meterof a conductive link is required to connect the receiver to the TV.
  • the information distribution system of the invention is extremely versatile. Not only does it provide a means for transmitting video signals to an individual subscriber which is independent of transmission to other subscribers, it is also adapted for providing numerous other services over a single fiber optic or bidirectional coaxial cable connection to the subscriber. Each subscriber is provided with the capability of directly interacting with the hub to select and pay for only the service desired. Moreover, the use of the hub distribution center greatly facilitates expansion of the system by allowing additional subscribers to be placed on line at minimal expense, since all that is required is a hook-up to the hub.
  • a further important characteristic of the system of the invention is its resistance to tampering.
  • the system of the inven- tion transmits only one channel to the subscriber in response to a channel- select signal and only after this signal has been approved by a control unit at the hub.
  • the relatively expensive components of the system i.e., the CATV tuner are housed in a central location which facilitates protection and maintenance.
  • An additional advantageous feature of the system of the invention is the ease in which diagnostic programs can be added therein by virtue of the mini ⁇ computer contained in each central distribution unit at the hub. Because the operator can interface with each minicomputer at the hub, the operation of each component at the hub can be monitored. Most importantly, the converter module which transmits the requested service signals to the subscriber can be monitored to insure that a high quality signal is transmitted.

Abstract

The system is composed of hub distribution centers (1) which are connected to a plurality of individual subscribers (3) by fiber optic cable or bidirectional coaxial cable (4). The system is particularly suitable for CATV distribution but may also be adapted to provide telephone, mail, radio and other services to the subscribers through the same cable connection with the hub distribution center.

