Patents by Inventor David H. Chambers
David H. Chambers 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).
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Publication number: 20230286158Abstract: A system for generating a machine learning system to generate guidance information based on locations of objects is provided. The system accesses training data that includes training time-of-arrival (“TOA”) information of looks and guidance information for each look. The guidance information is based on a training collection of object locations. The TOA of a look represents, for each object location of a training collection of object locations, times between signals transmitted by transmitters and return signals received by receivers. The return signals represent signals reflected from an object at the object location. The system trains a machine learning system using the training data wherein the machine learning system inputs TOA information and outputs guidance information.Type: ApplicationFiled: May 12, 2023Publication date: September 14, 2023Inventors: N. Reginald Beer, David H. Chambers, Jeffrey Edward Mast
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Patent number: 11685050Abstract: A system for generating a machine learning system to generate guidance information based on locations of objects is provided. The system accesses training data that includes training time-of-arrival (“TOA”) information of looks and guidance information for each look. The guidance information is based on a training collection of object locations. The TOA of a look represents, for each object location of a training collection of object locations, times between signals transmitted by transmitters and return signals received by receivers. The return signals represent signals reflected from an object at the object location. The system trains a machine learning system using the training data wherein the machine learning system inputs TOA information and outputs guidance information.Type: GrantFiled: November 27, 2019Date of Patent: June 27, 2023Assignee: LAWRENCE LIVERMORE NATIONAL SECURITY, LLCInventors: N. Reginald Beer, David H. Chambers, Jeffrey Edward Mast
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Publication number: 20210157337Abstract: A system for generating a machine learning system to generate guidance information based on locations of objects is provided. The system accesses training data that includes training time-of-arrival (“TOA”) information of looks and guidance information for each look. The guidance information is based on a training collection of object locations. The TOA of a look represents, for each object location of a training collection of object locations, times between signals transmitted by transmitters and return signals received by receivers. The return signals represent signals reflected from an object at the object location. The system trains a machine learning system using the training data wherein the machine learning system inputs TOA information and outputs guidance information.Type: ApplicationFiled: November 27, 2019Publication date: May 27, 2021Inventors: N. Reginald Beer, David H. Chambers, Jeffrey Edward Mast
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Patent number: 8854248Abstract: A method and system for detecting the presence of subsurface objects within a medium is provided. In some embodiments, the imaging and detection system operates in a multistatic mode to collect radar return signals generated by an array of transceiver antenna pairs that is positioned across the surface and that travels down the surface. The imaging and detection system pre-processes the return signal to suppress certain undesirable effects. The imaging and detection system then generates synthetic aperture radar images from real aperture radar images generated from the pre-processed return signal. The imaging and detection system then post-processes the synthetic aperture radar images to improve detection of subsurface objects. The imaging and detection system identifies peaks in the energy levels of the post-processed image frame, which indicates the presence of a subsurface object.Type: GrantFiled: August 26, 2011Date of Patent: October 7, 2014Assignee: Lawrence Livermore National Security, LLCInventors: David W. Paglieroni, N. Reginald Beer, Steven W. Bond, Philip L. Top, David H. Chambers, Jeffrey E. Mast, John G. Donetti, Blake C. Mason, Steven M. Jones
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Patent number: 8766845Abstract: A method and system for detecting the presence of subsurface objects within a medium is provided. In some embodiments, the detection system operates in a multistatic mode to collect radar return signals generated by an array of transceiver antenna pairs that is positioned across a surface and that travels down the surface. The detection system converts the return signals from a time domain to a frequency domain, resulting in frequency return signals. The detection system then performs a singular value decomposition for each frequency to identify singular values for each frequency. The detection system then detects the presence of a subsurface object based on a comparison of the identified singular values to expected singular values when no subsurface object is present.Type: GrantFiled: December 7, 2011Date of Patent: July 1, 2014Assignee: Lawrence Livermore National Security, LLCInventors: Aaron T. Hallquist, David H. Chambers
