CA2327678C

Filter for impulse response shortening, with addition spectral constraints, for multicarrier transmission

Abstract

A channel in a multiple carrier communication system is equalized by computing a desired spectral response, shortening the impulse response of the channel so that a significant part of an energy of the impulse response is confined to a region that is shorter than a target length and filtering the signal based on the desired spectral response. A multiple carrier communication system may include a primary impulse shortening filter that receives an output signal of an analog to digital converter and accepts coefficients. A secondary impulse shortening filter may receive the output signal of the analog to digital converter, output an output signal, and pass coefficients to the primary impulse shortening filter. A reference signal generator may output a reference signal. A comparator may compare the output signal and the reference signal and output a resulting error signal. An adaptive processor may compute coefficients for the secondary impulse shortening filter based on the error signal.

CA2327678C, drawing sheet 1
Sheet 1 of 34

Term

Term ended

Expired 5 April 2019, 7.5 years ago.

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

25 claims: 5 independent, 20 dependent

  1. 1
    CA 02327678 2006-12-14 CLAIMS 1. A method for equalizing a channel in a multiple carrier communication system, the channel being configured to receive a signal and including a spectrally constrained impulse shortening filter, the method comprising:measuring received noise power spectral density;computing a target spectral response having a magnitude constraint that is based on the measured noise power spectral density;selecting a frequency response of the spectrally constrained impulse shortening filter based on the target spectral response to reduce noise bleeding from a particular channel to adjacent channels;and filtering the communication signal with the spectrally constrained impulse shortening filter.
  2. 5
    A method for equalizing a channel in a multiple carrier communication system, the channel having an impulse response and being configured to receive a signal having a cyclic prefix, the method comprising:computing a target spectral response having a magnitude constraint that is based on measured noise power spectral density;CA 02327678 2006-12-14 shortening the impulse response of the channel so that a significant part of an energy of the impulse response is confined to a region that is shorter than a target length;and filtering the signal based on the target spectral response.
  3. 12
    A spectrally constrained impulse shortening filter for a multiple carrier communication system, the system being configured to receive a signal and including a channel that has an impulse response, the filter comprising:an input connected to receive the signal;a digital filter structure configured to apply a frequency characteristic to the signal, the frequency characteristic being determined by filter coefficients;and taps connected to receive the filter coefficients;wherein the coefficients are selected to shorten the impulse response of the channel so that a significant part of an energy of the impulse response is confined to a region that is shorter than a target length and to apply the frequency characteristic to the signal based on a CA 02327678 2006-12-14 target spectral response having a magnitude constraint that is based on measured noise power spectral density.
  4. 15
    A receiver for receiving a multiple carrier signal from a communication channel having an impulse response, the receiver comprising:an analog-to-digital converter connected to receive the signal from the communication 10 channel;a spectrally constrained impulse shortening filter connected to receive the signal from the analog-to-digital converter and configured to shorten the impulse response of the channel so that a significant part of an energy of the impulse response is confined to a region that is shorter than a target length and to apply a frequency characteristic to the signal based on a 15 target spectral response having a magnitude constraint that is based on measured noise power spectral density to reduce noise bleeding from the channel to adjacent channels;a discrete Fourier transform connected to receive the output of the spectrally constrained impulse shortening filter;and a decoder connected to receive outputs of the discrete Fourier transform. 20
  5. 20
    A modem comprising:an encoder connected to receive digital data and configured to output a constellation of complex values;an inverse discrete Fourier transform connected to receive the constellation from the 5 encoder;a digital-to-analog converter connected to the inverse discrete Fourier transform and configured to output a signal to a communication channel;an analog-to-digital converter configured to receive the signal from the communication channel;10 a spectrally constrained impulse shortening filter configured to shorten an impulse response of the channel so that a significant part of an energy of the impulse response is confined to a region that is shorter than a target length and filter the signal based on a target spectral response having a magnitude constraint that is based on measured noise power spectral density;15 a discrete Fourier transform connected to receive an output of the spectrally constrained impulse shortening filter;and a decoder connected to the discrete Fourier transform and configured to output digital data.