Patents by Inventor Sahan S. Gamage

Sahan S. Gamage has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Publication number: 20140247782
    Abstract: Mixed mode constellation mapping to map a data block to a block of sub-carriers based on a configurable set of one or more constellation mapping schemes, and corresponding mixed mode least likelihood ratio (LLR) de-mapping based on the configurable set of one or more modulation schemes. The set may be configurable to include multiple modulation schemes to provide to a SEvSNR measure that is a non-weighted or weighted average of SEvSNR measures of the multiple modulation schemes. Mixed mode constellation mapping may be useful be configurable to control spectral efficiency versus SNR (SEvSNR) over a range of SNR with relatively fine SNR granularity, and may be configurable to control SEvSNR over a range of SNR at a fixed FEC code rate, which may include a highest available or highest permitted code rate.
    Type: Application
    Filed: March 4, 2014
    Publication date: September 4, 2014
    Inventors: Bernard Arambepola, Noam Tal, Sahan S. Gamage, Thushara Hewavithana, Shaul Shulman
  • Publication number: 20140211889
    Abstract: A system according to one embodiment includes a demodulator configured to receive an orthogonal frequency division multiplexed (OFDM) modulated signal comprising a current symbol and a sequence of previous symbols, each of the symbols comprising one or more pilot sub-carriers and one or more data sub-carriers; a phase angle computation circuit coupled to the demodulator, the phase angle computation circuit configured to compute a first mean, the first mean computed from the phase angle of one or more of the pilot sub-carriers of a predetermined number of the previous symbols; a predictive filter circuit coupled to the phase angle computation circuit, the predictive filter circuit configured to compute a second mean, the second mean estimating the phase angle of one or more sub-carriers of the current symbol, the estimation based on the first mean; and a phase noise cancelling circuit coupled to the predictive filter circuit, the phase noise cancelling circuit configured to correct the phase of one or more sub
    Type: Application
    Filed: December 20, 2011
    Publication date: July 31, 2014
    Inventors: Bernard Arambepola, Thushara Hewavithana, Parveen K. Shukla, Sahan S. Gamage
  • Patent number: 8611407
    Abstract: According to various embodiments, apparatus and methods disclosed herein include computing phase error of a received signal based on an estimate of a first component (e.g., in-phase component) of a transmitted signal and an analytic representation of the estimate of the first component of the transmitted signal. The analytic representation of the estimate of the first component of the transmitted signal may represent an estimate of a second component (e.g., quadrature phase component) of the transmitted signal. The analytic representation of the estimated first component may be computed using at least one of a Hilbert transform or Fourier transform on the estimated first component of the transmitted signal.
    Type: Grant
    Filed: November 1, 2011
    Date of Patent: December 17, 2013
    Assignee: Intel Corporation
    Inventors: Bernard Arambepola, Thushara Hewavithana, Sahan S. Gamage, Parveen K. Shukla
  • Patent number: 8582035
    Abstract: An embodiment of the present invention provides a method for digital television demodulation, comprising using adjacent-channel power dependent automatic gain control (AGC) for the digital television demodulation, wherein an AGC technique takes into account a total power as well as power of adjacent channels to control gain of a gain control amplifier.
    Type: Grant
    Filed: February 22, 2011
    Date of Patent: November 12, 2013
    Assignee: Intel Corporation
    Inventors: Parveen K Shukla, Bernard Arambepola, Thushara Hewavithana, Sahan S Gamage
  • Patent number: 8472540
    Abstract: According to various embodiments, a method is disclosed that includes a method is disclosed that includes determining, by a receiver, a frequency offset in a signal comprising a set of orthogonal frequency division multiplexed (OFDM) symbols by determining a first difference in phase angles between a nth OFDM symbol and a nth+1 OFDM symbol on a common OFDM carrier and a first difference in phase angles between the nth+1 OFDM symbol and a nth+2 OFDM symbol on the common OFDM carrier and determining a second difference in phase angles between the first difference in phase angles between the nth OFDM symbol and the nth+1 OFDM system and the first difference in phase angles between the nth+1 OFDM symbol and the nth+2 OFDM symbol to identify the frequency offset, wherein n?{1, . . . , N}; and correcting, by the receiver, the signal using the determined frequency offset.
