WO9727550A2

Communication system with multicarrier telephony transport

Abstract

The communication system includes a hybrid fiber/coax distribution network. A head end provides for downstream transmission of telephony and control data in a first frequency bandwidth over the hybrid fiber/coax distribution network and reception of upstream telephony and control data in a second frequency bandwidth over the hybrid fiber/coax distribution network. The head end includes a head end multicarrier modem for modulating downstream telephony information on a plurality of orthogonal carriers in the first frequency bandwidth and demodulating upstream telephony information modulated on aplurality of orthogonal carriers in the second frequency bandwidth. The system includes service units, operatively connected to the hybrid fiber/coax distribution network for upstream transmission of telephony and control data and for receipt of the downstream control data and telephony. Also provided is a method and apparatus for performing a Fast Fourier Transform (FFT).

WO9727550A2, drawing sheet 1
Sheet 1 of 101

Term

No projected expiry on record.

  1. Priority and filed
  2. Published
  3. Today

149 claims: 82 independent, 67 dependent

  1. 1
    What is claimed is:1. An apparatus for providing a Fast Fourier Transform (FFT) and/or Inverse Fast Fourier Transform comprising: a radix-N core, the radix-N core including: at least N multipliers;a twiddle-factor lookup table storing complex twiddle factors, the twiddle-factor lookup table coupled to one input of each one of the multipliers;a conversion RAM storing transform points, the conversion RAM coupled to another input of each one of the multipliers;an anay of at least N-times-N adder-subtractor-accumulators .
  2. 2
    An apparatus for providing a Fast Fourier Transform (FFT) and/or Inverse Fast Fourier Transform comprising:a radix-4 butterfly core, the radix-4 butterfly core including: at least eight multipliers;a twiddle-factor lookup table storing complex twiddle factors, the twiddle-factor lookup table coupled to one input of each one ofthe multipliers;a conversion RAM storing transform points, the conversion RAM coupled to another input of each one ofthe multipliers;an array of at least thirty-two adder-subtractor-accumulators coupled to outputs ofthe multipliers, each adder-subtractor-accumulator capable of performing at least a five-way addition/subtraction operation;a sequencer coupled to the twiddle-factor lookup table, to the conversion RAM, and to the adder-subtractor-accumulators in order to control normal and transposed butterfly operations.
  3. 8
    An method for providing a Fast Fourier Transform (FFT) and/or Inverse Fast Fourier Transform comprising the steps of:fetching substantially simultaneously both the real and imaginary portions of at least a first and second transform point;fetching substantially simultaneously the real portions of at least a first and second twiddle factor, sequential with fetching substantially simultaneously the imaginary portions of at least the first and second twiddle factor;and multiplying substantially simultaneously the real portions of at least a first and second twiddle factor by the real and imaginary portions of at least a first and second transform point to generate a first, second, third and fourth product, sequential with multiplying substantially simultaneously the imaginary portions of at least the first and second twiddle factor by the real and imaginary portions of at least a first and second transform point to generate a fifth, sixth, seventh and eighth product.
  4. 18
    A method of computer data transmission over a telecommunications network having a head end connected to a plurality of remote subscribers, the computer data originating from one or more general puφose digital computers, the data transmitted to the remote subscribers in a plurality of data channels accessible to carry data between the head end and any one ofthe subscribers, the method comprising the steps of:a) in response to a signal received from a subscriber premise (the "destination premise") over the network, automatically setting up a data path between the head end and the destination premise by selectively assigning one or more ofthe data channels (the "assigned channels") to transmit the computer data between the head end and the destination premise, the assigned channels determined by reference to a database of provisioning information, the assigned channels maintaining a substantially constant data transfer bandwidth between the head end and the destination premise;and b) breaking the data path and reassigning one or more of the assigned channels to another data path in the network so that the bandwidth ofthe data channels can be shared by subscribers in the network.
  5. 36
    A system for computer data transmission over a telecommunications network having a head end connected to a plurality of remote subscribers, the computer data originating from one or more general puφose digital computers, the data transmitted to the remote subscribers in a plurality of data channels accessible to carry data between the head end and any one ofthe subscribers, the method comprising:a) a provisioning computer including computer program code responsive to a signal received from a subscriber premise (the "destination premise") over the network, to set up a data path between the head end and the destination premise by selectively assigning one or more ofthe data charmels (the "assigned channels") to transmit the computer data between the head end and the destination premise, the provisioning computer refening to a database of provisioning information to specify the number of assigned channels, the assigned channels maintaining a substantially constant data transfer bandwidth between the head end and the destination premise;and b) the provisioning computer further including computer program code for breaking the data path and reassigning one or more of the assigned channels to another data path in the network so that the bandwidth ofthe data channels can be shared by subscribers in the network.
