EP0931388B1

Spatio-temporal processing for communication

Abstract

This record has no abstract on file.

EP0931388B1, drawing sheet 1
Sheet 1 of 113

Term

Term ended

Expired 27 August 2017, 9.1 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

114 claims: 25 independent, 89 dependent

  1. 1
    A method for transmitting information via a plurality of inputs to a channel in a digital communication system, the method comprising:providing a time domain substantially orthogonalizing procedure to divide said channel into input bins;providing one or more spatial directions for communication defined by corresponding weightings among said channel inputs wherein each input bin has at least one associated spatial direction;and transmitting said information in subchannels by employing at least two independent parallel applications of said time domain substantially orthogonalizing procedure, the subchannels being defined by a combination of input bin and spatial direction.
  2. 8
    The method of any preceding claim wherein transmitting comprises:providing a group of input symbols wherein each input symbol corresponds to a particular input bin of said time domain substantially orthogonalizing procedure;applying ones of said weightings corresponding to each of said input bins to each of said input symbols to develop for each of said input symbols a vector of spatially processed symbols, each element of said vector corresponding to a single channel input of said plurality of channel inputs;applying said time domain substantially orthogonalizing procedure independently for each of said channel inputs to said spatially processed symbols;and transmitting information via said channel inputs responsive to results of said time domain substantially orthogonalizing procedure.
  3. 9
    The method of any of Claims 1 to 7 wherein transmitting comprises transmitting information in subchannels defined by said input bins and at least two spatial directions associated with each of said input bins, said spatial directions being chosen independently for each of said input bins.
  4. 17
    The method of any of Claims 12 to 16 wherein said coding procedure belongs to a group consisting of:convolutional coding, Reed-Solomon coding, CRC coding, block coding, trellis coding, turbo coding, and interleaving.
  5. 23
    The method of any preceding claim wherein said time domain substantially orthogonalizing procedure belongs to one of a group consisting of an inverse Fast Fourier Transform and a Fast Fourier Transform.
  6. 24
    The method of any preceding claim wherein said channel comprises a wireless channel and said plurality of channel inputs are associated with a corresponding plurality of transmitter antenna elements.
  7. 25
    The method of any preceding claim further comprising:allocating bit loading and power among said plurality of subchannels.
  8. 26
    A transmitter system for transmitting information via a plurality of inputs to a channel, said transmitter system comprising:at least one processing element (190) that applies a time domain substantially orthogonalizing procedure to divide said channel into input bins;a spatial processor (230) employing weightings among the channel inputs to define spatial directions wherein each input bin has at least one associated spatial direction;and    wherein said transmitter system transmits information in subchannels of said channel, each of said subchannels being defined by a combination of input bin and spatial direction, by employing said at least one processing element for at least two independent applications of said time domain substantially orthogonalizing procedure.
  9. 42
    The transmitter system of any of Claims 37 to 41 wherein said coding procedure belongs to a group consisting of:convolutional coding, Reed-Solomon coding, CRC coding, block coding, trellis coding, turbo coding, and interleaving.
  10. 49
    The transmitter system of any of Claims 26 to 48 wherein said time domain substantially orthogonalizing procedure belongs to one of a group consisting of an inverse Fast Fourier Transform and a Fast Fourier Transform.
  11. 50
    The transmitter system of any of Claims 26 to 49 wherein said channel comprises a wireless channel and said plurality of channel inputs are associated with a corresponding plurality of transmitter antenna elements.
  12. 51
    The transmitter system of any of Claims 26 to 50 further comprising:a bit loading system that allocates bit loading and power among said plurality of subchannels.
  13. 52
    A method for receiving information via a plurality of outputs from a channel in a digital communication system, said method comprising:providing a time domain substantially orthogonalizing procedure to divide said channel into output bins;providing one or more spatial directions for communication defined by corresponding weightings among said channel outputs wherein each output bin has at least one associated spatial direction;and receiving information via subchannels of said channel by employing at least two independent parallel applications of said time domain substantially orthogonalizing procedure, each subchannel being defined by a combination of output bin and spatial direction.
