Patents by Inventor Christian J. Rotchford

Christian J. Rotchford 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).

  • Patent number: 7986925
    Abstract: A technique for calibrating a transceiver of a wireless communication device includes selectively coupling an output node of a transmitter of the transceiver to an input node of a receiver of the transceiver. A calibration signal is provided, from the output node of the transmitter, to the input node of the receiver. The calibration signal is down-converted, with the receiver, to provide a down-converted calibration signal. A discrete Fourier transform is performed on the down-converted calibration signal. Finally, one or more correction factors are determined based on an analysis of the discrete Fourier transform of the down-converted calibration signal. At least one of the correction factors is utilized to facilitate substantial cancellation of a direct current offset associated with the transceiver.
    Type: Grant
    Filed: August 14, 2008
    Date of Patent: July 26, 2011
    Assignee: Freescale Semiconductor, Inc.
    Inventors: Ronald C. Alford, Leo G. Dehner, Richard B. Meador, Christian J. Rotchford
  • Patent number: 7957716
    Abstract: An embodiment of a baseband filter in a transmitter subsystem of a wireless device comprises an operational amplifier (op-amp), a pole circuit, a feedback capacitor, and an active device. The op-amp is adapted to produce an amplified signal that includes noise gain produced by the op-amp. The pole circuit is electrically coupled with an output terminal of the op-amp, and is adapted to receive the amplified signal and to attenuate the noise gain to produce a filtered, amplified signal. The feedback capacitor is electrically coupled between the first pole circuit and an input terminal of the op-amp, and is adapted to compensate for a phase shift produced by the pole circuit. The active device is electrically coupled with the pole circuit, and is adapted to amplify the filtered, amplified signal and to produce a baseband filtered output signal.
    Type: Grant
    Filed: July 28, 2008
    Date of Patent: June 7, 2011
    Assignee: Freescale Semiconductor, Inc.
    Inventors: Jeff Ganger, Niall Duncan, Michael L. Gomez, Christian J. Rotchford
  • Publication number: 20100041353
    Abstract: A technique for calibrating a transceiver of a wireless communication device includes selectively coupling an output node of a transmitter of the transceiver to an input node of a receiver of the transceiver. A calibration signal is provided, from the output node of the transmitter, to the input node of the receiver. The calibration signal is down-converted, with the receiver, to provide a down-converted calibration signal. A discrete Fourier transform is performed on the down-converted calibration signal. Finally, one or more correction factors are determined based on an analysis of the discrete Fourier transform of the down-converted calibration signal. At least one of the correction factors is utilized to facilitate substantial cancellation of a direct current offset associated with the transceiver.
    Type: Application
    Filed: August 14, 2008
    Publication date: February 18, 2010
    Inventors: Ronald C. Alford, Leo G. Dehner, Richard B. Meador, Christian J. Rotchford
  • Publication number: 20100022215
    Abstract: An embodiment of a baseband filter in a transmitter subsystem of a wireless device comprises an operational amplifier (op-amp), a pole circuit, a feedback capacitor, and an active device. The op-amp is adapted to produce an amplified signal that includes noise gain produced by the op-amp. The pole circuit is electrically coupled with an output terminal of the op-amp, and is adapted to receive the amplified signal and to attenuate the noise gain to produce a filtered, amplified signal. The feedback capacitor is electrically coupled between the first pole circuit and an input terminal of the op-amp, and is adapted to compensate for a phase shift produced by the pole circuit. The active device is electrically coupled with the pole circuit, and is adapted to amplify the filtered, amplified signal and to produce a baseband filtered output signal.
    Type: Application
    Filed: July 28, 2008
    Publication date: January 28, 2010
    Applicant: FREESCALE SEMICONDUCTOR, INC.
    Inventors: Jeff Ganger, Niall Duncan, Michael L. Gomez, Christian J. Rotchford
  • Patent number: 7443323
    Abstract: Methods and corresponding systems for calibrating a digital-to-analog converter include selecting first and second code regions in the digital-to-analog converter, wherein the first and second code regions are separated by a boundary. Thereafter a waveform sequence is input into the digital-to-analog converter, wherein the waveform sequence has a zero offset at the boundary. Then a relative compensation value between the first and second code regions is adjusted to reduce a distortion in an output of the digital-to-analog converter. A magnitude of a third harmonic distortion of the waveform sequence can be used to measure distortion in the output. Adjusting the relative compensation can include converting the output of the digital-to-analog converter to a digital sequence, filtering the digital sequence, and measuring a harmonic distortion in the digital sequence.
    Type: Grant
    Filed: January 10, 2007
    Date of Patent: October 28, 2008
    Assignee: Freescale Semiconductor, Inc.
    Inventors: Christian J. Rotchford, Brandt Braswell, Jiangbo Gan, Michael L. Gomez, Gerald P. Miaille, Boris V. Razmyslovitch
  • Publication number: 20080165040
    Abstract: Methods and corresponding systems for calibrating a digital-to-analog converter include selecting first and second code regions in the digital-to-analog converter, wherein the first and second code regions are separated by a boundary. Thereafter a waveform sequence is input into the digital-to-analog converter, wherein the waveform sequence has a zero offset at the boundary. Then a relative compensation value between the first and second code regions is adjusted to reduce a distortion in an output of the digital-to-analog converter. A magnitude of a third harmonic distortion of the waveform sequence can be used to measure distortion in the output. Adjusting the relative compensation can include converting the output of the digital-to-analog converter to a digital sequence, filtering the digital sequence, and measuring a harmonic distortion in the digital sequence.
    Type: Application
    Filed: January 10, 2007
    Publication date: July 10, 2008
    Inventors: Christian J. Rotchford, Brandt Braswell, Jiangbo Gan, Michael L. Gomez, Gerald P. Miaille, Boris V. Razmyslovitch