  6. 54
    A method for transmitting data over a telecommunication system that uses a multi-carrier transmission scheme from a head end to a service unit wherein the service unit is assigned to a subband of a transmission channel ofthe telecommunication system, the subband including a number of payload channels that transmit data at a first rate and a control charmel that transmits data at a second rate, the second rate being slower than the first rate, the method comprising the steps of:receiving a request to transmit data to a service unit at the second, slower rate;determining whether to transmit the data at the first, faster rate based on the size ofthe data;when a payload channel in the subband is available to transmit the data at the first rate, allocating the payload channel to transmit the data to the service unit over the payload channel;and when the payload channels are allocated to service units and at least one ofthe allocated payload channels is idle, reallocating the idle payload channel to transmit the data to the service unit over the payload channel at the first rate.
  7. 59
    A method for allocating payload channels for a service that use multiple payload channels in a telecommunications system with a multi-canier transmission scheme to communicate with a service unit, the method comprising the steps of:assigning an identifier for each payload channel that indicates the relative order ofthe multiple payload channels for the service;monitoring the quality ofthe multiple payload charmels;when the quality of one ofthe payload channels drops below a threshold, allocating a different payload channel to replace the original payload channel for the service and;and in the service unit, reordering the payload channels using the identifier for the original payload channel so that the proper order for the allocated payload channels is maintained by the service inespective ofthe order that the payload channels are received at the service unit.
  8. 61
    A method for communicating enors to a head end of a telecommunications system, comprising the steps of:monitoring a downstream transmission channel at a service unit for transmission enors;generating a signal at the service unit that indicates enors in the downstream transmission;and transmitting the signal to the head end on an associated upstream communication channel.
  9. 64
    A method for controlling power usage at a service unit of a telecommunications system with a multi-canier transmission scheme, the method comprising the steps of:determining whether a service unit is of a type that can be powered down;when the service unit can be powered down, determining whether the service unit is idle;when the service unit is idle, powering down the service unit to conserve power usage until a request is received to use a line ofthe service unit.
  10. 68
    A method of transmitting digital data in a communications system, comprising:receiving strings ofthe digital data, each string having one of a set of possible values;mapping the strings onto a set of symbols represented by the same fixed amount of phase of predetermined different waveforms conesponding to the different values in the set of possible values;modulating the fixed amount of phase plus an excess amount of phase of the predetermined waveforms onto a set of multiple orthogonal carriers in response to the symbols;transmitting the modulated carriers to a distribution network in the system.
  11. 69
    A method of adjusting upstream power levels in a bidirectional multipoint-to-point multichannel communications system having a single central head end and a plurality of service units located remotely from the head end and from each other, the method comprising:repetitively scanning different channels associated with different ones of the remote service units;in response to the scanning step, returning a predetermined signal from each ofthe remote service units to the head end;measuring the received power level of each such signal against a nominal value;for any remote unit whose received power level differs from the nominal value if the received power level has a first property, adjusting the received power level toward the nominal value at the head end;if the received power level has a second property, adjusting the transmitted power level at the conesponding remote unit so as to bring the received power level toward the nominal value.
  12. 77
    A multicanier transmitting modem for a communications system, comprising:a port for receiving multiple serial strings of digital data;a scrambler for randomizing the strings of digital data;a mapper for converting the randomized strings into randomized digital symbols representing the strings of digital data;an inverse discrete FFT transformer for converting the randomized symbols into digital representations of multiple modulated orthogonal caniers;means for converting the digital representations into an analog waveform;an amplifier for transmitting the analog waveform to the communications system.