Description

INFORMATION DISTRIBUTION SYSTEM
CROSS REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of United States patent application Serial No. 263,552, filed May 14, 1981.
BACKGROUND OF THE INVENTION
Field of the Invention
The subject invention is directed to an information distribution system, particularly adapted for cable television (CATV) broadcasting.
Description of the Prior Art During the past three decades, television has become standard in most American homes. For the most part, television systems have operated utilizing VHF and UHF signals transmitted by powerful broadcasting stations through the atmosphere and received by antennas connected to individual television sets. However, in recent years cable television system have become increasingly popular.
In the typical cable TV system, the television signal is transmitted to individual subscribers through coaxial cable. Each subscriber's unit is tapped into a trunk line
OMPI *< which carries the signal for the entire distribution network.
However, conventional coaxial cable systems are somewhat constrained by the number of channels which they can distribute. In order to penetrate urban areas with cable TV systems, operators have been required to provide many more channels than are offered in rural areas. To achieve this capacity, virtually all existing CATV systems employ a frequency division multiplexing transmission scheme. All available video channels are frequency division multiplexed and simultaneously transmitted on a coaxial cable to the subscriber. The subscriber unit is equipped with a converter which receives the multiplexed video channels, selects the desired channel and converts it to the appropriate viewing frequency, typically corresponding to channel's 2, 3 or 4 on the subscriber's television set. Thus, the converter performs essentially two functions, namely channel selection and electronic frequency conversion. Each of these functions requires different component parts in the subscriber unit. The components required for the electronic freσuency conversion function are relatively expensive and susceptible to tampering by subscribers. The problem of subscriber tampering is particularly acute in systems which offer different tiers of service at different prices. In such systems, subscribers may attempt to gain access to channels they have not paid for' by tampering with the frequency converter in their unit. While systens have been proposed to separate the frequency conversion function from the channel select function to eliminate susceptibility to theft of unauthorized signals, as in U.S. Patent 4,064,460,
- U REAl OMPI they have not proved commercially attractive due to the fact that they require relatively complex and expensive electronic switching stations.
In view of the shortcomings of the conventional wired broadcasting system, particularly in urban areas, a "ramified" distribution network is proposed by Grodner et al in U.S. Patent 3,751,670. In this system, the television signal is transmitted directly to an individual subscriber from a distribution center using optical signals as the transmission medium. The optical' signals are transmitted in free space from the distribution center to a receiver at the subscriber station. Mirrors are used when it is necessary to change the direction of the signal to avoid obstacles. Each subscriber station is also equipped with means for generating and transmitting an optical signal to the distribution station to request service.
Since each individual subscriber receives a single signal directed from the distribution station, there is no need to employ frequency division multi¬ plexing in providing multi-channel service to the subscriber. This permits more precision in measuring the use of the system by each subscriber for accounting purposes. However, the ramified distribution network exhibits different, but equally serious, shortcomings. For example, because each subscriber station must be within signalling range of a distribution station, many distribution stations are required to service an area which would normally be served by a single broad¬ casting station. This is especially true in an urban area where buildings limit the number of straight, unobstructed paths which are required for transmitting
O PI /, W1PO optical signals between the distribution and subscriber stations. The only way in which the optical signals can be made to change direction is by interposing a series of mirrors, which presents other obvious dis- advantages. Additionally, weather conditions can adversely affect the quality of the optical signals transmitted through free space, thereby causing poor reception at the subscriber station.
Fiber optics have been used in a limited number of cable TV trunk lines and, in at least one case, t for distribution to homes in Japan. The Japanese system, known as Hi-OVIS, connects approximately 160 homes with a two-way switched video system. A highly complex and expensive video switch .is required to direct 32 channels to 168 different outputs. Trans¬ mission is done at baseband on plastic clad silica fibers using LED sources. The system requires two optical fibers for each subscriber unit to provide two-way video service. While the Hi-OVIS system avoids the problems associated with open air optical signalling, because of the complexity and expense of the video switch and the use of two-way video service, the system is far from economically viable. Another system employing fiber optics is disclosed in U.S. Patent 4,135,202. In this system, a common optical fiber connects a plurality of subscrib¬ ers with a central broadcasting station. Hence, the system is similar to the trunk line system which conventionally employs coaxial cable. In an alterna¬ tive embodiment, the patent discloses connecting a plurality of subscribers to the central broadcasting station with a plurality of individual optical fibers.
*BISRHA7Γ
OMPI Λ. WIPO -
^NATi $ Each subscriber is further connected to the central station by one or more individual auxiliary transmission lines.
Recently, a third TV distribution system utilizing optical fiber was suggested by K.Y. Chang (CLEOS meeting, San Diego, California 2/27/80) . This system contemplates using a single optical fiber for bidirectional signalling between a central switching node and the subscriber unit. At the central switching' node, signals from a variety of sources are frequency division multiplexed and delivered to the subscriber through a single optical fiber. Here again, the switch¬ ing mechanism at the central switching node and subscriber unit is quite complex since the various input signals must be multiplexed at the central switching node before transmitting them to the subscriber where they must be demultiplexed for channel selection.
While it is evident from the foregoing that numerous systems have been proposed for distributing information to a plurality of individual subscribers, there is, as yet, no system which is particularly suited for cable TV distribution in an urban setting where tiered service and security from tampering and signal theft are imperative.
SUMMARY OF THE INVENTION
It is a primary object of the invention to provide an improved information distribution system, which is particularly adapted for CATV broadcasting in urban environments.
Another object of the invention is to provide an information distribution system which makes available to the subscriber a wide variety of services in addition to video programs.
Still other objects and advantages of the invention will be apparent to those of skill in the art upon review of the detailed description contained herein. These objects and advantages are achieved according to the invention by an information distribution system comprised of at least one hub distribution center (more simply referred to as the hub) connected to a plurality of individual transmission lines. The hub distribution center is equipped with means for selecting a single information signal from a plurality of signals having different characteristic frequencies in response to a signal received from a subscriber unit, for convert- ing the single signal to the transmission frequency and for transmitting the signal to an individual subscriber unit. The hub distribution center also contains means for receiving signals generated and transmitted from each subscriber unit over its individual connection to the hub, to select an information signal available at the hub.
Each subscriber unit contains means for generating a signal which identifies one of the information channels available at the hub and means for transmitting this signal to the hub. The transmission lines which connect the hub and the subscribers are comprised of fiber optic cables or bidirectional coaxial cables.
The hub system of the invention is particularly suited for cable TV distribution in which case the inform¬ ation signals would be video channels fed to the hub.
BRIEF DESCRIPTION OF THE FIGURES OF DRAWING
Figure 1 illustrates an information distribution system designed in accordance with the invention.
- UREAfT OMPI -
Figure 2 is a functional diagram showing a subscriber unit in a conventional cable TV distribution system.
Figure 3 is a functional diagram showing the connection of a subscriber unit to a hub distribution center in accordance with the invention.
Figure 3a is a functional diagram of a residential interface unit (RIU) in accordance with a preferred embodiment of the invention. Figure 3b is a functional diagram of a digital controller which is part of a central distribution unit (CDU) in accordance with a preferred embodiment of the invention.
Figure 3c is a functional diagram of a converter module which is part of a central distribution unit (CDU) in accordance with a preferred embodiment of the invention.
Figure 4 shows the unit required at the hub and subscriber unit for receiving and transmitting optical signals of different wavelengths between a subscriber unit and a hub over a single, bidirectional optical fiber. Figure 5 shows the unit required at the hub and subscriber unit for receiving and transmitting optical signals of the same wavelength between a subscriber unit and a hub over a single, bidirectional optical fiber. Figure 6 shows a preferred fiber optic cable connection between a hub distribution center and a subscriber unit.
Figure 6a is a cross-sectional view of the riser cable shown in Figure 6. Figure 6b is a cross-sectional view of the home run cable shown in Figure 6. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
The Figures of Drawing illustrate various embodiments of a distribution system designed in accordancewith the invention. As shown in Figure 1, the system is composed of hub distribution centers 1 which are connected by trunk lines 2. Each hub distri¬ bution center is also connected to a plurality of subscriber units 3 by transmission lines 4. The trunk lines may be constructed from conventional coaxial cable or from fiber optic cable. It is also possible for the hub distribution centers to receive the trunk signals via satellite, in which case the trunk lines would be eliminated in favor of satellite receivers.
The trunk lines, in turn, feed into central distribution stations which provide the signal for a plurality of hub distribution centers. The transmission lines which connect a subscriber unit to a hub are fiber optic cable or bidirectional coaxial cable as described in detail hereinafter.
The hub center may be located several miles from the subscribers, generally in rural areas, or very close to the subscribers, e.g., in the same building, in high-rise dwellings in urban areas. Urban settings are particularly suited for the system of the invention since each high-rise dwelling can be serviced by a single hub center.