    Type: Grant
    Filed: November 30, 2010
    Date of Patent: June 25, 2013
    Assignee: Intel Corporation
    Inventors: Sahan S. Gamage, Bernard Arambepola, Thushara Hewavithana, Parveen K. Shukla
  • Patent number: 8457256
    Abstract: Methods and systems to compute likelihood measures of demodulated, complex-coordinate data points, to and dynamically scale the likelihood measures as a function of a channel statistic, and to decode the data points from the scaled likelihood measures. Likelihood measures may be computed relative to all points, or a subset of points of a reference constellation, such as a subset of one or more nearest constellation points. Likelihood measures may be scaled as a function of a channel frequency response variance amongst a plurality of carriers, such as carriers of an OFDM signal, and/or as a function of a channel impulse response variance.
    Type: Grant
    Filed: August 25, 2010
    Date of Patent: June 4, 2013
    Assignee: Intel Corporation
    Inventors: Sahan S. Gamage, Bernard Arambepola, Thushara Hewavithana, Parveen K. Shukla, Vinesh Bhunjun
  • Publication number: 20130107996
    Abstract: According to various embodiments, apparatus and methods disclosed herein may be implemented in a digital communication (wired or wireless) receiver, and relate to minimizing noise in an estimated channel frequency response at the receiver for the purposes of channel equalization. The disclosed apparatus and methods may include determining a channel impulse response based on an estimated channel frequency response. The estimated channel frequency response, the channel impulse response, or both may include noise. An impulse response mask may be determined based on the channel impulse response, and further applied to the channel impulse response to obtain a noise-reduced channel impulse response, which may be Fourier transformed to obtain a noise-reduced channel frequency response.
    Type: Application
    Filed: November 1, 2011
    Publication date: May 2, 2013
    Inventors: Thushara Hewavithana, Bernard Arambepola, Parveen K. Shukla, Sahan S. Gamage
  • Publication number: 20130107992
    Abstract: According to various embodiments, apparatus and methods disclosed herein include computing phase error of a received signal based on an estimate of a first component (e.g., in-phase component) of a transmitted signal and an analytic representation of the estimate of the first component of the transmitted signal. The analytic representation of the estimate of the first component of the transmitted signal may represent an estimate of a second component (e.g., quadrature phase component) of the transmitted signal. The analytic representation of the estimated first component may be computed using at least one of a Hilbert transform or Fourier transform on the estimated first component of the transmitted signal.
    Type: Application
    Filed: November 1, 2011
    Publication date: May 2, 2013
    Inventors: Bernard ARAMBEPOLA, Thushara HEWAVITHANA, Sahan S. GAMAGE, Parveen K. SHUKLA
  • Patent number: 8406343
    Abstract: Methods and systems to resolve cyclic ambiguity of a scattered-pilot based channel impulse response as a function of transmission parameter signalling (TPS), such as in a single frequency network, including to zero-pad a first orientation of the channel impulse response to an interval of an effective symbol duration of the multi-carrier signal, compute a channel frequency response from the zero-padded first orientation of the channel impulse response, and correlate components of the channel frequency response corresponding to frequencies of TPS carriers with raw channel frequency response data of obtained from the TPS carriers. Frequency response components of multiple zero-padded orientations of the channel impulse response may be correlated with the raw TPS carrier data to identify an optimum orientation of the channel impulse response. Frequency response components of subsequent zero-padded orientations may be iteratively computed from components of preceding orientations.