  13. 80
    A bidirectional multipoint-to-point communications system for sending payload information over a distribution network, comprising:a head-end terminal coupled to the distribution network for transmitting downstream control messages and downstream payload information in a first frequency band, and for receiving upstream control messages and upstream payload information in a second frequency band, the head-end terminal including — a head-end controller for sending the payload data to and from an extemal communications network and for producing and processing the control messages at the head-end terminal, a head-end multicanier transmitting modem coupled to the head-end controller for modulating the downstream payload information and the downstream control messages onto multiple orthogonal downstream caniers spread throughout substantially all ofthe first frequency band on the distribution network, a head-end multicanier receiving modem coupled to the head-end controller for demodulating multiple orthogonal upstream carriers spread throughout substantially all ofthe second frequency band and carrying the upstream payload information and control messages on the distribution network;a plurality of service units physically remote from each other and from the head-end terminal, each ofthe remote service units receiving the downstream control messages and downstream payload information over only a portion ofthe first frequency band, and each ofthe remote service units transmitting only a portion ofthe upstream control messages and upstream payload information, each ofthe remote service units including— a service-unit controller for transferring a portion ofthe payload data to and from user equipment and for producing and processing the control messages at the remote service unit, a service-unit multicanier receiving modem coupled to the distribution network for demodulating only a portion ofthe multiple downstream orthogonal caniers, containing the portion ofthe the payload information and at least some of the control messages from the head-end transmitting modem, a service-unit multicanier transmitting modem coupled to the service-unit controller for modulating the portion ofthe upstream payload information and some of the upstream control messages onto multiple orthogonal upstream caniers in only a portion ofthe second frequency band on the distribution network.
  14. 81
    Claim 80, wherein the multiple carriers are orthogonal frequency-division- multiplex caniers.
  15. 82
    Claim 80, wherein the control messages occupy multiple control carriers within both the first and the second frequency bands.
  16. 83
    Claim 82, wherein substantially all ofthe control caniers carry control messages for all ofthe remote service units.
  17. 84
    Claim 82, wherein substantially all control messages include an address identifying at least one ofthe remote service units.
  18. 85
    Claim 82, wherein the control caniers are substantially evenly spaced in frequency throughout the carriers carrying the downstream payload information.
  19. 86
    Claim 82, wherein the control caniers are substantially evenly spaced in frequency throughout the caniers carrying the upstream payload information.
  20. 87
    Claim 82, wherein the downstream carriers are disposed in a plurality of contiguous subbbands each containing a subset ofthe carriers containing the downstream payload information and at least one ofthe control carriers.
  21. 88
    Claim 87, wherein the at least one control canier occupies the middle of each ofthe subbands.
  22. 89
    Claim 87, wherein the downstream receiving modem is capable of receiving only one ofthe subbands at any one time.
  23. 90
    Claim 89, wherein the downstream receiving modem is tunable over a plurality ofthe subbands.
  24. 91
    Claim 90, wherein the downstream modem is responsive to one ofthe control messages for tuning to a particular one ofthe subbands.
  25. 92
    Claim 80, wherein the service-unit controller includes means for adjusting at least one parameter ofthe upstream transmitting modem so as to enhance the orthogonality of its caniers with respect to the caniers of others ofthe remote service units.
  26. 93
    Claim 92, wherein the parameter-adjusting means adjusts the frequency of the upstream carriers.
  27. 94
    Claim 92, wherein the parameter-adjusting means adjusts the timing ofthe payload information modulated on the upstream carriers.
  28. 95
    Claim 94, wherein the parameter-adjusting means responds to the timing ofthe downstream control messages to adjust the timing ofthe payload information modulated on the upstream carriers.
  29. 96
    Claim 92, wherein the parameter-adjusting means adjusts the amplitude of the upstream caniers.
  30. 97
    Claim 80, wherein the downstream receiving modem of at least some of the remote service units is capable of receiving only a relatively small portion of the entire first frequency band at any one time.
  31. 98
    Claim 97, wherein the downstream receiving modem responds to certain of the downstream control messages to tune to a particular one of a number of realtively small portions ofthe first frequency band.
  32. 99
    Claim 97, wherein the downstream receiving modem of others ofthe remote service units is capable of receiving a relatively larger portion ofthe first frequency band at any one time.
  33. 100
    Claim 80, wherein different ones ofthe downstream and upstream caniers are modulated differently.
  34. 101
    Claim 100, wherein the control caniers and the payload caniers are modulated at different data rates.
  35. 102
    Claim 101, wherein the control carriers are modulated at a substantially lower data rate than that ofthe payload carriers.
  36. 103
    Claim 100, wherein the control carriers and the payload caniers are modulated by different modulation methods.
  37. 104
    Claim 101, wherein one of the modulation methods is quadrature amplitude modulation.
  38. 105
    Claim 103, wherein one of the modulation methods is phase-shift keying.