The design of a commercial, state-of-the-art subscriber unit employed in existing cable TV systems and the combination of a subscriber unit with a hub distribution center in accordance with the invention are depicted in Figures 2 and 3, respectively, for purposes of comparison. In Figure 2, the subscriber unit of a conventional system is seen to be provided with a CATV feed 6, directly from trunk line 5. The feed consists of all available video channels in a frequency division multiplexed mode. The multiplexed video channels are directed into tuner 7 which selects an individual channel in response to a channel select signal, converts it to the appropriate viewing frequency (generally corresponding to Channels 2, 3, or 4) and transmits it to the subscriber's TV set. The tuner is stabilized by a phase-lock loop contained in decoder 9 that receives a reference signal from a crystal controlled oscillator. This renders the tuner insensitive to drifting, thereby eliminating the need for periodic tuner adjustments. The channel select signal is generated by a micro-processor controlled channel select unit 10. To operate this unit, the subscriber pushes a button corresponding to the desired function (e.g., on-off, video channel, or other service) on keyboard 11 and activates the micro-processor 12 which is programmed to send the appropriate information to the decoder 9. As pictured in Figure 2, the keyboard is often placed in a handheld, remote control unit 13, for added convenience. When a button on this unit is pushed to select a desired function, typically the desired video channel, a characteristic signal is transmitted and received by remote control receiver 14 where it is con¬ verted to an electrical signal and fed to the micro¬ processor. The channel select unit also contains a digital display 15, driven by display drive 16, which displays the number of the channel selected by the subscriber. Decoder 9 receives and interprets the channel select information transmitted by the micro-processor in the form of serial data and clock bit streams. The serial data identifies the channel, while the clock identifies the serial data as valid. The decoder selects the requested video channel from the tuner by generating a characteristic voltage which identifies the video channel. The tuner is stabilized by the phase-lock loop which insures that the tuner remains responsive to the voltages generated by the decoder.
Power supply 17 provides the power to drive the various components of the subscriber unit. Relay 18 is provided to turn the TV on and off when the on-off button is pressed on the channel select unit. Referring to Figure 3, the combination of a subscriber unit with a hub distribution center in accordance with the invention is shown. In this system, the subscriber unit is comprised of channel select unit 30, which is identical to the channel select unit 10 contained in the subscriber unit of Figure 2. The unit comprises keyboard 31, micro-processor 32, handheld remote control panel 33, remote control receiver 34, display 35 and display drive 36, all functioning in the same manner as discussed with respect to Figure 2. Power supply 37 and .relay 38 are also present for the reasons previously stated.
The subscriber unit in the system of the invention differs from the conventional unit in that the decoder and tuner which select the requested video channel and convert it to the appropriate viewing frequency are separate from the subscriber unit and housed in the hub distribution center. Accordingly, the subscriber unit must contain means for transmitting the channel select - -
information to the hub ana means for receiving the selected information channel from the hub. The former is provided by multiplexer 39 and optical transmitter 40. The multiplexer combines the serial data and clock output from the micro-processor and directs it to the optical transmitter where it is transformed into an optical signal and transmitted to the hub through opti¬ cal fiber 41. Because the channel select information is multiplexed, only one optical fiber is required for transmission. Without a multiplexer, two transmission lines would be necessary to carry the channel select information to the hub. Hence, while the inclusion of the multiplexer in the subscriber unit is not absolutely necessary, it is much preferred as it simplifies transmission of the channel select informa¬ tion.
Alternatively, the need for a multiplexer can be avoided by employing a micro-processor which provides only data output which can be transmitted directly to the optical transmitter without multiplexing as described hereinafter with respect to the preferred embodiments of the invention.
According to a preferred embodiment of the invention the components of the subscriber unit are housed in two separate parts. The channel select unit 30 is conveniently housed in a keypad located on the subscriber's TV set. The keypad allows for tiered access to over 100 video channels and other functions such as opinion polling, pay-per-view, parental authorization codes and other interactive services made available by the cable operator at the hub. The remaining components of the subscriber unit are housed in a permanently mounted wall unit, referred to as a
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OMPI residential interface unit (RIU) . Figure 3a depicts a typical RIU for use in the system of the invention. It comprises digital LED transmitter 61, and a low-noise wideband optical receiver 62. The optical receiver uses a low voltage, high speed PIN detector 63, packaged to provide optiumum coupling to a large core optical fiber without using a pigtail. A low-noise, wide band trans- impedance amplifier 64 performs the necessary current-to- voltage transformation. The video channel and FM band are made available at separate connectors via a buffer stage 65 and power splitter 66. Line receiver 67 regener¬ ates the data streams transmitted from the subscriber's keypad and directs it to the optical transmitter 61. The need for a multiplexer is avoided in this embodiment since only data and conjugate data streams are trans¬ mitted from the keypad. Voltage regulator 68 provides the necessary power to drive the. keypad and RIU.
Referring again to Figure 3, at the hub the optical signal is received by optical receiver 42 and demultiplexed -by demultiplexer 43. This returns the channel select information into the same form as exited the micro-processor in the subscriber unit. The channel select information is directed to decoder 44 which, as previously described, interprets the information and selects the desired video channel from tuner 45. The tuner receives the CATV feed 46 in frequency division multiplexed form from trunk line 47, converts the reques¬ ted video channel to the appropriate viewing frequency and directs it to optical transmitter 48 where it is transformed into an optical signal and transmitted to the requesting subscriber unit through optical fiber 49. The components in the hub are driven by power supply 50. Because the hub must contain an individual tuner system for each subscriber served by the hub, the hub should be constructed with a view towards expansion. In a preferred embodiment of the invention, the components of the hub are organized into central distribution units (CDU) comprised of two main sections, a digital controller and converter modules. Each CDU is capable of servicing twenty-four subscribers. The digital controller, depicted in Figure 3b, communicates with subscribers as well as cable operators to exercise necessary control in delivering authorized levels of
TV and other services to the subscriber. The major components of the digital controller are the supervisory i controller 70, data receivers 71 and subscriber control modules 72.
Supervisory controller 70 provides the necessary control over data flow to implement the various services as well as supporting the many diagnostic functions designed into the system. It contains a mini-computer comprised of electrically programmable read only memory (EPROM) 73, random access memory (RAM) 74, and micro¬ processor 75, and an input/output interface 76 for communicating with the cable operator.
Data receivers 71 receive the digital channel select signal transmitted from the subscriber. Each data* receiver supports eight subscribers,and up to three data receivers may be installed in each CDU. Hence, a total of twenty-four subscribers can be serviced by each CDU contained in the hub.
Subscriber control modules 72 are micro-processor based channel selection control units. One module services up to eight subscribers by acting upon commands which are routed to it by the supervisory controller. Commands include the channel select signal transmitted from a data receiver as well as enable/disable authoriz¬ ations for tiered service. Following receipt of a channel select signal, the micro-processor in the module
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3 ER7A compares the signal to those stored in its electrically alterable read only memory to determine the subscriber's status. If the service is authorized, the module's micro-processor sends the appropriate signal in the form of data and clock bit streams to the phase locked loop circuitry to obtain the requested channel. The micro¬ processor also issues an enable signal to insure that the signal is transmitted to the appropriate phase locked loop circuitry. i The phase locked loop circuitry is contained in a converter module. The converter module is a programm¬ able channel selection unit which delivers one subscriber selected and authorized channel as well as the entire FM band to the uplink optical fiber through which it is transmitted to the subscriber. One module is required per subscriber.
As shown in Figure 3c, the converter module comprises up/down converter 80 which is switched between trunk lines 81 and 82 on command from the subscriber. Each trunk line contains a maximum of fifty-four video channels stacked in a frequency division multiplexed format. Channel select and other commands to the module are sent from the subscriber control module in serial form to phase locked loop circuitry 83. The phase locked loop circuitry generates the necessary control voltage to set up/down converter's VCO frequency in response to the channel select command on its data input line. Amplifiers 84 and 85 enhance the FM band and the video channel which is selected. Control of the LED drive by automatic gain control 86 assures specified modulation depth and performance level in spite of certain extent of channel- to-channel level variation. The video and FM signals are combined in mixer 87 and directed to transconductance amplifier 88 which performs the necessary voltage-to current transformation. A conventional wideband LED 89 is used to transmit the multiplexed TV and FM signal on frequency upstream to the subscriber.
Control of the central distribution -units in the hub is provided by a computer system referred to as the subscriber program controller (SPC) . The smallest version of this system is capable of supporting from 20,000 to 30,000 subscribers. The SPC permits the cable operator to provide various levels or tiers of video and other information services such as mail, telephone, data, home security, etc. by providing enable/disable authorization signals to each subscriber control module depending upon the level of service contracted for by the subscriber. The SPC also provides the accounting system for billing the subscribers on the basis of subscriber use of the system. This allows for one time, per viewing charges as well as regular service charges for use of the system.
Referring again to Figure 3, the optical signal transmitted from the hub is received by optical receiver 51 at the subscriber unit, which converts it to an electronic signal of the appropriate viewing frequency and directs it to the subscriber's TV set or radio.
Since all optical fibers have a well known bandwidth limitation due to a characteristic bandwidth- length product, it is desirable to transmit the video information from the hub to the subscriber using as low a carrier frequency as possible, if only the transmission characteristics of the optical fiber are considered. This would suggest baseband transmission (i.e., a frequency band of 0 to 4 MHz) . However, because of well known inverse frequency noise and other factors, it is not always practical to work near zero Hz. An alternative is to transmit with a small frequency off-set from zero, such as 1 MHz, so that the video signal would cover the 1 to 5 MHz band. This off-set method is known as the vestigial side band (VSB) technique. However, in cable TV distribution systems other factors besides the transmission properties of the optical fiber must be considered. Thus, while baseband and VSB transmissions maximize the transmission properties of the optical fiber, they require a relatively expensive component to be present at the subscriber unit to convert the transmitted carrier frequency up to one of the conventional TV channels. To avoid this complication, a carrier frequency corresponding to Channel 2 (54 to 60 MHz) , Channel 3 (60 to 66 MHz), or Channel 4 (66 to 72 MHz) can be used to transmit the video signal.* Although these higher frequencies tax the optical fiber and light emitters to a greater extent than baseband or VSB frequencies, they provide the advantage of eliminating the expense of a frequency converter in the subscriber unit.