    Type: Grant
    Filed: August 25, 2010
    Date of Patent: March 26, 2013
    Assignee: Intel Corporation
    Inventors: Thushara Hewavithana, Bernard Arambepola, Parveen K. Shukla, Sahan S. Gamage, Vinesh Bhunjun
  • Publication number: 20130022097
    Abstract: According to various embodiments, devices and methods disclosed herein include performing, using a processor, a linear operation on a first plurality of channel frequency responses and a plurality of corresponding predictor coefficients to estimate a new channel frequency response. Each of the plurality of corresponding predictor coefficients may be updated based on an error value and a second plurality of channel frequency responses to obtain an updated predictor coefficient. The error value may be computed based on an estimated current channel frequency response and a predicted current channel frequency response. The new channel frequency response may be used to equalize a received modulated signal including a single-carrier modulated signal, e.g., a signal modulated using a vestigial sideband modulation scheme, or a quadrature amplitude modulation scheme.
    Type: Application
    Filed: July 18, 2011
    Publication date: January 24, 2013
    Inventors: Thushara HEWAVITHANA, Bernard ARAMBEPOLA, Sahan S. GAMAGE, Parveen K. SHUKLA
  • Publication number: 20120212675
    Abstract: An embodiment of the present invention provides a method for digital television demodulation, comprising using adjacent-channel power dependent automatic gain control (AGC) for the digital television demodulation, wherein an AGC technique takes into account a total power as well as power of adjacent channels to control gain of a gain control amplifier.
    Type: Application
    Filed: February 22, 2011
    Publication date: August 23, 2012
    Inventors: Parveen K. Shukla, Bernard Arambepola, Thushara Hewavithana, Sahan S. Gamage
  • Patent number: 8234556
    Abstract: Embodiments of a broadcast receiver and method for optimizing a scale factor in a log-likelihood ratio (LLR) mapper are generally described herein. In some embodiments, the broadcast receiver includes an LLR mapper to generate LLRs from demodulated data samples, a low-density parity-check (LDPC) decoder to generate decoded data from the LLRs, and an LLR optimizer to dynamically select a scale factor for the LLR mapper based on a number of iterations for convergence of the LDPC decoder. In some embodiments, the LLR optimizer iteratively revises the scale factor during receipt of broadcast signals until the number of iterations of the iterative decoder is either minimized for convergence or minimized for convergence failures.
    Type: Grant
    Filed: December 30, 2008
    Date of Patent: July 31, 2012
    Assignee: Intel Corporation
    Inventors: Sahan S. Gamage, Bernard Arambepola, Thushara Hewavithana, Parveen K. Shukla, Vinesh Bhunjun
  • Publication number: 20120155577
    Abstract: According to various embodiments, a method is disclosed that includes receiving an orthogonal frequency-division multiplexing (OFDM) modulated signal at a modulator; filtering the received modulated signal using a plurality of sets of filter coefficients with a linear predictor algorithm; and estimating a channel frequency response based on the filtering.
    Type: Application
    Filed: December 21, 2010
    Publication date: June 21, 2012
    Inventors: Parveen K. SHUKLA, Bernard Arambepola, Thushara Hewavithana, Sahan S. Gamage
  • Patent number: 8204156
    Abstract: Apparatuses, systems, and methods that employ conditional probabilities to calculate phase errors are disclosed. For a received signal, the embodiments may develop several phase error estimates relative to each point of a constellation, the number and location of points of the constellation depending on the modulation technique of the received signal. In addition to calculating the phase error estimates, the embodiments may also calculate weights, or probabilities, associated with each of the estimates. The embodiments may use the estimates and the weights to calculate a composite phase error estimate. The composite phase error estimate may be used to correct the received signal and eliminate or reduce the impact of the phase error.
    Type: Grant
    Filed: December 31, 2008
    Date of Patent: June 19, 2012
    Assignee: Intel Corporation
    Inventors: Thushara Hewavithana, Bernard Arambepola, Parveen K. Shukla, Sahan S. Gamage, Vinesh Bhunjun
  • Publication number: 20120134398
    Abstract: According to various embodiments, a method is disclosed that includes a method is disclosed that includes determining, by a receiver, a frequency offset in a signal comprising a set of orthogonal frequency division multiplexed (OFDM) symbols by determining a first difference in phase angles between a nth OFDM symbol and a nth+1 OFDM symbol on a common OFDM carrier and a first difference in phase angles between the nth+1 OFDM symbol and a nth+2 OFDM symbol on the common OFDM carrier and determining a second difference in phase angles between the first difference in phase angles between the nth OFDM symbol and the nth+1 OFDM system and the first difference in phase angles between the nth+1 OFDM symbol and the nth+2 OFDM symbol to identify the frequency offset, wherein n?{1, . . . , N}; and correcting, by the receiver, the signal using the determined frequency offset.