  39. 106
    A head-end terminal for a bidirectional multipoint-to-point multicanier communications system for transmitting downstream payload information over a distribution network in a first frequency band to a plurality of service units physically remote from each other and from the head-end terminal and for simultaneously receiving upstream payload data from multiple ones ofthe remote service units in a second frequency band, wherein each ofthe remote service units includes — a service-unit controller for transfening only a portion of the payload data to and from user equipment and for producing and processing control messages, a service-unit multicanier receiving modem coupled to the distribution network for demodulating only a subband ofthe first frequency band, the subband containing the portion ofthe the payload information and at least some ofthe control messages, a service-unit multicanier transmitting modem coupled to the service-unit controller for modulating the portion ofthe upstream payload information and some ofthe upstream control messages onto multiple upstream carriers in only a portion ofthe second frequency band on the distribution network, the head-end terminal comprising:a head-end controller for transfening the payload data to and from an external communications network and for producing downstream control messages for all ofthe remote service units and processing upstream control messages from all ofthe remote service units;a head-end multicarrier transmitting modem coupled to the head-end controller for modulating the downstream payload information and the downstream control messages for all of the remote service units onto multiple orthogonal downstream carriers spread throughout substantially all ofthe first frequency band on the distribution network, a head-end multicanier receiving modem coupled to the head-end controller for demodulating multiple orthogonal upstream carriers spread throughout substantially all ofthe second frequency band and carrying the upstream payload information and control messages from all ofthe remote service units simultaneously.
  40. 107
    A head-end terminal for a bidirectional multipoint-to-point multicanier communications system for transmitting downstream payload information over a distribution network in a first frequency band to a plurality of service units physically remote from each other and from the head-end terminal and for simultaneously receiving upstream payload data from multiple ones of the remote service units in a second frequency band, wherein each ofthe remote service units includes — a service-unit controller for transferring only a portion of the payload data to and from user equipment and for producing and processing control messages, a service-unit multicanier receiving modem coupled to the distribution network for demodulating only a subband ofthe first frequency band, the subband containing the portion of the the payload information and at least some ofthe control messages, a service-unit multicanier transmitting modem coupled to the service-unit controller for modulating the portion ofthe upstream payload information and some ofthe upstream control messages onto multiple orthogonal upstream caniers in only one of a plurality of different subbands ofthe second frequency band on the distribution network, the head-end terminal comprising:a single head-end multicanier receiving modem for demodulating multiple orthogonal upstream caniersin all ofthe different subbands spread throughout substantially all ofthe second frequency band and carrying the upstream payload information and control messages from all ofthe remote service units simultaneously;a head-end controller coupled to the downstream receiving modem for transfening the payload data to and from an extemal communications network and for producing downstream control messages for all ofthe remote service units and processing upstream control messages from all ofthe remote service units;a head-end multicanier transmitting modem coupled to the head-end controller for modulating the downstream payload information and the downstream control messages for all ofthe remote service units onto multiple orthogonal downstream carriers spread throughout substantially all ofthe first frequency band on the distribution network.
  41. 108
    A nanow-band service unit for a bidirectional multipoint-to-point communications system for receiving downstream payload information over a distribution network in a first frequency band from a head-end terminal and for simultaneously transmitting upstream payload data to the head-end terminal in a second frequency band, wherein the head-end terminal includes — a head-end controller for transferring the payload data to and from an external communications network, and for producing control messages for a plurality ofthe service units and processing control messages from a plurality ofthe service units, a head-end multicarrier transmitting modem coupled to the head-end controller for modulating the downstream payload information and the downstream control messages onto multiple orthogonal downstream carriers spread throughout substantially all ofthe first frequency band on the distribution network, a head-end multicarrier receiving modem coupled to the head-end controller for demodulating multiple orthogonal upstream caniers spread throughout substantially all ofthe second frequency band and carrying the upstream payload information and control messages on the distribution network, the service unit comprising:a service-unit multicarrier receiving modem coupled to the distribution network for demodulating only a relatively small subband ofthe multiple downstream orthogonal caniers, the subband containing a portion ofthe the payload information and at least some ofthe control messages from the head-end transmitting modem;a service-unit controller coupled to the downstream receiving modem for transfening a portion ofthe payload data to and from user equipment, and for processing only some ofthe downstream control messages and producing upstream control messages for the head-end terminal;a service-unit multicanier transmitting modem coupled to the service-unit controller for modulating the upstream payload information and the upstream control messages onto multiple orthogonal upstream carriers in only a relatively small portion ofthe second frequency band on the distribution network.