Thus, in systems where the added expense is justified baseband and VSB transmission frequencies are preferable. However, for most cable TV distribution systems the additional expense is not justifiable and hence transmission frequencies at Channels 2, 3 and/or 4 are preferred. These channels are the best choices since the remaining VHF channels are all at higher frequencies and would further tax the optical fiber and light emitters. In an exemplary transmission format, one TV channel either on Channel 3 (60 to 66 MHz) or Channel 4 (66 to 72 MHz) and PM band consisting of twenty carriers in the 88-108 MHz range, are transmitted to the subscriber over the uplink fiber. The digital channel select data from the subscriber unit is transmitted downstream at 9.6 kb/s using NRZ code.
The transmission frequency of the video signal will determine the type of optical fiber"used to connect the subscriber to the hub. Generally, low frequency trans¬ mission may be accomplished using step-index fiber. In addition, transmission of video signals at the Channel 2, 3, or 4 carriers can be achieved using specially designed step index fibers with low numerical apertures. For example, with a step index fiber having a numerical aper¬ ture of 0.15 ± 0.02, transmission distance on the order of 500 meters can be achieved. For longer distances or higher frequency information signals use of more expen- sive graded-index fiber may become necessary because further reductions in the numerical aperture of the step index fiber may make it too sensitive to microbending losses.
Additionally, to facilitate connections, it is preferred to use large core fiber, that is, fiber having a light transmitting core greater than 150 microns and preferably about 200 microns in diameter, which exhibits a bandwidth-length product "equal to or greater than 40 MHz-km. The large core fiber is also advantageous for use with inexpensive optical connectors because tolerances on centering the fiber are substantially reduced when using the large core. Hence, the advantages of large core fiber outweigh the disadvantages in systems where trans¬ mission links are relatively short, such as in high-rise urban dwellings.
A wide variety of different types of fiber optic cable may be used in the system of the invention. For example, a cable containing two optical fibers, one for downstream transmission of the selected video signal from the hub to the subscriber, and one for upstream transmis¬ sion of channel select information from the subscriber to
P the hub, can be employed. This is the system shown in Figure 3.
In a further variation, the downstream and upstream signals can be transmitted over a single optical fiber. However, if light having the same wavelength is used in both streams, bidirectional couplers must be provided at each end of the transmission line. If light having diff¬ erent wavelengths is used on the streams, the system can be designed so that only one bidirectional coupler is required for each hub-subscriber transmission line. For short runs, the cost of an extra optical fiber will be less than the cost of the bidirectional couplers, making the two-fiber cable preferable. On the other hand, cost factors will favor the use of a single-fiber cable with bidirectional couplers in long runs. Two suitable designs for systems employing a bidirectional fiber optic cable are pictured in Figures 4 and 5, and discussed in detail below.
Hybrid cables employing combinations of optical fiber and metal wires may also be used in the system of the invention. For example, a fiber optic cable contain¬ ing a single optical fiber and twin metal reinforcing wires running parallel to the fiber can be employed. With such a cable as the transmission medium, the downstream video signal would be transmitted through the fiber while the much lower frequency channel select information would be transmitted through the twin metal wires. For short runs, steel wires are adequate, while for longer runs wires made from metals of lower electrical resistivity, such as copper or copper clad steel, are preferred.
Figures 4 and 5 illustrate two suitable designs for the transmission means at the hub and subscriber unit, when a single, bidirectional optical fiber cable is used to connect the subscriber unit and hub. In Figure 4, a unit designed for transmitting and receiving optical signals of different wavelengths, is pictured.
"βϋ EA OMPI The electrical signal transmitted from the tuner at the hub (or keypad at the subscriber unit) is directed to an optical transmitter 52 which generates the corresponding optical signal. The optical signal source may be any of the known laser and LED sources. An InGaAs diode is preferred.
Optical receiver 53 is made from a semiconductor material which possesses an energy band gap between the * filled valence band and the higher empty conduction band which is greater than the quantum energy associated with the light signal produced by optical transmitter 52. This renders the receiver transparent to the optical signal produced by the transmitter. Thus, for example, when the receiver is a silicon-PIN photodiode, it receives light signals transmitted at 0.82 ym but is transparent to signals transmitted at 1.06 ym. Hence, by employing an optical transmitter at the hub which produces light signals having a greater wavelength than the signals transmitted by the subscriber, the hub signal can be transmitted directly into the optical fiber through the optical receiver without undue absorption. A bidirectional coupler is required in the subscriber unit to extract the optical signal trans¬ mitted from the hub. Of course, the arrangement can be reversed so that the bidirectional coupler is placed at the hub rather than in the subscriber unit.
The particular type of optical receiver employed will depend on the optical signal source. A silicon-PIN photodiode is most preferred in the system of the invention when InGaAs diodes are used as the optical signal sources. The optical signal received by the unit is collected by optical receiver 53, transformed into an electrical signal and directed to the appropri-
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O P1 ate subscriber control module at the hub or subscriber's TV set at the subscriber unit.
When optical signals of the same wavelength are transmitted by both the hub and the subscriber, two bidirectional couplers are required, one at the hub and one in the subscriber unit. As shown in Figure 5, the coupler 54 taps the channel select signal transmitted up the fiber to the hub and the information signal transmitted to the subscriber and directs the signals to optical receiver 55 where they are transformed into electric signals and directed to the subscriber control moduleor the subscriber's TV set, at the hub and subscriber unit, respectively. The optical signal generated by the hub and subscriber unit are directed into the fiber in each unit by the coupler.
Since the signal transmitted from the subscriber to the hub is transmitted at a very low digital bit rate, it may be very weak and still perform adequately. Accordingly, the bidirectional coupler at the hub need tap only a small fraction of the signal being transmitted to the subscriber unit, while in the subscriber unit the coupler need provide only a relatively small tap in the fiber for introducing the channel select signal. Because of this, the video signal can be transmitted to the subscriber with minimal losses due to beam splitting, possibly less than 5% (i.e., -13dB) . This represents a small transmission penalty in view of the advantage of using standard light emitters having identical wavelengths for both upstream and downstream transmissions.
Of course, when separate optical fibers are used for upstream and downstream transmission in the fiber optic cable, it is not necessary to use bidirectional couplers or light emitters of different wavelengths in the system. In such systems, standard light emitters and receivers are simply placed at opposite ends of the fibers for transmitting and receiving the signals. As mentioned previously, the choice of single, bidirectional optical fiber cables or dual fiber cables is primarily a matter of economics in which the bidirectional fiber is preferred for transmitting over long distances. • A further important factor in determining the configuration for the fiber optic network is the type of environment in which the system is to be installed. For example, in a high-rise dwelling typical of urban areas, a combination of multi-fiber vertical riser cables and individual home run cables are preferred. Such a configuration is shown in Figure 6. Each converter module contained in a CDU at the hub termin¬ ates at optical connectors in distribution box 90.' Vertical riser cable 91 originates at the distribution box and terminates at a junction box 92 on each floor. Home run cable 93 connects an individual subscriber's residential interface unit 94 with the junction box.
Figures 6a and 6b show a cross-section of the vertical riser cable 91 and home run cable 93. The verticalriser cable may contain as many as twenty-four optical fibers 95 housed with a protective jacket 96. The home run cable contains two optical fibers 97 housed within a protective jacket 98. Reinforcing elements 99 may be embedded in the protective jacket for added strength.
It is also possible to employ a bidirectional coaxial cable to link the hub to an individual subscriber. In the past, distribution systems which
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OMPI have used conductive transmission paths have employed wire pairs. However, wire pairs limit transmission distance due to poor attenuation characteristics and require an equalizer at the subscriber station to compensate for the high attenuation of the wire pair of the higher frequency components of the transmitted signal. Coaxial cable is not subject to the same degree of attenuation and so is far preferable to wire pairs. Thus, the distribution system of the invention can be transformed into a non-optical system by replacing the fiber optic network with bidirectional coaxial cable. In this embodiment, both ends of the transmission line must be equipped with bidirectional couplers to permit two-way transmission between the hub and the subscriber.
As previously described, the optical signal transmitted from the hub is received at the subscriber unit by an optical receiver and converted into an electrical signal which is directed to the subscriber's TV set. Generally, a conductive link is required to connect the optical receiver to the TV. Because the conductive link may operate as an antenna if it is longer than approximately -meter in extremely noisy electro magnetic environments, it is preferred to place the optical receiver sufficiently close to the TV so that less than %-meterof a conductive link is required to connect the receiver to the TV.
From the foregoing, it should be apparent that the information distribution system of the invention is extremely versatile. Not only does it provide a means for transmitting video signals to an individual subscriber which is independent of transmission to other subscribers, it is also adapted for providing numerous other services over a single fiber optic or bidirectional coaxial cable connection to the subscriber. Each subscriber is provided with the capability of directly interacting with the hub to select and pay for only the service desired. Moreover, the use of the hub distribution center greatly facilitates expansion of the system by allowing additional subscribers to be placed on line at minimal expense, since all that is required is a hook-up to the hub.
A further important characteristic of the system of the invention is its resistance to tampering. Unlike conventional CATV systems which attempt to prevent tampering by transmitting all available video channels in a scrambled form which can be unscrambled by an unscrupulous subscriber, the system of the inven- tion transmits only one channel to the subscriber in response to a channel- select signal and only after this signal has been approved by a control unit at the hub. Moreover,- the relatively expensive components of the system, i.e., the CATV tuner are housed in a central location which facilitates protection and maintenance.
An additional advantageous feature of the system of the invention is the ease in which diagnostic programs can be added therein by virtue of the mini¬ computer contained in each central distribution unit at the hub. Because the operator can interface with each minicomputer at the hub, the operation of each component at the hub can be monitored. Most importantly, the converter module which transmits the requested service signals to the subscriber can be monitored to insure that a high quality signal is transmitted.
While the invention has now been described in terms of certain preferred embodiments, and exemplified with respect thereto, those of skill in the art will readily appreciate that various modifications, changes, omissions, and substitutions may be made without departing from the spirit of the invention. It is therefore intended that the present invention be limited solely by the scope of the following claims.