    Type: Application
    Filed: November 30, 2010
    Publication date: May 31, 2012
    Inventors: Sahan S. Gamage, Bernard Arambepola, Thushara Hewavithana, Parveen K. Shukla
  • Publication number: 20120051469
    Abstract: Methods and systems to compute likelihood measures of demodulated, complex-coordinate data points, to and dynamically scale the likelihood measures as a function of a channel statistic, and to decode the data points from the scaled likelihood measures. Likelihood measures may be computed relative to all points, or a subset of points of a reference constellation, such as a subset of one or more nearest constellation points. Likelihood measures may be scaled as a function of a channel frequency response variance amongst a plurality of carriers, such as carriers of an OFDM signal, and/or as a function of a channel impulse response variance.
    Type: Application
    Filed: August 25, 2010
    Publication date: March 1, 2012
    Inventors: Sahan S. Gamage, Bernard Arambepola, Thushara Hewavithana, Parveen K. Shukla, Vinesh Bhunjun
  • Publication number: 20120051471
    Abstract: Methods and systems to resolve cyclic ambiguity of a scattered-pilot based channel impulse response as a function of transmission parameter signalling (TPS), such as in a single frequency network, including to zero-pad a first orientation of the channel impulse response to an interval of an effective symbol duration of the multi-carrier signal, compute a channel frequency response from the zero-padded first orientation of the channel impulse response, and correlate components of the channel frequency response corresponding to frequencies of TPS carriers with raw channel frequency response data of obtained from the TPS carriers. Frequency response components of multiple zero-padded orientations of the channel impulse response may be correlated with the raw TPS carrier data to identify an optimum orientation of the channel impulse response. Frequency response components of subsequent zero-padded orientations may be iteratively computed from components of preceding orientations.
    Type: Application
    Filed: August 25, 2010
    Publication date: March 1, 2012
    Inventors: Thushara Hewavithana, Bernard Arambepola, Parveen K. Shukla, Sahan S. Gamage, Vinesh Bhunjun
  • Publication number: 20100169734
    Abstract: Embodiments of a broadcast receiver and method for optimizing a scale factor in a log-likelihood ratio (LLR) mapper are generally described herein. In some embodiments, the broadcast receiver includes an LLR mapper to generate LLRs from demodulated data samples, a low-density parity-check (LDPC) decoder to generate decoded data from the LLRs, and an LLR optimizer to dynamically select a scale factor for the LLR mapper based on a number of iterations for convergence of the LDPC decoder. In some embodiments, the LLR optimizer iteratively revises the scale factor during receipt of broadcast signals until the number of iterations of the iterative decoder is either minimized for convergence or minimized for convergence failures.
    Type: Application
    Filed: December 30, 2008
    Publication date: July 1, 2010
    Inventors: Sahan S. Gamage, Bernard Arambepola, Thushara Hewavithana, Parveen K. Shukla, Vinesh Bhunjun
  • Publication number: 20100166115
    Abstract: Apparatuses, systems, and methods that employ conditional probabilities to calculate phase errors are disclosed. For a received signal, the embodiments may develop several phase error estimates relative to each point of a constellation, the number and location of points of the constellation depending on the modulation technique of the received signal. In addition to calculating the phase error estimates, the embodiments may also calculate weights, or probabilities, associated with each of the estimates. The embodiments may use the estimates and the weights to calculate a composite phase error estimate. The composite phase error estimate may be used to correct the received signal and eliminate or reduce the impact of the phase error.
    Type: Application
    Filed: December 31, 2008
    Publication date: July 1, 2010
    Inventors: Thushara Hewavithana, Bernard Arambepola, Parveen K. Shukla, Sahan S. Gamage, Vinesh Bhunjun