  42. 109
    A method for transfening digital data over a distribution network between a single central head-end location and a plurality of remote locations, comprising:generating a master clock signal at the head-end location;deriving a head-end RF clock signal locked in frequency to the master clock signal;deriving a head-end symbol clock signal locked in frequency to the master clock signal;converting multiple strings of downstream digital data to sequences of symbols at times determined by the symbol clock;modulating the symbols onto multiple orthogonal caniers having frequencies all determined by the RF clock, whereby the frequencies of all the caniers and the modulation of all the caniers are locked together;transmitting the modulated orthogonal downstream caniers over the distribution network to the remote locations.
  43. 110
    1 10. Claim 109, further including:receiving at the central head end multiple orthogonal modulated upstream caniers from a plurality ofthe remote units;demodulating all the received upstream caniers simultaneously in accordance with the head-end RF clock so as to produce sequences of upstream symbols;converting the upstream symbols to strings of upstream digital data in accordance with the head-end symbol clock.
  44. 111
    1 11. A multicanier transmitting modem, comprising:means for receiving strings of digital data each having one of a set of different possible values;means for mapping the strings into symbols each having the same fixed amount of phase of predetermined different waveforms conesponding to the different possible values in the set;means for modulating the fixed amount of phase plus an excess amount of phase of the predetermined waveforms onto multiple orthogonal carriers in response to the symbols;means for transmitting the modulated caniers to a distribution network.
  45. 112
    Claim 111, wherein the fixed amount of phase is substantially 360 ° .
  46. 113
    Claim 1 12, wherein the excess amount of phase is about 45 ° .
  47. 114
    1 14. Claim 1 1 1, wherein less than all ofthe carriers are modulated with the excess phase.
  48. 115
    Claim 112, wherein the modulation method is quadrature amplitude modulation.
  49. 116
    A method of transmitting digital data in a communications system, comprising:receiving strings ofthe digital data, each string having one of a set of possible values;mapping the strings onto a set of symbols represented by the same fixed amount of phase of predetermined different waveforms conesponding to the different values in the set of possible values;modulating the fixed amount of phase plus an excess amount of phase of the predetermined waveforms onto a set of multiple orthogonal caniers in response to the symbols;transmitting the modulated caniers to a distribution network in the system.
  50. 117
    1 17. A method of adjusting upstream power levels in a bidirectional multipoint-to-point multichannel communications system having a single central head end and a plurality of service units located remotely from the head end and from each other, the method comprising:repetitively scanning different channels associated with different ones of the remote service units;in response to the scanning step, returning a predetermined signal from each ofthe remote service units to the head end;measuring the received power level of each such signal against a nominal value;for any remote unit whose received power level differs from the nominal value — if the received power level has a first property, adjusting the received power level toward the nominal value at the head end;if the received power level has a second property, adjusting the transmitted power level at the conesponding remote unit so as to bring the received power level toward the nominal value.
  51. 118
    Claim 117, wherein the first property comprisies the difference between the received power level and the nominal value being less than a certain amount.
  52. 119
    Claim 117, wherein the second property comprisies the difference between the received power level and the nominal value being greater than a certain amount.
  53. 120
    Claim 1 17, further comprising time-smoothing the differences between the received power level and the nominal value before adjusting the received power level.
  54. 121
    Claim 117, wherein adjusting the transmitted power level comprisies:sending a message from the head end to the conesponding remote unit;in response to the message, changing the power level of a transmitter located at the remote unit.
  55. 122
    Claim 117, wherein the received and transmitted power levels are adjusted in steps.
  56. 123
    Claim 122, wherein the steps in the transmitted power level are larger than those in the received power level.
  57. 124
    Claim 122, wherein the steps in the transmitted power level are substantially less precise than those in the received power level.
  58. 125
    A multicanier transmitting modem for a communications system, comprising:a port for receiving multiple serial strings of digital data;a scrambler for randomizing the strings of digital data;a mapper for converting the randomized strings into randomized digital symbols representing the strings of digital data;an inverse discrete FFT transformer for converting the randomized symbols into digital representations of multiple modulated orthogonal caniers;means for converting the digital representations into an analog waveform;an amplifier for transmitting the analog waveform to the communications system.