Claims

CLAIMS :
1. An information distribution system comprising: i) a hub distribution center, ii) a plurality of individual subscriber units each connected to said hub distribution center by a fiber optic cable, iii) means at said hub distribution center for i receiving optical signals transmitted from each of said individual subscriber units to said hub distribution center through the fiber optic cables, iv) means at said hub distribution center for selecting a single information signal from a plurality of information signals having different characteristic frequencies, converting it to the transmission - frequency and transmitting it as an optical signal to an individual subscriber unit through the fiber optic cable in response to an optical signal transmitted from said individual subscriber unit to said hub distribution center through the same fiber optic cable, v) means at each of said individual subscriber units for generating and transmitting an optical signal to said hub distribution center through the fiber optic cable, and vi) means at each of said individual subscriber units for receiving the optical signal transmitted from said hub distribution center.
2. The system as defined by claim 1, wherein said information signals are video signals.
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OMPI
3. The system as defined by claims 1 or 2 wherein each of said subscriber units is connected to the hub distribution center by a fiber optic cable comprised of at least two optical fibers.
4. The system as defined by claims 1 or 2, wherein each of said subscriber units is connected to the hub distribution center by a fiber optic cable comprised of a single, bidirectional optical fiber.
5. The system as defined by claims 1 or 2, wherein each of said subscriber units is connected to the hub distribution center by a fiber optic cable comprised of at least one optical fiber and at least one metal wire pair.
6. The system as defined by claims 1 or 2, further comprising additional hub distribution centers, each of said centers being connected to a plurality of different subscriber units by fiber optic cable.
7. The system as defined by claims 1 or 2, wherein said means at said hub distribution center for receiving optical signals transmitted from each of said individual subscriber units comprises a plurality of photodiodes positioned such that one photodiode receives the optical signals from one fiber optic cable connecting the hub distribution center to an individual subscriber unit.
8. The system as defined by claim 7, wherein said photodiodes are made from seriiconcuctor material having an energy band gap which is greater than the
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OMPI quantum energy associated with the optical signal transmitted by the hub to an individual subscriber unit whereby the optical signal transmitted by the hub to an individual subscriber unit passes through the 5 photodiode which received the optical signals trans¬ mitted from the subscriber and into the same fiber optic cable that connects the individual subscriber to the hub.
0 9. The system as defined by claims 1 or 2, wherein said hub distribution center contains means for determining that the subscriber is entitled to receive an information signal in response to the signal transmitted from said individual subscriber 5 units.
10. The- system as defined by claims 1 or 2, wherein said hub distribution center contains means
*"» for recording the economic accountability of each of 0 said individual subscribers.
11. The system as defined by claims 1 or 2 wherein said transmission frequency for said single information signal comprises the vestigial side band 5 of about 1 to 5 MHz and wherein each of said individual subscriber units contains means for converting the transmission frequency of the information signal to a frequency which can be received by a television set.
0 " 12. The system as defined by claims 1 or 2, wherein said transmission frequency for said single information signal comprises frequencies which can be received directly by a television set.
'BUREAlT OMPI
13. The system as defined by claims 1 or 2, wherein said means at each of said individual subscriber units for receiving the optical signal transmitted from said hub distribution center is positioned such that less than --meter of conductive material is required to link said receiving means to the subscriber's TV set.
14. A cable TV broadcasting system comprising: a) at least one subscriber unit comprising: i) a push button panel operated by the subscriber which produces an electronic signal to request a single video channel from a plurality of available channels, ii) a micro-processor, programmed to generate digital bit streams in response to the signal produced by said push button panel, iii) means for combining the digital bit streams generated by the micro-processor into a single electronic information stream, iv) an optical transmitter to transform said single electronic information stream into an optical signal and to transmit it through a fiber optic cable, v) an optical receiver to receive an optical video signal and to convert it to an electronic video signal, which can be viewed by a television, and vi) a power supply; and b) a hub distribution center containing for each subscriber unit, a distribution unit comprising: i) an optical -receiver to receive the optical signal transmitted from said subscriber unit
"BU EAU 0MPI_ and to transform it into an electronic signal, ii) means for converting said electronic signal into serial data and clock digital bit streams, iii) a decoder to identify the requested video channel from said serial data and clock digital bit streams and to select the requested video channel from a plurality of channels each having different characteristic frequencies, iv) a tuner to receive said plurality of channels of different characteristic frequencies and to convert the requested channel from its character¬ istic frequency to a viewing frequency, v) an optical transmitter to transform said channel into an optical signal and to transmit it through a fiber optic cable to said subscriber unit, and vi) a power supply.
15. The system as defined in claim 14, wherein said push button panel and said micro-processor are housed together in a key-pad and said combining means said optical transmitter and said optical receiver are housed together in a residential interface unit at said subscriber unit.
16. The system as defined by claims 1 or 14, wherein said fiber optic cable is comprised of optical fiber having a light transmitting core diameter greater than about 150 microns.
17. An information distribution system comprising: i) a hub distribution center, ii) a plurality of individual subscriber units each connected to said hub distribution center by a bidirectional coaxial cable, iϋ) means at said hub distribution center for receiving signals transmitted from each of said individual subscriber units to said hub distribution center through the bidirectional coaxial cables, iv) means at said hub distribution center for selecting a single information signal from a plurality of information signals having different characteristic' frequencies, converting it to the transmission frequency and transmitting it to an individual subscriber unit through the bidirectional coaxial cable in response to a signal transmitted from said individual subscriber unit to said hub distribution center through the same bidirectional coaxial cable, v) means at each of said individual subcriber units for generating and transmitting a signal to said hub distribution center through the bidirectional coaxial cable, and vi) means at each of said individual subscriber units for receiving the signal transmitted from said hub distribution center.
18. The system as defined by claim 16, wherein said information signals are video signals.
19. Apparatus for simultaneous transmission and reception of optical signals over a single optical fiber comprising:
* a) an optical receiver comprised of a semiconductor material having a known energy band gap.
'BURE TT
OMPI positioned adjacent to one end of the optical fiber, for receiving optical signals transmitted through the optical fiber, and b) an optical transmitter, positioned adjacent to said optical receiver which transmits optical signals through said optical receiver and into said optical fiber, said optical signals transmitted by said optical trans¬ mitter having an associated quantum energy which is less than the energy band gap of the semiconductor which comprises said optical receiver, whereby the optical signals pass through said optical receiver without significant absorption.
-BU REA
0MP1
PCT/US1982/000641 1981-05-14 1982-05-13 Information distribution system WO1982004170A1 (en)

Priority Applications (2)

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DE1982901948 DE78843T1 (en) 1981-05-14 1982-05-13 INFORMATION DISTRIBUTION SYSTEM.

