Patents by Inventor Miroslav Svajda

Miroslav Svajda 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: 11811904
    Abstract: Technologies are provided for adaptive control of bias settings in a digital microphone. In some embodiments, a device includes a first component that provides data indicative of a clock frequency of operation in a functional mode of a digital microphone. The clock frequency clocks one or more microphone components having switching activity. The device also can include a second component that determines, using the clock frequency, an amount of bias current to supply to at least a first microphone component of the one or more microphone components. The device can further include a memory device that retains control parameters that include at least one of a first subset of parameters defining a relationship between current and frequency and a second subset of parameters defining a quantization of the relationship. The quantization including multiple bias current levels for respective frequency intervals.
    Type: Grant
    Filed: May 7, 2021
    Date of Patent: November 7, 2023
    Assignee: INVENSENSE, INC.
    Inventors: Miroslav Svajda, Dusan Vecera, Igor Mucha
  • Patent number: 11743667
    Abstract: A microelectromechanical system (MEMS) microphone includes a cavity to receive an acoustic signal. The acoustic signal causes movement of a diaphragm relative to one or more other surfaces, which in turn results in an electrical signal representative of the received acoustic signal. A light sensor is included within the packaging of the MEMS microphone such that an output of the light sensor is representative of a light signal received with the acoustic signal. The output of the light sensor is used to modify the electrical signal representative of the received acoustic signal in a manner that limits light interference with an acoustical output signal.
    Type: Grant
    Filed: August 29, 2022
    Date of Patent: August 29, 2023
    Assignee: InvenSense, Inc.
    Inventor: Miroslav Svajda
  • Publication number: 20220417685
    Abstract: A microelectromechanical system (MEMS) microphone includes a cavity to receive an acoustic signal. The acoustic signal causes movement of a diaphragm relative to one or more other surfaces, which in turn results in an electrical signal representative of the received acoustic signal. A light sensor is included within the packaging of the MEMS microphone such that an output of the light sensor is representative of a light signal received with the acoustic signal. The output of the light sensor is used to modify the electrical signal representative of the received acoustic signal in a manner that limits light interference with an acoustical output signal.
    Type: Application
    Filed: August 29, 2022
    Publication date: December 29, 2022
    Inventor: Miroslav Svajda
  • Patent number: 11463830
    Abstract: A microelectromechanical system (MEMS) microphone includes a cavity to receive an acoustic signal. The acoustic signal causes movement of a diaphragm relative to one or more other surfaces, which in turn results in an electrical signal representative of the received acoustic signal. A light sensor is included within the packaging of the MEMS microphone such that an output of the light sensor is representative of a light signal received with the acoustic signal. The output of the light sensor is used to modify the electrical signal representative of the received acoustic signal in a manner that limits light interference with an acoustical output signal.
    Type: Grant
    Filed: February 12, 2021
    Date of Patent: October 4, 2022
    Assignee: InvenSense, Inc.
    Inventor: Miroslav Svajda
  • Publication number: 20220264238
    Abstract: A microelectromechanical system (MEMS) microphone includes a cavity to receive an acoustic signal. The acoustic signal causes movement of a diaphragm relative to one or more other surfaces, which in turn results in an electrical signal representative of the received acoustic signal. A light sensor is included within the packaging of the MEMS microphone such that an output of the light sensor is representative of a light signal received with the acoustic signal. The output of the light sensor is used to modify the electrical signal representative of the received acoustic signal in a manner that limits light interference with an acoustical output signal.
    Type: Application
    Filed: February 12, 2021
    Publication date: August 18, 2022
    Inventor: Miroslav Svajda
  • Publication number: 20220116196
    Abstract: Technologies are provided for adaptive control of bias settings in a digital microphone. In some embodiments, a device includes a first component that provides data indicative of a clock frequency of operation in a functional mode of a digital microphone. The clock frequency clocks one or more microphone components having switching activity. The device also can include a second component that determines, using the clock frequency, an amount of bias current to supply to at least a first microphone component of the one or more microphone components. The device can further include a memory device that retains control parameters that include at least one of a first subset of parameters defining a relationship between current and frequency and a second subset of parameters defining a quantization of the relationship. The quantization including multiple bias current levels for respective frequency intervals.
    Type: Application
    Filed: May 7, 2021
    Publication date: April 14, 2022
    Inventors: Miroslav Svajda, Dusan Vecera, Igor Mucha
  • Patent number: 9651421
    Abstract: A device includes a substrate is substantially transparent and includes a contact surface and an interface surface. The interface surface includes a plurality of electrical contacts. The device further includes a semiconductor die, which includes a plurality of connections, a first photo detector and a second photo detector. Each of the plurality of connections includes a connection bump formed thereon to couple to the plurality of electrical contacts of the interface surface of the substrate. The plurality of connections positioned relative to the first and second photo detectors to alter a directional response of at least one photo detector of the plurality of photo detectors.
    Type: Grant
    Filed: November 17, 2010
    Date of Patent: May 16, 2017
    Assignee: Silicon Laboratories, Inc.