  59. 126
    Claim 125, wherein the scrambler randomizes different ones ofthe multiple strings differently.
  60. 127
    Claim 125, wherein the scrambler comprises linear feedback shift registers.
  61. 128
    A communications system for transfening digital data over a distribution network, comprising:an interface for receiving successive strings of digital data from a source, each string representing a certain number of bits;a symbol mapper for converting the strings into a sequence of symbols representing a constellation of discrete values of the amplitude and phase of a canier for a predetermined period, wherein adjacent ones ofthe amplitude and phase values generally represent data strings having at least as few differences among the bits of their conesponding strings as do nonadjacent ones ofthe amplitude and phase values;a modulator for synthesizing at least one carrier from said symbols;a transmitter for sending the modulated canier over a distribution network.
  62. 129
    Claim 128, wherein said modulator produces a quadrature amplitude modulated carrier.
  63. 130
    Claim 128, wherein said modulator synthesizes a plurality of orthogonal caniers, each modulated with symbols representing discrete values ofthe amplitude and phase of a carrier for a predetermined period, wherein adjacent ones ofthe amplitude and phase values generally represent data strings having at least as few differences among the bits of their conesponding strings than do nonadjacent ones ofthe amplitude and phase values.
  64. 131
    Claim 128, wherein the constellation of discrete amplitude and phase values for valid ones ofthe data strings is rotationally asymmetric.
  65. 132
    A communications system for transfening digital data over a distribution network, comprising:an interface for receiving successive strings of digital data from a source, each string representing a certain number of bits;a symbol mapper for converting the strings into a sequence of symbols representing a constellation of discrete values ofthe amplitude and phase of a canier for a predetermined period, wherein the constellationis rotationally asymmetric for valid ones ofthe data strings;a modulator for synthesizing a plurality of orthogonal caniers from said symbols;a transmitter for sending the modulated caniers over a distribution network.
  66. 133
    In a bidirectional multipoint-to-point multichannel communications system having a single central head end and a plurality of service units located remotely from the head end and from each other, a method performed by both said one remote unit and said central head end for acquiring one of said service units into said system, said method comprising:initializing said one service unit to communicate with said central unit;sending a sync tone from said head end to all of said remote units;sending from said head end a serial number specifying said one remote unit;recognizing said identifier at said one remote unit;at said remote unit, adjusting the frequency of a tuner in responseto the frequency of said sync tone;sending an upstream frequency-bad designation from said head end to said one remote unit;at said remote unit, tuning to said designated frequency band;transmitting a ranging tone at a predetermined power level from said remote unit to said head end;at said head end, comparing a power level of said ranging tone to a desired power level, and sending a power-adjust message to said remote unit;at said remote unit, adjusting a transmission power level in response to said power-adjust message;at said head end, comparing the phase of said ranging tone to the phase of said sync tone, and sending a phase-adjust message to said remote unit;at said remote unit, adjusting the phase of said ranging tone toward a desired phase in response to said phase-adjust message;at said remote unit, sending a locked-in message to said head end when said remote unit has properly adjusted its frequency, phase, and power level.
  67. 134
    Claim 133, wherein said system includes a plurality of command channels interspersed among a number of sets of payload channels, and wherein said messages are communicated between said head end and said one remote unit via said command channels.
  68. 135
    Claim 133, wherein said initializing step includes — at said head end, associating said serial number with a shorter personal identification number (PIN), sending said PIN to said one remote unit along with said serial number, at said remote unit, storing said PIN, at said head end, thereafter including said PIN in messages addressed to said remote unit in place of said serial number, at said remote unit, thereafter acting upon only those messages from said head end which include said PIN.
  69. 136
    Claim 133, wherein said one remote unit contains a table of capabilities for said one remote unit, and further comprising:at said head end, requesting a set of capabilities of said remote unit;sending said requested capabilities to said head end;at said head end, storing said requested capabilities;thereafter, adjusting commands to said remote unit in response to said capabilities.
  70. 137
    Claim 133, wherein said sync tone comprises a pattern of signals repeated over a predetermined number of data frames, and wherein said one remote unit further adjusts the phase of said ranging tone so as to achieve a predetermined relationship with respect to said pattern.
  71. 138
    Claim 133, wherein said initializing step includes, at said one remote unit, retuning said remote unit so as to receive said sync tone, in response to receiving said serial number from said head end.
