Patents by Inventor J. Walton

J. Walton 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: 7445211
    Abstract: A wall decoration and game apparatus that is convertible between a display mode for hanging on a wall and a game playing mode for playing a board game such as cribbage. The apparatus includes a mounting panel and a game board. The game board is releasably attachable to the mounting panel. The game board has a display side and a game playing side. The display side of the game board has a likeness of an animal such as a fish. In a display mode the game board is releasably attached to the mounting panel with the display side facing out and the mounting panel is hung on a wall. In game playing mode the game board is detached from the mounting panel. Legs are attached to the mounting panel and it becomes a stand for the game board with the game playing surface facing up. In the embodiment shown the game board is a cribbage game board and has a peg hole array for a cribbage game. The mounting panel has an open storage compartment that is covered by the game board in the display mode.
    Type: Grant
    Filed: February 8, 2006
    Date of Patent: November 4, 2008
    Inventor: Daniel J. Walton
  • Publication number: 20080249135
    Abstract: The invention provides novel compounds useful for the treatment of neurodegenerative disorders including Alzheimer's disease and dementia. The compounds have a substituents chosen from -L-C(?O)OH, -L-CH?CHC(?O)OH, -L-C(?O)NH2, -L-C(?O)NH(C1-3 alkyl), -L-C(?O)N(C1-3 alkyl)2, -L-S(?O)2(C1-3alkyl), -L-S(?O)2NH2, -L-S(?O)2N(C1-3 alkyl)2, -L-S(?O)2NH(C1-3 alkyl), -L-C(?O)NHOH, -L-C(?O)CH2NH2, -L-C(?O)CH2OH, -L-C(?O)CH2SH, -L-C(?O)NHCN, -L-NHC(?O)ORo, -L-C(?O)NHRo, -L-NH(C?O)NHRo, -L-C(?O)N(Ro)2, -L-NH(C?O)N(Ro)2, -L-sulfo, -L-(2,6 difluorophenol), -L-phosphono, and -L-tetrazolyl, where L is a linker.
    Type: Application
    Filed: April 4, 2007
    Publication date: October 9, 2008
    Applicant: Myriad Genetics, Incorporated
    Inventors: Rachel Slade, Yevgeniya Klimova, Robert J. Halter, Ashantai J. Yungai, Warren S. Weiner, Ruth J. Walton, Jon Adam Willardsen, Mark B. Anderson, Kenton Zavitz
  • Publication number: 20080249158
    Abstract: Novel pyrrole derivatives are disclosed as A?42-lowering agents for the treatment and prevention of neurodegenerative disorders characterized by the formation or accumulation of amyloid plaques comprising the A?42 peptide.
    Type: Application
    Filed: March 27, 2008
    Publication date: October 9, 2008
    Applicant: Myriad Genetics, Incorporated
    Inventors: Warren S. Weiner, Rachel M. Slade, Yevgeniya I. Klimova, Ruth J. Walton, Mark B. Anderson
  • Patent number: 7400377
    Abstract: A display is provided for providing a restricted viewing mode, for example a private viewing mode where the display may be viewed from a limited region of space by a single viewer and not by other people outside the viewing region. The display comprises a source of polarised light and an output polariser. Between these are provided a controllable pixellated spatial polarisation modulating layer, for example of the liquid crystal type. Also, a polarisation modifying layer is provided between the polarisers and is spaced from the modulating layer. The modifying later comprises a plurality of sets of regions with the regions of each set having the same polarisation modifying effect and the regions of different sets having different polarisation modifying effects. The light path between the modulating layer and the modifying layer is polariser-free.
    Type: Grant
    Filed: December 7, 2005
    Date of Patent: July 15, 2008
    Assignee: Sharp Kabushiki Kaisha
    Inventors: Allan Evans, Martin D. Tillin, Emma J. Walton
  • Publication number: 20080049857
    Abstract: Techniques for detecting and demodulating data transmissions in wireless communication systems are presented. In one aspect, a decision-directed detector detects for data transmissions in a received signal by utilizing received data symbols as well as received pilot symbols. The decision-directed detector may be designed to perform differential detection in the frequency domain or coherent detection in the time domain, and may be used with multi-carrier modulation (e.g., OFDM). In another aspect, an adaptive threshold is used to perform detection of received data transmissions. A threshold may be determined for each data transmission hypothesized to have been received. The threshold may be computed, for example, based on the signal plus noise energy of the hypothesized data transmission.