    Inventors: Miroslav Svajda, Steve Gerber, Wayne T. Holcombe
  • Patent number: 8803096
    Abstract: In one embodiment, a method includes receiving outputs from multiple photodetectors, calculating a first ratio between first and second such outputs, calculating a second ratio between the first output and a difference corresponding to a flicker noise component obtained from the second output, and determining a contribution from multiple illumination types based at least in part on the first and second ratios. The method may also include obtaining multiple correction coefficients based at least in part on the determined contribution, and in turn determining an ambient light type present in proximity to the photodetectors using the correction coefficients and the first and second outputs.
    Type: Grant
    Filed: September 30, 2010
    Date of Patent: August 12, 2014
    Assignee: Silicon Laboratories Inc.
    Inventors: Wayne T. Holcombe, Miroslav Svajda
  • Patent number: 8723149
    Abstract: Systems and methods for advanced monitoring and control using an LED driver in an optical processor are described. In an embodiment, a monitoring and control circuit may include a light-emitting diode (LED) driver including a control input, an output, and a node, wherein the output is coupled to an LED. The circuit may also include a multiplexer coupled to the node of the LED driver, an analog-to-digital converter coupled to the multiplexer, and a controller coupled to the analog-to-digital converter and to the control input of the LED driver, wherein the LED driver is coupled to drive the output with a first voltage supply that is independent from a second voltage supply that is coupled to drive the controller.
    Type: Grant
    Filed: November 10, 2010
    Date of Patent: May 13, 2014
    Assignee: Silicon Laboratories Inc.
    Inventors: Miroslav Svajda, Wayne T. Holcombe
  • Patent number: 8704152
    Abstract: An apparatus includes a housing having a front surface, a rear surface, and at least one sidewall therebetween and a plurality of optical windows formed in the housing to allow light to pass through from multiple directions. The apparatus further includes a plurality of photo detectors to generate electrical signals based on received light, where each of the plurality of photo detectors is disposed within a respective one of the plurality of optical windows. The apparatus also includes a control circuit coupled to the plurality of photo detectors to receive the electrical signals, determine light variations from the electrical signals, and determine a change in position of an object based on variation ratios of the light variations received by at least one pair of photo detectors within the plurality of photo detectors in response to determining the light variations.
    Type: Grant
    Filed: December 21, 2010
    Date of Patent: April 22, 2014
    Assignee: Silicon Laboratories Inc.
    Inventors: Miroslav Svajda, Wayne T. Holcombe
  • Patent number: 8698471
    Abstract: Systems and methods for a digital-to-charge converter (“DQC”) are disclosed. A DQC may include a converting circuit configured to receive a first digital signal indicative of a voltage across a capacitor coupled to an output pin of the digital-to-charge converter and to determine a present charge of the capacitor based at least in part on the first digital signal. The DQC may also include an error determining circuit coupled to the converting circuit, wherein the error determining circuit is configured to receive a second digital signal indicative of a target charge via an input pin of the digital-to-charge converter and to determine a difference between the target charge and the present charge. The DQC may further include a correction circuit coupled to the error determining circuit and configured to control a programmable current source to produce an analog signal at the output pin in response to the determined difference.
    Type: Grant
    Filed: December 22, 2010
    Date of Patent: April 15, 2014
    Assignee: Silicon Laboratories Inc.
    Inventors: Jefferson L. Gokingco, Stephen C. Gerber, Wayne T. Holcombe, Miroslav Svajda, Robert G. Farmer
  • Patent number: 8660300
    Abstract: An optical gesture recognition system is shown having a first light source and a first optical receiver configured to receive reflected light from an object when the first light source is activated and output a first measured reflectance value corresponding to an amplitude of the reflected light. A processor is configured to receive the first measured reflectance value and to compare the first measured reflectance value at first and second points in time to track motion of the object and identify a gesture of the object corresponding to the tracked motion of the object.
    Type: Grant
    Filed: December 12, 2008
    Date of Patent: February 25, 2014
    Assignee: Silicon Laboratories Inc.
    Inventors: Miroslav Svajda, Wayne T. Holcombe
  • Patent number: 8569679
    Abstract: A system includes a plurality of photo detectors, which generate signals proportional to incident light. The system further includes an optical barrier adjacent to a surface and includes a control circuit. The optical barrier partially obstructs reflected light from reaching the plurality of photo detectors to produce a spatially dependent reflectance pattern that is dependent on a position of an object relative to a substrate. The control circuit determines a position of the object during a reflectance measurement cycle using each of the plurality of photo detectors by calibrating to ambient light conditions, measuring ambient plus reflected light, determining the reflected light and detecting the position of the object based on a ratio of the reflected light received by at least two of the plurality of photo detectors.
    Type: Grant
    Filed: November 17, 2010
    Date of Patent: October 29, 2013
    Assignee: Silicon Laboratories Inc.