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
US26355281A 1981-05-14 1981-05-14
US263552 1981-05-14
US06/373,110 US4491983A (en) 1981-05-14 1982-04-29 Information distribution system
US373110820429 1982-04-29

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Publication Number Publication Date
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CA (1) CA1201484A (en)
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WO (1) WO1982004170A1 (en)

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0132465A1 (en) * 1983-07-21 1985-02-13 The Manitoba Telephone System Video distribution control system
EP0137158A2 (en) * 1983-08-11 1985-04-17 General Instrument Corporation Remote hub television and security systems
FR2573265A1 (en) * 1984-11-13 1986-05-16 Communications Patents Ltd COMMUNICATION SYSTEM IN WHICH TELEVISION SIGNALS ARE DISTRIBUTED TO SUBSCRIBERS THROUGH FIBER OPTIC CABLES
GB2237709A (en) * 1989-10-04 1991-05-08 Stc Plc Optical fibre/coaxial cable network provides various services such as cordless telephony
EP0488241A2 (en) * 1990-11-30 1992-06-03 Hitachi, Ltd. Optical frequency division multiplexing network

Families Citing this family (87)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4965825A (en) 1981-11-03 1990-10-23 The Personalized Mass Media Corporation Signal processing apparatus and methods
USRE47642E1 (en) 1981-11-03 2019-10-08 Personalized Media Communications LLC Signal processing apparatus and methods
US7831204B1 (en) 1981-11-03 2010-11-09 Personalized Media Communications, Llc Signal processing apparatus and methods
DE3403659A1 (en) * 1984-02-03 1985-08-14 Standard Elektrik Lorenz Ag, 7000 Stuttgart BROADBAND INTEGRATED SUBSCRIBER CONNECTION SYSTEM
US4868866A (en) * 1984-12-28 1989-09-19 Mcgraw-Hill Inc. Broadcast data distribution system
DE3507064A1 (en) * 1985-02-28 1986-08-28 Standard Elektrik Lorenz Ag, 7000 Stuttgart OPTICAL NEWS TRANSMISSION SYSTEM IN THE SUBSCRIBER AREA
US4775971A (en) * 1986-03-27 1988-10-04 American Telephone And Telegraph Company, At&T Bell Laboratories Optical communication system
US4837857A (en) * 1986-11-06 1989-06-06 Storz Instrument Company Foot pedal assembly for ophthalmic surgical instrument
US4937821A (en) * 1987-01-27 1990-06-26 Readtronics Pipeline information delivery system
US4914648A (en) * 1987-03-26 1990-04-03 American Telephone And Telegraph Company Multichannel, multihop lightwave communication system
CA1297157C (en) * 1987-07-13 1992-03-10 Geoffrey Nelson Bowling Closed loop, programmable power and communication system
US4860287A (en) * 1987-11-05 1989-08-22 People's Telephone Cooperative, Inc. Network having a synchronizer for synchronization between a primary and a remote station
US5136411A (en) * 1987-12-11 1992-08-04 General Instrument Corporation Dynamically responsive CATV system with shared fiber optic link
US5487066A (en) * 1988-03-21 1996-01-23 First Pacific Networks, Inc. Distributed intelligence network using time and frequency multiplexing
US4891694A (en) * 1988-11-21 1990-01-02 Bell Communications Research, Inc. Fiber optic cable television distribution system
US5726783A (en) * 1989-12-08 1998-03-10 British Telecommunications Public Limited Company Optical fibre communication system
US5587734A (en) * 1990-09-28 1996-12-24 Ictv, Inc. User interface for selecting television information services through pseudo-channel access
US5557316A (en) * 1990-09-28 1996-09-17 Ictv, Inc. System for distributing broadcast television services identically on a first bandwidth portion of a plurality of express trunks and interactive services over a second bandwidth portion of each express trunk on a subscriber demand basis
US5412720A (en) * 1990-09-28 1995-05-02 Ictv, Inc. Interactive home information system
US5220420A (en) * 1990-09-28 1993-06-15 Inteletext Systems, Inc. Interactive home information system for distributing compressed television programming
US5526034A (en) * 1990-09-28 1996-06-11 Ictv, Inc. Interactive home information system with signal assignment
US5883661A (en) 1990-09-28 1999-03-16 Ictv, Inc. Output switching for load levelling across multiple service areas
US5594507A (en) * 1990-09-28 1997-01-14 Ictv, Inc. Compressed digital overlay controller and method for MPEG type video signal
JPH088683B2 (en) * 1990-10-09 1996-01-29 松下電器産業株式会社 Pay channel transmission system
US5802173A (en) * 1991-01-15 1998-09-01 Rogers Cable Systems Limited Radiotelephony system
US6034678A (en) * 1991-09-10 2000-03-07 Ictv, Inc. Cable television system with remote interactive processor
EP0617876B1 (en) * 1991-12-19 1997-02-12 Nortel Networks Corporation Fibre optic telephone loop network
US5325223A (en) * 1991-12-19 1994-06-28 Northern Telecom Limited Fiber optic telephone loop network
US5389963A (en) * 1992-02-05 1995-02-14 Dynacom, Inc. System for selectively interconnecting audio-video sources and receivers
US20050114906A1 (en) * 1993-05-03 2005-05-26 Ictv, Inc. System for interactive television
US5467384A (en) * 1993-05-28 1995-11-14 U S West Advanced Technologies, Inc. Method and apparatus for providing power to a coaxial cable network
US5519830A (en) * 1993-06-10 1996-05-21 Adc Telecommunications, Inc. Point-to-multipoint performance monitoring and failure isolation system
US5428606A (en) * 1993-06-30 1995-06-27 Moskowitz; Scott A. Digital information commodities exchange
WO1995008894A1 (en) * 1993-09-20 1995-03-30 Motorola, Inc. Method and apparatus for trunked telephone access to a cable network
US5408462A (en) * 1993-10-07 1995-04-18 Adc Telecommunications, Inc. Protection switching apparatus and method
US5453737A (en) * 1993-10-08 1995-09-26 Adc Telecommunications, Inc. Control and communications apparatus
JP2833467B2 (en) * 1994-02-15 1998-12-09 日本電気株式会社 Optical signal transmission system
US5491508A (en) * 1994-03-21 1996-02-13 Lotus Development Corporation PC video conferencing
US6334219B1 (en) * 1994-09-26 2001-12-25 Adc Telecommunications Inc. Channel selection for a hybrid fiber coax network
USRE42236E1 (en) 1995-02-06 2011-03-22 Adc Telecommunications, Inc. Multiuse subcarriers in multipoint-to-point communication using orthogonal frequency division multiplexing
US7280564B1 (en) 1995-02-06 2007-10-09 Adc Telecommunications, Inc. Synchronization techniques in multipoint-to-point communication using orthgonal frequency division multiplexing
KR19980702155A (en) 1995-02-09 1998-07-15 그레이스 스티븐 에스. Epoxy Resin Compositions Curable at Low Temperatures
US5761312A (en) * 1995-06-07 1998-06-02 Zelikovitz, Deceased; Joseph Enhanced individual intelligent communication platform for subscribers on a telephone system
US5794221A (en) * 1995-07-07 1998-08-11 Egendorf; Andrew Internet billing method
US5966163A (en) 1995-10-20 1999-10-12 Scientific-Atlanta, Inc. Providing constant bit rate upstream data transport in a two way cable system by scheduling preemptive grants for upstream data slots using selected fields of a plurality of grant fields
US6230203B1 (en) 1995-10-20 2001-05-08 Scientific-Atlanta, Inc. System and method for providing statistics for flexible billing in a cable environment