  14. 59
    The method of any of Claims 52 to 58 wherein receiving comprises:receiving input time domain symbols via said channel outputs;applying said substantially orthogonalizing procedure to said input time domain symbols independently for each of said channel outputs;and applying ones of said weightings corresponding to each of said output bins to results of said substantially orthogonalizing procedure to obtain symbols transmitted via each of said subchannels.
  15. 74
    The method of any of Claims 52 to 73 wherein said time domain substantially orthogonalizing procedure belongs to one of a group consisting of a Fast Fourier Transform and an inverse Fast Fourier Transform.
  16. 75
    The method of any of Claims 52 to 73 wherein said time domain substantially orthogonalizing procedure belongs to one of a group consisting of a discrete cosine transform, a Hilbert transform, a wavelet transform, and processing through a plurality of frequency converter/bandpass filter pairs centered at spaced apart frequencies.
  17. 76
    The method of any of Claims 52 to 75 wherein said channel comprises a wireless channel and said plurality of channel outputs are associated with a corresponding plurality of receiver antenna elements.
  18. 77
    The method of any of Claims 52 to 76 further comprising:receiving via a particular one of said channel outputs, at least ν frequency domain training symbols transmitted via a particular input to said channel, ν being an extent in symbol periods of a duration of significant terms of an impulse response of channel component coupling said particular channel input and said particular channel output;applying said time domain substantially orthogonalizing procedure to said at least ν received training symbols to obtain a time domain response for said channel component;and applying an inverse of said substantially orthogonalizing procedure to a zero-padded version of said time domain response to obtain a frequency response for said channel component.
  19. 78
    A receiver system for receiving information via a plurality of outputs from a channel, said receiver system comprising:at least one processing element (200) that applies a time domain substantially orthogonalizing procedure to divide said channel into output bins;a spatial processor (210) employing weightings among said channel outputs to define spatial directions wherein each output bin has at least one associated spatial direction;and    wherein said receiver system receives information via subchannels of said channel, by employing at least two independent parallel applications of said substantially orthogonalizing procedure by said at least one processing element, each of said subchannels being defined by a combination of output bin and spatial direction.
  20. 101
    The receiver system of any of Claims 78 to 100 wherein said time domain substantially orthogonalizing procedure belongs to one of a group consisting of a Fast Fourier Transform and an inverse Fast Fourier Transform.
  21. 102
    The receiver system of Claims 78 to 101 wherein said channel comprises a wireless channel and said plurality of channel outputs are associated with a corresponding plurality of receiver antenna elements.
  22. 103
    A transmitter system for transmitting information via a plurality of inputs to a channel, said transmitter system comprising:at least one processing element (190) that performs a time domain substantially orthogonalizing procedure to divide said channel into input bins;an encoding system (10) that applies an encoding scheme to information, said encoding scheme advantageously distributing information among multiple spatial directions;and    wherein said transmitter system transmits information as encoded by said encoding system in subchannels of said channel, each of said subchannels being defined by a combination of input bin and spatial direction.
  23. 108
    The transmitter system of any of Claims 103 to 107 wherein said encoding scheme codes across input bins.
  24. 109
    A receiver system for receiving information via a plurality of outputs from a channel, the receiver system comprising:at least one processing element (200) that performs a time domain substantially orthogonalizing procedure to divide said channel into output bins;a decoding system (150) that removes an encoding scheme from received information, said encoding scheme advantageously distributing information among multiple spatial directions;and    wherein said receiver system receives said information in subchannels of said channel, each of said subchannels being defined by a combination of output bin and spatial direction.
  25. 114
    The receiver system of any of Claims 109 to 113 wherein said encoding scheme codes across output bins.
Independent claims25