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Patent number: 8717223Abstract: The classification system represents a detected object with a feature vector derived from the return signals acquired by an array of N transceivers operating in multistatic mode. The classification system generates the feature vector by transforming the real-valued return signals into complex-valued spectra, using, for example, a Fast Fourier Transform. The classification system then generates a feature vector of singular values for each user-designated spectral sub-band by applying a singular value decomposition (SVD) to the N×N square complex-valued matrix formed from sub-band samples associated with all possible transmitter-receiver pairs. The resulting feature vector of singular values may be transformed into a feature vector of singular value likelihoods and then subjected to a multi-category linear or neural network classifier for object classification.Type: GrantFiled: August 26, 2011Date of Patent: May 6, 2014Assignee: Lawrence Livermore National Security, LLCInventors: David H. Chambers, David W. Paglieroni
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Patent number: 8711028Abstract: A method and system for detecting the presence of subsurface objects within a medium is provided. In some embodiments, the imaging and detection system operates in a multistatic mode to collect radar return signals generated by an array of transceiver antenna pairs that is positioned across the surface and that travels down the surface. The imaging and detection system pre-processes the return signal to suppress certain undesirable effects. The imaging and detection system then generates synthetic aperture radar images from real aperture radar images generated from the pre-processed return signal. The imaging and detection system then post-processes the synthetic aperture radar images to improve detection of subsurface objects. The imaging and detection system identifies peaks in the energy levels of the post-processed image frame, which indicates the presence of a subsurface object.Type: GrantFiled: August 26, 2011Date of Patent: April 29, 2014Assignee: Lawrence Livermore National Security, LLCInventors: David W. Paglieroni, David H. Chambers, Steven W. Bond, N. Reginald Beer
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Patent number: 8676744Abstract: A distributed sequential method and system for detecting and identifying radioactive contraband from highly uncertain (noisy) low-count, radionuclide measurements, i.e. an event mode sequence (EMS), using a statistical approach based on Bayesian inference and physics-model-based signal processing based on the representation of a radionuclide as a monoenergetic decomposition of monoenergetic sources. For a given photon event of the EMS, the appropriate monoenergy processing channel is determined using a confidence interval condition-based discriminator for the energy amplitude and interarrival time and parameter estimates are used to update a measured probability density function estimate for a target radionuclide.Type: GrantFiled: October 27, 2008Date of Patent: March 18, 2014Assignee: Lawrence Livermore National Security, LLCInventors: James V. Candy, Michael C. Axelrod, Eric F. Breitfeller, David H. Chambers, Brian L. Guidry, Douglas R. Manatt, Alan W. Meyer, Kenneth E. Sale
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Patent number: 8659467Abstract: A method and system for detecting the presence of subsurface objects within a medium is provided. In some embodiments, the imaging and detection system operates in a multistatic mode to collect radar return signals generated by an array of transceiver antenna pairs that is positioned across the surface and that travels down the surface. The imaging and detection system pre-processes the return signal to suppress certain undesirable effects. The imaging and detection system then generates synthetic aperture radar images from real aperture radar images generated from the pre-processed return signal. The imaging and detection system then post-processes the synthetic aperture radar images to improve detection of subsurface objects. The imaging and detection system identifies peaks in the energy levels of the post-processed image frame, which indicates the presence of a subsurface object.Type: GrantFiled: August 26, 2011Date of Patent: February 25, 2014Assignee: Lawrence Livermore National Security, LLCInventors: David H. Chambers, Jeffrey E. Mast, David W. Paglieroni
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Patent number: 8482452Abstract: A method and system for detecting the presence of subsurface objects within a medium is provided. In some embodiments, the imaging and detection system operates in a multistatic mode to collect radar return signals generated by an array of transceiver antenna pairs that is positioned across the surface and that travels down the surface. The imaging and detection system pre-processes the return signal to suppress certain undesirable effects. The imaging and detection system then generates synthetic aperture radar images from real aperture radar images generated from the pre-processed return signal. The imaging and detection system then post-processes the synthetic aperture radar images to improve detection of subsurface objects. The imaging and detection system identifies peaks in the energy levels of the post-processed image frame, which indicates the presence of a subsurface object.Type: GrantFiled: August 26, 2011Date of Patent: July 9, 2013Assignee: Lawrence Livermore National Security, LLCInventors: David H. Chambers, Jeffrey E. Mast, David W. Paglieroni, N. Reginald Beer