US7028088B1 (en) * 1996-04-03 2006-04-11 Scientific-Atlanta, Inc. System and method for providing statistics for flexible billing in a cable environment
US5999970A (en) * 1996-04-10 1999-12-07 World Gate Communications, Llc Access system and method for providing interactive access to an information source through a television distribution system
US20040078824A1 (en) * 1996-04-10 2004-04-22 Worldgate Communications Access system and method for providing interactive access to an information source through a television distribution system
US5841468A (en) * 1996-04-26 1998-11-24 Convergence. Com System and method for routing data messages through a cable transmission system
US6272150B1 (en) 1997-01-17 2001-08-07 Scientific-Atlanta, Inc. Cable modem map display for network management of a cable data delivery system
US6324267B1 (en) 1997-01-17 2001-11-27 Scientific-Atlanta, Inc. Two-tiered authorization and authentication for a cable data delivery system
US6286058B1 (en) 1997-04-14 2001-09-04 Scientific-Atlanta, Inc. Apparatus and methods for automatically rerouting packets in the event of a link failure
US6049539A (en) * 1997-09-15 2000-04-11 Worldgate Communications, Inc. Access system and method for providing interactive access to an information source through a networked distribution system
US6205582B1 (en) 1997-12-09 2001-03-20 Ictv, Inc. Interactive cable television system with frame server
US6154774A (en) * 1998-07-02 2000-11-28 Lancast, Inc. In-wall data translator and a structured premise wiring environment including the same
US6271766B1 (en) * 1998-12-23 2001-08-07 Cidra Corporation Distributed selectable latent fiber optic sensors
US7444663B2 (en) * 1998-12-31 2008-10-28 Lodgenet Interactive Corporation Menuing system for controlling content delivery within a video distribution system
US7000243B1 (en) 1998-12-31 2006-02-14 Oncommand Corporation Allocating computer resources within a video distribution system
US20030128983A1 (en) * 1999-05-11 2003-07-10 Buabbud George H. Digital RF return over fiber
US6460182B1 (en) * 1999-05-11 2002-10-01 Marconi Communications, Inc. Optical communication system for transmitting RF signals downstream and bidirectional telephony signals which also include RF control signals upstream
US7103907B1 (en) 1999-05-11 2006-09-05 Tellabs Bedford, Inc. RF return optical transmission
US6519773B1 (en) * 2000-02-08 2003-02-11 Sherjil Ahmed Method and apparatus for a digitized CATV network for bundled services
US6912060B1 (en) * 2000-07-05 2005-06-28 Lexmark International, Inc. Photoprinter control of peripheral devices
US7456135B2 (en) * 2000-12-29 2008-11-25 Halliburton Energy Services, Inc. Methods of drilling using flat rheology drilling fluids
US7941559B2 (en) * 2002-04-23 2011-05-10 Tellabs Bedford, Inc. Media access control address translation for a fiber to the home system
CA2484226A1 (en) * 2002-05-10 2003-11-20 Thomson Licensing S.A., Remote control device for television signal receiver capable of receiving emergency alert signals
JP3782407B2 (en) * 2002-08-06 2006-06-07 ズン−クック,チェ Wavelength division multiplexing manual optical network system (WAVELENGTHDIVISIONMULTIPLEXING-PASSIVEOPTICALNETWORK)
US7038288B2 (en) * 2002-09-25 2006-05-02 Microsemi Corporation Front side illuminated photodiode with backside bump
US7672450B2 (en) * 2004-09-09 2010-03-02 Calix Networks, Inc. Network interface device enclosure
US7652390B2 (en) * 2004-12-28 2010-01-26 Calix Networks, Inc. Network interface device communication via power line
US20070011717A1 (en) * 2005-07-06 2007-01-11 Lauder Gary M Distribution of interactive information content within a plurality of disparate distribution networks
US8074248B2 (en) 2005-07-26 2011-12-06 Activevideo Networks, Inc. System and method for providing video content associated with a source image to a television in a communication network
US20070028278A1 (en) * 2005-07-27 2007-02-01 Sigmon Robert B Jr System and method for providing pre-encoded audio content to a television in a communications network
US20100146139A1 (en) * 2006-09-29 2010-06-10 Avinity Systems B.V. Method for streaming parallel user sessions, system and computer software
US9826197B2 (en) 2007-01-12 2017-11-21 Activevideo Networks, Inc. Providing television broadcasts over a managed network and interactive content over an unmanaged network to a client device
EP2116051A2 (en) * 2007-01-12 2009-11-11 ActiveVideo Networks, Inc. Mpeg objects and systems and methods for using mpeg objects
EP2628306B1 (en) 2010-10-14 2017-11-22 ActiveVideo Networks, Inc. Streaming digital video between video devices using a cable television system
EP2695388B1 (en) 2011-04-07 2017-06-07 ActiveVideo Networks, Inc. Reduction of latency in video distribution networks using adaptive bit rates
EP2815582B1 (en) 2012-01-09 2019-09-04 ActiveVideo Networks, Inc. Rendering of an interactive lean-backward user interface on a television
US9800945B2 (en) 2012-04-03 2017-10-24 Activevideo Networks, Inc. Class-based intelligent multiplexing over unmanaged networks
US9123084B2 (en) 2012-04-12 2015-09-01 Activevideo Networks, Inc. Graphical application integration with MPEG objects
WO2014145921A1 (en) 2013-03-15 2014-09-18 Activevideo Networks, Inc. A multiple-mode system and method for providing user selectable video content
EP3005712A1 (en) 2013-06-06 2016-04-13 ActiveVideo Networks, Inc. Overlay rendering of user interface onto source video
US9294785B2 (en) 2013-06-06 2016-03-22 Activevideo Networks, Inc. System and method for exploiting scene graph information in construction of an encoded video sequence
US9219922B2 (en) 2013-06-06 2015-12-22 Activevideo Networks, Inc. System and method for exploiting scene graph information in construction of an encoded video sequence
US9788029B2 (en) 2014-04-25 2017-10-10 Activevideo Networks, Inc. Intelligent multiplexing using class-based, multi-dimensioned decision logic for managed networks

Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3691295A (en) * 1970-03-31 1972-09-12 Ibm Two-way communication system for video and digital data
US3751670A (en) * 1971-05-11 1973-08-07 Telebeam Corp Subscription communication system
US3801735A (en) * 1970-11-12 1974-04-02 Communications Patents Ltd Wired broadcasting systems
US3931512A (en) * 1973-06-01 1976-01-06 Plessey Handel Und Investments A.G. Line data and television transmission
US4077006A (en) * 1975-03-14 1978-02-28 Victor Nicholson Bidirectional unicable switching system
US4135202A (en) * 1973-12-03 1979-01-16 Communications Patents Limited Broadcasting systems with fibre optic transmission lines
US4183054A (en) * 1977-09-30 1980-01-08 Harris Corporation Digital, frequency-translated, plural-channel, vestigial sideband television communication system
US4210803A (en) * 1979-03-15 1980-07-01 University Of Delaware Method and apparatus for signal transmission via an optical fiber
US4232385A (en) * 1977-07-12 1980-11-04 Her Majesty The Queen In Right Of Canada, As Represented By The Minister Of National Defence Frequency division multiplexing system for optical transmission of broadband signals
US4310754A (en) * 1976-07-14 1982-01-12 Pitney Bowes Inc. Communication means with transducer physically spaced from interior wall of secure housing