    Type: Application
    Filed: October 31, 2007
    Publication date: February 28, 2008
    Applicant: QUALCOMM Incorporated
    Inventors: J. Walton, Mark Wallace
  • Publication number: 20080045153
    Abstract: Techniques for quickly sending feedback information for beamforming are described. A transmitter/initiator sends a first frame comprising training symbols. A receiver/responder receives the first frame, determines the amount of time to generate feedback information, and determines the amount of time to send the feedback information. The receiver then determines the length of a second frame carrying the feedback information based on the amounts of time to generate and send the feedback information. The receiver sends the second frame after waiting a short interframe space (SIFS) period from the end of the first frame, without performing channel access. The receiver generates the feedback information based on the training symbols and sends the information in the second frame when ready. The transmitter receives the second frame, derives at least one steering matrix based on the feedback information, and sends a third frame with the at least one steering matrix.
    Type: Application
    Filed: May 25, 2007
    Publication date: February 21, 2008
    Applicant: QUALCOMM Incorporated
    Inventors: Shravan Surineni, J. Walton, Mark Wallace, Steven Howard
  • Publication number: 20080037681
    Abstract: An uplink channel response matrix is obtained for each terminal and decomposed to obtain a steering vector used by the terminal to transmit on the uplink. An “effective” uplink channel response vector is formed for each terminal based on its steering vector and its channel response matrix. Multiple sets of terminals are evaluated based on their effective channel response vectors to determine the best set (e.g., with highest overall throughput) for uplink transmission. Each selected terminal performs spatial processing on its data symbol stream with its steering vector and transmits its spatially processed data symbol stream to an access point. The multiple selected terminals simultaneously transmit their data symbol streams via their respective MIMO channels to the access point. The access point performs receiver spatial processing on its received symbol streams in accordance with a receiver spatial processing technique to recover the data symbol streams transmitted by the selected terminals.
    Type: Application
    Filed: October 9, 2007
    Publication date: February 14, 2008
    Applicant: QUALCOMM INCORPORATED
    Inventors: J. Walton, John Ketchum, John Smee, Mark Wallace, Steven Howard
  • Publication number: 20080025444
    Abstract: An uplink channel response matrix is obtained for each terminal and decomposed to obtain a steering vector used by the terminal to transmit on the uplink. An “effective” uplink channel response vector is formed for each terminal based on its steering vector and its channel response matrix. Multiple sets of terminals are evaluated based on their effective channel response vectors to determine the best set (e.g., with highest overall throughput) for uplink transmission. Each selected terminal performs spatial processing on its data symbol stream with its steering vector and transmits its spatially processed data symbol stream to an access point. The multiple selected terminals simultaneously transmit their data symbol streams via their respective MIMO channels to the access point. The access point performs receiver spatial processing on its received symbol streams in accordance with a receiver spatial processing technique to recover the data symbol streams transmitted by the selected terminals.
    Type: Application
    Filed: October 9, 2007
    Publication date: January 31, 2008
    Applicant: QUALCOMM Incorporated
    Inventors: J. Walton, John Ketchum, John Smee, Mark Wallace, Steven Howard
  • Publication number: 20080025425
    Abstract: An uplink channel response matrix is obtained for each terminal and decomposed to obtain a steering vector used by the terminal to transmit on the uplink. An “effective” uplink channel response vector is formed for each terminal based on its steering vector and its channel response matrix. Multiple sets of terminals are evaluated based on their effective channel response vectors to determine the best set (e.g., with highest overall throughput) for uplink transmission. Each selected terminal performs spatial processing on its data symbol stream with its steering vector and transmits its spatially processed data symbol stream to an access point. The multiple selected terminals simultaneously transmit their data symbol streams via their respective MIMO channels to the access point. The access point performs receiver spatial processing on its received symbol streams in accordance with a receiver spatial processing technique to recover the data symbol streams transmitted by the selected terminals.
