EP1537622B1

Iterative multi-stage detection technique for a diversity receiver having multiple antenna elements

Abstract

This record has no abstract on file.

EP1537622B1, drawing sheet 1
Sheet 1 of 14

Term

Term ended

Expired 28 August 2023, 3.1 years ago.

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

13 claims: 2 independent, 11 dependent

  1. 1
    A method for receiving a signal comprising:receiving K replicas of the signal, each of the K replicas being received by one of a corresponding K antennas so as to thereby generate K received signal replicas;processing each of the received signal replicas using one of N orthogonal sequences, thereby generating K processed signal replicas, wherein N is less than K;orthogonally multiplexing the K processed received signal replicas into a multiplexed signal provided to a signal processing chain;downconverting, within the signal processing chain, the multiplexed signal into a baseband multiplexed signal;transforming the baseband multiplexed signal into K separate signals wherein each of the K separate signals corresponds to one of the K replicas of the signal;wherein the processing includes: assigning each of N of the K received signal replicas a corresponding one of the N orthogonal sequences so as to thereby generate a first composite signal;scrambling the first composite signal according to a first scrambling sequence so as to thereby generate a first set of N channel signals;assigning each of M of the K received signal replicas a corresponding one of M orthogonal sequences so as to thereby generate a second composite signal, wherein the M orthogonal sequences are a subset of the N orthogonal sequences;scrambling the second composite signal according to a second scrambling sequence so as to thereby generate a second set of M channel signals;and combining the first set of N channel signals and the second set of M channel signals so as to generate the multiplexed signal;and wherein the transforming includes: removing interference due to the first set of N channel signals from the second set of M channel signals, thereby generating M interference-reduced signals comprising a subset of the K separate signals.
  2. 8
    An apparatus for receiving a signal comprising:K antenna elements (704 1 , 704 2 , 704 3 , ..., 704 N , 708 N+1 , 708 N+2 , 708 N+3 , ..., 708 N+M ), wherein the K antenna elements (704 1 , 704 2 , 704 3 , ..., 704 N , 708 N+1 , 708 N+2 , 708 N+3 , ..., 708 N+M ) are arranged to receive one of a corresponding K replicas of the signal and thereby generate K received signal replicas;a signal processing chain (778);a first multiplexer configured to receive N of the K received signal replicas and generate a first set of N channel signals, wherein each of the N channel signals is spread according to a corresponding one of N orthogonal sequences and corresponds to one of the N received signal replicas;a second multiplexer configured to receive M of the K received signal replicas and generate a second set of M channel signals, wherein each of the M channel signals is spread according to one of the N orthogonal sequences and corresponds to one of the M received signal replicas;a summing portion (744) coupled between the signal processing chain (778) and the first and second multiplexers, wherein the summing portion (744) is configured to combine the first set of N channel signals and the second set of M channel signals into a multiplexed signal and provide the multiplexed signal to the signal processing chain (778);a downconversion module configured to downconvert, within the signal processing chain (778), the multiplexed signal to a baseband multiplexed signal (746);and a signal recovery module (714) coupled to the signal processing chain (778), wherein the signal recovery module (714) is configured to receive the baseband multiplexed signal (746) and provide K separate signals from the baseband multiplexed signal (746), wherein each of the K separate signals corresponds to one of the K replicas of the signal;wherein the first multiplexer includes: a first spreading module (720) coupled to N of the K antenna elements (704 1 , 704 2 , 704 3 , ..., 704 N , 708 N+1 , 708 N+2 , 708 N+3 , ..., 708 N+M ), wherein the first spreading module (720) is configured to receive N of the K received signal replicas and orthogonally spread each of the N received signal replicas with a corresponding one of the N orthogonal sequences so as to generate a set of N spread signals;a first summing module (731) coupled to the first spreading module (720) wherein the first summing module (731) is configured to combine the set of N spread signals so as to generate a composite signal;and a first scrambling portion coupled to the first summing module (731), wherein the first scrambling portion is configured to generate the first set of N channel signals by scrambling first composite signal;wherein the second multiplexer includes: a second spreading module (727) coupled to M of the K antenna elements (704 1 , 704 2 , 704 3 , ..., 704 N , 708 N+1 , 708 N+2 , 708 N+3 , ..., 708 N+M ), wherein the second spreading module (727) is configured to receive M of the K received signal replicas and orthogonally spread each of the M received signal replicas with at least one of the N orthogonal sequences so as to be capable of generating a set of M spread signals;a second summing module (736) coupled to the second spreading module (727) wherein the second summing module (736) is configured to combine the set of M spread signals so as to be capable of generating a second composite signal;and a second scrambling portion coupled to the second summing module, wherein the second scrambling portion is configured to generate the second set of M channel signals by scrambling the second composite signal;wherein the signal recovery module (714) includes: an N channel recovery portion (716) configured to provide N separate signals from the baseband multiplexed signal (746), each of the N separate signals corresponding to one of the N received signal replicas;and an M channel recovery portion (718) coupled to the N channel recovery portion (716), wherein the M channel recovery portion (718) is configured to provide M separate signals from the baseband multiplexed signal (746), each of the M separate signals corresponding to one of the M received signal replicas;wherein the K separate signals include the N separate signals and the M separate signals;wherein the N channel recovery portion (716) is configured to provide an interference signal (780) to the M channel recovery portion (718), wherein the interference signal (780) is an estimate of interference the first set of N channel signals impart upon the second set of M channel signals;wherein the M channel recovery portion (718) is configured to subtract the interference signal (780) from the baseband multiplexed signal (746) before providing the M separate signals.