Family Cites Families (31)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB954916A (en) * 1961-03-01 1964-04-08 Pye Ltd Signal distribution system
DE1927006B2 (en) * 1968-07-06 1971-05-27 OPTICAL MULTIPLEX TRANSMISSION SYSTEM
GB1272594A (en) * 1968-08-09 1972-05-03 Communications Patents Ltd Improvements in and relating to wired broadcasting systems
US3633035A (en) * 1968-11-16 1972-01-04 Nippon Selfoc Co Ltd Multiplexed optical communications system
GB1306366A (en) * 1969-05-22 1973-02-07
US3643164A (en) * 1969-11-24 1972-02-15 Anaren Microwave Inc Signal selection apparatus
US3803491A (en) * 1971-05-26 1974-04-09 Tocom Communications system
US3794922A (en) * 1972-01-26 1974-02-26 Tocom Data sampling communication system
US3786424A (en) * 1972-02-22 1974-01-15 Coaxial Scient Corp Communications system for data transmission and retrieval
US3846703A (en) * 1973-02-28 1974-11-05 Tocom Noise control system for transmission network
US3857997A (en) * 1973-03-08 1974-12-31 Oak Industries Inc Cable converter with phase lock loop techniques
CH564889A5 (en) * 1973-11-28 1975-07-31 Patelhold Patentverwertung
US4064460A (en) * 1974-03-16 1977-12-20 Communications Patents Limited Coaxial wired broadcasting system with tone responsive program selectors
DE2415046A1 (en) * 1974-03-28 1975-10-02 Siemens Ag DEVICE FOR DISTRIBUTION OF LIGHT SIGNALS TO SEVERAL RECEIVERS
NL7405405A (en) * 1974-04-22 1975-10-24 Philips Nv TELEVISION DISTRIBUTION SYSTEM.
IT1063336B (en) * 1975-03-17 1985-02-11 Sits Soc It Telecom Siemens CABLE DISTRIBUTION SYSTEM FOR LARGE BAND SIGNALS
US3990012A (en) * 1975-04-25 1976-11-02 Tocom, Inc. Remote transceiver for a multiple site location in a two-way cable television system
US3987397A (en) * 1975-04-25 1976-10-19 Belcher Brian E Remote unit for a two-way cable communications system
US3993955A (en) * 1975-04-25 1976-11-23 Tocom, Inc. Method of and apparatus for establishing emergency communications in a two-way cable television system
US4089584A (en) * 1976-10-29 1978-05-16 Northrop Corporation Multiple station multiplexed communications link employing a single optical fiber
US4090067A (en) * 1976-11-02 1978-05-16 Sperry Rand Corporation Optical data communication system
US4135157A (en) * 1977-03-28 1979-01-16 Oak Industries Inc. Pole mounted converter
US4308554A (en) * 1977-04-19 1981-12-29 R. D. Percy & Company Television viewer reaction determining system
US4149186A (en) * 1977-05-09 1979-04-10 Chung David H Method and apparatus for applying a scanning control signal to a television receiver
DE2807986A1 (en) * 1978-02-22 1979-08-30 Hertz Inst Heinrich SYSTEM FOR INTERACTIVE CABLE TV
US4161650A (en) * 1978-04-06 1979-07-17 Lockheed Aircraft Corporation Self-powered fiber optic interconnect system
DE2818656A1 (en) * 1978-04-27 1979-10-31 Siemens Ag Wideband cable network communication system - consists of insulated light conductors twisted with another light conductor and with two insulated metal wires
US4360828A (en) * 1978-08-07 1982-11-23 Spectradyne, Incorporated Hotel/motel power load control and bilateral signalling apparatus
US4322854A (en) * 1979-05-18 1982-03-30 Allan B. Bundens Data communications terminal
US4343042A (en) * 1979-07-10 1982-08-03 Cablebus Systems Corporation Bi-directional data transmission and control system
CA1142244A (en) * 1979-08-22 1983-03-01 Eric J. Gargini Wired broadcasting system with subscriber controlled switched programme selection

Patent Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3691295A (en) * 1970-03-31 1972-09-12 Ibm Two-way communication system for video and digital data
US3801735A (en) * 1970-11-12 1974-04-02 Communications Patents Ltd Wired broadcasting systems
US3751670A (en) * 1971-05-11 1973-08-07 Telebeam Corp Subscription communication system
US3931512A (en) * 1973-06-01 1976-01-06 Plessey Handel Und Investments A.G. Line data and television transmission
US4135202A (en) * 1973-12-03 1979-01-16 Communications Patents Limited Broadcasting systems with fibre optic transmission lines
US4077006A (en) * 1975-03-14 1978-02-28 Victor Nicholson Bidirectional unicable switching system
US4310754A (en) * 1976-07-14 1982-01-12 Pitney Bowes Inc. Communication means with transducer physically spaced from interior wall of secure housing
US4232385A (en) * 1977-07-12 1980-11-04 Her Majesty The Queen In Right Of Canada, As Represented By The Minister Of National Defence Frequency division multiplexing system for optical transmission of broadband signals
US4183054A (en) * 1977-09-30 1980-01-08 Harris Corporation Digital, frequency-translated, plural-channel, vestigial sideband television communication system
US4210803A (en) * 1979-03-15 1980-07-01 University Of Delaware Method and apparatus for signal transmission via an optical fiber

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
NTG - Fachber, Vol. 73, 1980 (German) D.J. GRAY et al 'A Multiservice System Using Fiber Optic Loops', pgs. 119-24. *

Cited By (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0132465A1 (en) * 1983-07-21 1985-02-13 The Manitoba Telephone System Video distribution control system
EP0137158A2 (en) * 1983-08-11 1985-04-17 General Instrument Corporation Remote hub television and security systems
US4574305A (en) * 1983-08-11 1986-03-04 Tocum, Incorporated Remote hub television and security systems
EP0137158A3 (en) * 1983-08-11 1988-08-03 Tocom, Inc. Remote hub television and security systems
FR2573265A1 (en) * 1984-11-13 1986-05-16 Communications Patents Ltd COMMUNICATION SYSTEM IN WHICH TELEVISION SIGNALS ARE DISTRIBUTED TO SUBSCRIBERS THROUGH FIBER OPTIC CABLES
GB2237709A (en) * 1989-10-04 1991-05-08 Stc Plc Optical fibre/coaxial cable network provides various services such as cordless telephony
GB2237709B (en) * 1989-10-04 1994-06-08 Stc Plc Hybrid network
EP0488241A2 (en) * 1990-11-30 1992-06-03 Hitachi, Ltd. Optical frequency division multiplexing network
EP0488241A3 (en) * 1990-11-30 1993-04-21 Hitachi, Ltd. Optical frequency division multiplexing network
US5321540A (en) * 1990-11-30 1994-06-14 Hitachi, Ltd. Optical frequency division multiplexing network
US5801864A (en) * 1990-11-30 1998-09-01 Hitachi, Ltd. Optical frequency division multiplexing network
US7127170B2 (en) 1990-11-30 2006-10-24 Hitachi, Ltd. Optical frequency division multiplexing network

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US4491983A (en) 1985-01-01
DE3278901D1 (en) 1988-09-15
EP0078843B1 (en) 1988-08-10
JPS58500736A (en) 1983-05-06
EP0078843A4 (en) 1984-09-19
EP0078843A1 (en) 1983-05-18
CA1201484A (en) 1986-03-04

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