  72. 139
    In a bidirectional multipoint-to-point multichannel communications system having a single central head end and a plurality of service units located remotely from the head end and from each other, said system communicating by means of multiple coherent carriers wherein at least one of said remote units receives and transmits less than all of said caniers, a method performed by both said one remote unit and said central head end for tracking one of said service units into said system, said carriers including at least one sync tone, a plurality of sets of payload caniers and a plurality of command carriers, at least one of said command channels being within each of said sets, said method comprising:tuning said remote unit to said at least one sync tone;acquiring one of said remote units into said system in frequency, phase, and amlitude in response to said sync tone;retuning said remote unit to a predetermined one of said sets of carriers including a predetermined one of said command caniers;at said remote unit, therafter, adjusting at least the timing and amplitudes of transmissions from said remote unit to said head end over said set of caniers in response to the timing and amplitude of said one command carrier.
  73. 140
    Claim 139, further comprising:at said reote unit, detecting that the timing or amplitude of said one command carrier differs by at least a predetermined threshold from an optimum value;in response thereto, reexecuting said acquiring step.
  74. 141
    Claim 140, further comprising detecting that the timing or amplitude of said one command carrier differs by less than said predetermined threshold from an optimum value, and in response thereto, reexecuting said adjusting step.
  75. 142
    In a bidirectional multipoint-to-point multichannel communications system having a single central head end and a plurality of service units located remotely from the head end and from each other, said system communicating by means of multiple coherent caniers wherein at least one of said remote units receives and transmits less than all of said carriers, a method for transmitting messages having different amounts of error-conection capability, comprising:transmitting from said head end a plurality of sets of carriers, each set including a plurality of payload carriers and at least one control canier;at said head end, maintaining a head-end table having entries each specifying one of a number of enor-conection levels for a different one of said payload carriers;transmitting said table entries to said remote unit via said control carrier;recording said entries in a remote-unit table;at said head end, producing a first message having a first number of data bits and a first number of enor-conection bits;transmitting said first message on a first of said payload carriers to one of said remote units;at said one remote unit, receiving said first message;retrieving from said remote-unit table one entry conesponding to said first payload carrier;decoding the data bits and the enor-conection bits of first message in accordance with said one entry;correcting said data bits with said enor-conection bits;SUBSTITUTE SHEET (RULE 26} at said head end, producing a second message having a second number of data bits and a second number of enor-conection bits;transmitting said second message on a second of said payload caniers to the same one of said remote units;at said one remote unit, receiving said second message;retrieving from said remote-unit tableanother entry conesponding to said second payload canier;decoding the data bits and the enor-conection bits of second message in accordance with said one entry;conecting said data bits with said enor-conection bits.
  76. 143
    In a communications system for transmitting payload messages having a predetermined number of data bits between a central head end and a plurality of remote units within a sequence of frames, a method for including a plurality of different amounts of enor conection into said frames while maintaing a constant transmission time for all of said messages, comprising:encoding a first message having a predetermined total of data bits into a plurality of words each having a first number of data bits and a second number of other bits, so as to form a message having a predetermined number of total bits at a first level of enor-conection capability;encoding asecond message having a the same predetermined total of data bits into a plurality of words each having a second number of data bits, a plurality of words each having said second number of enor-conection bits, and at least one further bit, so as to form a message having the same predetermined number of total bits at a second level of enor-conection capability higher than said first level.
  77. 144
    Claim 143, wherein said other bits are parity bits for each of said words.
  78. 145
    Claim 143, wherein said further bit is a parity bit for said message.
  79. 146
    In a communications system for transmitting payload messages between a central head end and a plurality of remote units over a plurality of coherent caniers within messages each having a sequence of frames, a method for decreasing peak decoding load at said head end, comprising:formatting at least first and second ones of said messages as first and second sequences of frames in first and second ones of said remote units;transmitting said first message over a first of said caniers from said first remote unit to said head end beginning at a first time;transmitting said second message over a second of said caniers from said remote unit to said head end beginning at a second time before the end of said first message;decoding said first message at a third time in a processor located in said head end;decoding said second message at a fourth time in the same processor in said head end.
  80. 147
    Claim 146, wherein said first and second messages have first and second different numbers of frames.
  81. 148
    Claim 147, wherein the difference between the starting times of said first and second messages is different for each of said different message lengths.
  82. 149
    Claim 141 , wherein said head end transmits a superframe signal to said remote units, and wherein each of said first and second times is an offset from said superframe signal.
Independent claims82