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Publication number: 20130120181Abstract: A method and system for detecting the presence of subsurface objects within a medium is provided. In some embodiments, the detection system operates in a multistatic mode to collect radar return signals generated by an array of transceiver antenna pairs that is positioned across a surface and that travels down the surface. The detection system converts the return signals from a time domain to a frequency domain, resulting in frequency return signals. The detection system then performs a singular value decomposition for each frequency to identify singular values for each frequency. The detection system then detects the presence of a subsurface object based on a comparison of the identified singular values to expected singular values when no subsurface object is present.Type: ApplicationFiled: December 7, 2011Publication date: May 16, 2013Applicant: Lawrence Livermore National Security, LLCInventors: Aaron T. Hallquist, David H. Chambers
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Publication number: 20130082860Abstract: A method and system for detecting the presence of subsurface objects within a medium is provided. In some embodiments, the imaging and detection system operates in a multistatic mode to collect radar return signals generated by an array of transceiver antenna pairs that is positioned across the surface and that travels down the surface. The imaging and detection system pre-processes the return signal to suppress certain undesirable effects. The imaging and detection system then generates synthetic aperture radar images from real aperture radar images generated from the pre-processed return signal. The imaging and detection system then post-processes the synthetic aperture radar images to improve detection of subsurface objects. The imaging and detection system identifies peaks in the energy levels of the post-processed image frame, which indicates the presence of a subsurface object.Type: ApplicationFiled: August 26, 2011Publication date: April 4, 2013Inventors: David W. Paglieroni, David H. Chambers, Steven W. Bond, N. Reginald Beer
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Publication number: 20130082856Abstract: A method and system for detecting the presence of subsurface objects within a medium is provided. In some embodiments, the imaging and detection system operates in a multistatic mode to collect radar return signals generated by an array of transceiver antenna pairs that is positioned across the surface and that travels down the surface. The imaging and detection system pre-processes the return signal to suppress certain undesirable effects. The imaging and detection system then generates synthetic aperture radar images from real aperture radar images generated from the pre-processed return signal. The imaging and detection system then post-processes the synthetic aperture radar images to improve detection of subsurface objects. The imaging and detection system identifies peaks in the energy levels of the post-processed image frame, which indicates the presence of a subsurface object.Type: ApplicationFiled: August 26, 2011Publication date: April 4, 2013Inventors: David W. Paglieroni, N. Reginald Beer, Steven W. Bond, Philip L. Top, David H. Chambers, Jeffrey E. Mast, John G. Donetti, Blake C. Mason, Steven M. Jones
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Publication number: 20130082870Abstract: A method and system for detecting the presence of subsurface objects within a medium is provided. In some embodiments, the imaging and detection system operates in a multistatic mode to collect radar return signals generated by an array of transceiver antenna pairs that is positioned across the surface and that travels down the surface. The imaging and detection system pre-processes the return signal to suppress certain undesirable effects. The imaging and detection system then generates synthetic aperture radar images from real aperture radar images generated from the pre-processed return signal. The imaging and detection system then post-processes the synthetic aperture radar images to improve detection of subsurface objects. The imaging and detection system identifies peaks in the energy levels of the post-processed image frame, which indicates the presence of a subsurface object.Type: ApplicationFiled: August 26, 2011Publication date: April 4, 2013Inventors: David H. Chambers, Jeffrey E. Mast, David W. Paglieroni, N. Reginald Beer
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Publication number: 20130082858Abstract: The classification system represents a detected object with a feature vector derived from the return signals acquired by an array of N transceivers operating in multistatic mode. The classification system generates the feature vector by transforming the real-valued return signals into complex-valued spectra, using, for example, a Fast Fourier Transform. The classification system then generates a feature vector of singular values for each user-designated spectral sub-band by applying a singular value decomposition (SVD) to the N×N square complex-valued matrix formed from sub-band samples associated with all possible transmitter-receiver pairs. The resulting feature vector of singular values may be transformed into a feature vector of singular value likelihoods and then subjected to a multi-category linear or neural network classifier for object classification.Type: ApplicationFiled: August 26, 2011Publication date: April 4, 2013Inventors: David H. Chambers, David W. Paglieroni