    Inventors: Wayne T. Holcombe, Miroslav Svajda
  • Patent number: 8363894
    Abstract: A method for gesture recognition in an optical system using a touchless slider is shown. The touchless slider has first and second reference points positioned along an axis in an optical system. The method includes obtaining a plurality of first and second reflectance values by measuring an amplitude of light reflected from an object relative to the first and second reference points, respectively, wherein each first and second reflectance value corresponds to a different point in time. The plurality of first and second reflectance values are compared to identify a plurality of ratio values between the first and second reflectance values, wherein each of the plurality of ratio values corresponds to one of the points in time. At least one of a position and a direction of movement of the object relative to the first and second reference points is determined based on the identified plurality of ratio values.
    Type: Grant
    Filed: September 30, 2009
    Date of Patent: January 29, 2013
    Assignee: Silicon Laboratories Inc.
    Inventors: Stephen C. Gerber, Wayne T. Holcombe, Miroslav Svajda
  • Publication number: 20120001841
    Abstract: A method for determining an ambient light type is described. The method includes receiving measurement information from multiple photodetectors configured for different light spectra, calculating a color ratio using the measurement information, obtaining a correction value using the color ratio, applying the correction value to at least one of the first and second measurement information to obtain a photopic illuminance value, and determining an ambient light type using the photopic illumination value and the color ratio.
    Type: Application
    Filed: June 30, 2010
    Publication date: January 5, 2012
    Inventors: JEFF GOKINGCO, WAYNE T. HOLCOMBE, MIROSLAV SVAJDA
  • Patent number: 8041227
    Abstract: A communication device is disclosed having optical and near-field communication capability. The device includes an optical transceiver circuit fabricated on an integrated circuit die and configured to transmit and receive far field signals. A near field transceiver circuit is also fabricated on the integrated circuit die and is configured to transmit and receive near-field electro-magnetic signals. Control circuitry is provided to selectively enable the optical transceiver circuit and the near field transceiver circuit responsive to an external control signal.
    Type: Grant
    Filed: November 15, 2007
    Date of Patent: October 18, 2011
    Assignee: Silicon Laboratories Inc.
    Inventors: Wayne T. Holcombe, Pavel Konecny, Miroslav Svajda, Jean-Luc Nauleau, Robert Gordon Farmer
  • Publication number: 20110248151
    Abstract: A system includes a plurality of photo detectors, which generate signals proportional to incident light. The system further includes an optical barrier adjacent to a surface and includes a control circuit. The optical barrier partially obstructs reflected light from reaching the plurality of photo detectors to produce a spatially dependent reflectance pattern that is dependent on a position of an object relative to a substrate. The control circuit determines a position of the object during a reflectance measurement cycle using each of the plurality of photo detectors by calibrating to ambient light conditions, measuring ambient plus reflected light, determining the reflected light and detecting the position of the object based on a ratio of the reflected light received by at least two of the plurality of photo detectors.
    Type: Application
    Filed: November 17, 2010
    Publication date: October 13, 2011
    Inventors: Wayne T. Holcombe, Miroslav Svajda
  • Publication number: 20110248194
    Abstract: Systems and methods for advanced monitoring and control using an LED driver in an optical processor are described. In an embodiment, a monitoring and control circuit may include a light-emitting diode (LED) driver including a control input, an output, and a node, wherein the output is coupled to an LED. The circuit may also include a multiplexer coupled to the node of the LED driver, an analog-to-digital converter coupled to the multiplexer, and a controller coupled to the analog-to-digital converter and to the control input of the LED driver, wherein the LED driver is coupled to drive the output with a first voltage supply that is independent from a second voltage supply that is coupled to drive the controller.
    Type: Application
    Filed: November 10, 2010
    Publication date: October 13, 2011
    Inventors: Miroslav Svajda, Wayne T. Holcombe
  • Publication number: 20110248170
    Abstract: In one embodiment, a method includes receiving outputs from multiple photodetectors, calculating a first ratio between first and second such outputs, calculating a second ratio between the first output and a difference corresponding to a flicker noise component obtained from the second output, and determining a contribution from multiple illumination types based at least in part on the first and second ratios. The method may also include obtaining multiple correction coefficients based at least in part on the determined contribution, and in turn determining an ambient light type present in proximity to the photodetectors using the correction coefficients and the first and second outputs.
    Type: Application
    Filed: September 30, 2010
    Publication date: October 13, 2011
    Inventors: WAYNE T. HOLCOMBE, Miroslav Svajda
  • Publication number: 20110248152
    Abstract: An apparatus includes a housing having a front surface, a rear surface, and at least one sidewall therebetween and a plurality of optical windows formed in the housing to allow light to pass through from multiple directions. The apparatus further includes a plurality of photo detectors to generate electrical signals based on received light, where each of the plurality of photo detectors is disposed within a respective one of the plurality of optical windows. The apparatus also includes a control circuit coupled to the plurality of photo detectors to receive the electrical signals, determine light variations from the electrical signals, and determine a change in position of an object based on variation ratios of the light variations received by at least one pair of photo detectors within the plurality of photo detectors in response to determining the light variations.
    Type: Application
    Filed: December 21, 2010
    Publication date: October 13, 2011
    Applicant: SILICON LABORATORIES, INC.
    Inventors: Miroslav Svajda, Wayne T. Holcombe