    Type: Application
    Filed: October 9, 2007
    Publication date: January 31, 2008
    Applicant: QUALCOMM INCORPORATED
    Inventors: J. Walton, John Ketchum, John Smee, Mark Wallace, Steven Howard
  • Publication number: 20080002794
    Abstract: Techniques for performing acquisition of packets are described. First detection values may be determined based on a first plurality of samples, e.g., by performing delay-multiply-integrate on the samples. Power values may be determined based on the first plurality of samples, e.g., by performing multiply-integrate on the samples. The first detection values may be averaged to obtain average detection values. The power values may also be averaged to obtain average power values. Whether a packet is presence may be determined based on the average detection values and the average power values. Second detection values may be determined based on a second plurality of samples. The start of the packet may be determined based on the first and second detection values. A third detection value may be determined based on a third plurality of samples. Frequency error of the packet may be estimated based on the first and third detection values.
    Type: Application
    Filed: May 18, 2007
    Publication date: January 3, 2008
    Applicant: QUALCOMM Incorporated
    Inventors: Mark Wallace, John Ketchum, J. Walton, Steven Howard
  • Publication number: 20070276592
    Abstract: A method of capturing deep mapping information regarding points of interest includes capturing the location of the point of interest and adding the location to a deep mapping information record, entering specifics regarding the points of interest into the deep mapping information record, marking the deep mapping information record as inactive, verifying the deep mapping information, marking the deep mapping information record as active and then allowing users to search only the active deep mapping information records.
    Type: Application
    Filed: May 26, 2006
    Publication date: November 29, 2007
    Inventors: Gregory P. Johnson, Kevin M. Brown, Brian J. Walton
  • Publication number: 20070268181
    Abstract: Techniques for efficiently deriving a transmit steering matrix and sending feedback for this matrix are described. A receiver determines a set of parameters defining a transmit steering matrix to be used for transmission from a transmitter to the receiver. The receiver may derive the transmit steering matrix based on a set of transformation matrices, which may be used for multiple iterations of Jacobi rotation to zero out off-diagonal elements of a channel matrix. The receiver may then determine the set of parameters based on the transformation matrices. The set of parameters may comprise at least one angle, at least one value, at least one index, etc., for each transformation matrix. The receiver sends the set of parameters defining the transmit steering matrix (instead of elements of the transmit steering matrix) to the transmitter for use by the transmitter to derive the transmit steering matrix.
    Type: Application
    Filed: May 17, 2007
    Publication date: November 22, 2007
    Applicant: QUALCOMM Incorporated
    Inventors: Steven Howard, John Ketchum, Mark Wallace, J. Walton
  • Publication number: 20070086536
    Abstract: Channel estimation and spatial processing for a TDD MIMO system. Calibration may be performed to account for differences in the responses of transmit/receive chains at the access point and user terminal. During normal operation, a MIMO pilot is transmitted on a first link and used to derive an estimate of the first link channel response, which is decomposed to obtain a diagonal matrix of singular values and a first unitary matrix containing both left eigenvectors of the first link and right eigenvectors of a second link. A steered reference is transmitted on the second link using the eigenvectors in the first unitary matrix, and is processed to obtain the diagonal matrix and a second unitary matrix containing both left eigenvectors of the second link and right eigenvectors of the first link. Each unitary matrix may be used to perform spatial processing for data transmission/reception via both links.
    Type: Application
    Filed: December 13, 2006
    Publication date: April 19, 2007
    Applicant: QUALCOMM, INCORPORATED
    Inventors: John Ketchum, Mark Wallace, J. Walton, Steven Howard
  • Publication number: 20060274844
    Abstract: Frequency-independent eigensteering in MISO and MIMO systems are described. For principal mode and multi-mode eigensteering, a correlation matrix is computed for a MIMO channel based on channel response matrices and decomposed to obtain NS frequency-independent steering vectors for NS spatial channels of the MIMO channel. ND data symbol streams are transmitted on ND best spatial channels using ND steering vectors, where ND=1 for principal mode eigensteering and ND>1 for multi-mode eigensteering. For main path eigensteering, a data symbol stream is transmitted on the best spatial channel for the main propagation path (e.g., with the highest energy) of the MIMO channel. For receiver eigensteering, a data symbol stream is steered toward a receive antenna based on a steering vector obtained for that receive antenna. For all eigensteering schemes, a matched filter is derived for each receive antenna based on the steering vector(s) and channel response vectors for the receive antenna.