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Publication number: 20100060509Abstract: A model-based approach to estimating wall positions for a building is developed and tested using simulated data. It borrows two techniques from geophysical inversion problems, layer stripping and stacking, and combines them with a model-based estimation algorithm that minimizes the mean-square error between the predicted signal and the data. The technique is designed to process multiple looks from an ultra wideband radar array. The processed signal is time-gated and each section processed to detect the presence of a wall and estimate its position, thickness, and material parameters. The floor plan of a building is determined by moving the array around the outside of the building. In this paper we describe how the stacking and layer stripping algorithms are combined and show the results from a simple numerical example of three parallel walls.Type: ApplicationFiled: September 11, 2009Publication date: March 11, 2010Applicant: Lawrence Livermore National Security, LLCInventors: David H. Chambers, Sean K. Lehman, Dennis M. Goodman
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Publication number: 20100030721Abstract: A distributed sequential method and system for detecting and identifying radioactive contraband from highly uncertain (noisy) low-count, radionuclide measurements, i.e. an event mode sequence (EMS), using a statistical approach based on Bayesian inference and physics-model-based signal processing based on the representation of a radionuclide as a monoenergetic decomposition of monoenergetic sources. For a given photon event of the EMS, the appropriate monoenergy processing channel is determined using a confidence interval condition-based discriminator for the energy amplitude and interarrival time. If accepted the parameter values of the photon event are used to update the parameter values using an LKF for the energy amplitude and a bootstrap PF for the interarrival times. These parameter estimates are then used to update a measured probability density function estimate for a target radionuclide.Type: ApplicationFiled: October 27, 2008Publication date: February 4, 2010Inventors: James V. Candy, Michael C. Axelrod, Eric F. Breitfeller, David H. Chambers, Brian L. Guidry, Douglas R. Manatt, Alan W. Meyer, Kenneth E. Sale
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Patent number: 7463690Abstract: A communication system for transmitting a signal through a channel medium comprising digitizing the signal, time-reversing the digitized signal, and transmitting the signal through the channel medium. In one embodiment a transmitter is adapted to transmit the signal, a multiplicity of receivers are adapted to receive the signal, a digitizer digitizes the signal, and a time-reversal signal processor is adapted to time-reverse the digitized signal. An embodiment of the present invention includes multi bit implementations. Another embodiment of the present invention includes 1-bit implementations. Another embodiment of the present invention includes a multiplicity of receivers used in the step of transmitting the signal through the channel medium.Type: GrantFiled: November 10, 2005Date of Patent: December 9, 2008Assignee: Lawrence Livermore National Security, LLCInventors: James V. Candy, David H. Chambers, Brian L. Guidry, Andrew J. Poggio, Christopher L. Robbins
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Patent number: 6984210Abstract: A method and apparatus are provided for investigating tissue in which acoustic data are derived from scattering a plurality of pulsed spherical or cylindrical acoustic waves from a plurality of transmission elements through the tissue to a plurality of receiving elements. The acoustic data, which include a mix of reflected and transmitted acoustic waves, are received and digitized, and a representation of a portion of the tissue is generated from the digitized acoustic data.Type: GrantFiled: December 18, 2002Date of Patent: January 10, 2006Assignee: Barbara Ann Karmanos Cancer InstituteInventors: David H. Chambers, Jeffrey Mast, Stephen G. Azevedo, Frank Wuebbeling, Frank Natterer, Neb Duric, Peter J. Littrup, Earle Holsapple
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Publication number: 20040167396Abstract: A quantitative imaging method and system for surrounding a target region with a plurality of transducers such that an acoustic pulse transmitted from one of the transducers may be received as pulse-derived temporal data at the receiving transducers. A controller operably connects to the transducers for selecting different transmission locations around the target region from where acoustic pulses may be transmitted. A signal processor connected to the transducers operates to remove from the received pulse-derived data of each receiving transducer a record of the pulse directly transmitted to the receiving transducer. And the pulse-derived temporal data modified in this manner is used by the data processor to determine preliminary values for a compressibility term and a density term for each point of the target region.Type: ApplicationFiled: February 25, 2003Publication date: August 26, 2004Applicant: The Regents of the University of CaliforniaInventors: David H. Chambers, Stephen Gerard Azevedo, Jeffrey Mast