    Type: Application
    Filed: June 19, 2006
    Publication date: December 7, 2006
    Inventors: J. Walton, John Ketchum, Mark Wallace, Steven Howard
  • Publication number: 20060039275
    Abstract: For transmit diversity in a multi-antenna OFDM system, a transmitter encodes, interleaves, and symbol maps traffic data to obtain data symbols. The transmitter processes each pair of data symbols to obtain two pairs of transmit symbols for transmission from a pair of antennas either (1) in two OFDM symbol periods for space-time transmit diversity or (2) on two subbands for space-frequency transmit diversity. NT·(NT?1) 2 different antenna pairs are used for data transmission, with different antenna pairs being used for adjacent subbands, where NT is the number of antennas. The system may support multiple OFDM symbol sizes. The same coding, interleaving, and modulation schemes are used for different OFDM symbol sizes to simplify the transmitter and receiver processing. The transmitter performs OFDM modulation on the transmit symbol stream for each antenna in accordance with the selected OFDM symbol size. The receiver performs the complementary processing.
    Type: Application
    Filed: October 13, 2005
    Publication date: February 23, 2006
    Inventors: J. Walton, John Ketchum, Mark Wallace, Steven Howard
  • Patent number: 6987982
    Abstract: A mobile station accesses a base station by randomly selecting a first reverse link common control channel from a set of random access channels. The mobile station transmits a request portion of an access probe over the first reverse link common control channel. The request portion is subject to collision with other signals. The request portion comprises a hash identification which is derived from a uniquely identifying number using a hash function. The hash identification quasi-uniquely identifies the mobile station. The mobile station receives a channel assignment message from the base station designating the hash identification and a reserved access channel. The reserved access channel provides communication with a low probability of contention. The mobile station transmits a message portion of the access probe over the reserved access channel.
    Type: Grant
    Filed: June 22, 2004
    Date of Patent: January 17, 2006
    Assignee: QUALCOMM, Incorporated
    Inventors: Serge Willenegger, Rod J. Walton, Vieri Vanghi
  • Publication number: 20050237920
    Abstract: A matrix {circumflex over (V)} of eigenvectors is derived using an iterative procedure. For the procedure, an eigenmode matrix Vi is first initialized, e.g., to an identity matrix. The eigenmode matrix Vi is then updated based on a channel response matrix {circumflex over (H)} for a MIMO channel to obtain an updated eigenmode matrix Vi+1. The eigenmode matrix may be updated for a fixed or variable number of iterations. The columns of the updated eigenmode matrix may be orthogonalized periodically to improve performance and ensure stability of the iterative procedure. In one embodiment, after completion of all iterations, the updated eigenmode matrix for the last iteration is provided as the matrix {circumflex over (V)}.
    Type: Application
    Filed: April 22, 2004
    Publication date: October 27, 2005
    Inventors: Steven Howard, John Ketchum, Mark Wallace, Peter Monsen, J. Walton
  • Publication number: 20050195733
    Abstract: A multi-antenna transmitting entity transmits data to a single- or multi-antenna receiving entity using (1) a steered mode to direct the data transmission toward the receiving entity or (2) a pseudo-random transmit steering (PRTS) mode to randomize the effective channels observed by the data transmission across the subbands. The PRTS mode may be used to achieve transmit diversity or spatial spreading. For transmit diversity, the transmitting entity uses different pseudo-random steering vectors across the subbands but the same steering vector across a packet for each subband. The receiving entity does not need to have knowledge of the pseudo-random steering vectors or perform any special processing. For spatial spreading, the transmitting entity uses different pseudo-random steering vectors across the subbands and different steering vectors across the packet for each subband. Only the transmitting and receiving entities know the steering vectors used for data transmission.
    Type: Application
    Filed: March 5, 2004
    Publication date: September 8, 2005
    Inventors: J. Walton, John Ketchum, Mark Wallace, Steven Howard, Sanjiv Nanda
  • Publication number: 20050185728
    Abstract: The downlink and uplink are calibrated to account for differences in the responses of transmit and receive chains at an access point and a user terminal. For initial calibration, the access point and user terminal transmit MIMO pilots on the downlink and uplink, which are used to derive channel estimates including the responses of the applicable transmit/receive chains. Correction matrices {circumflex over (K)}ap and {circumflex over (K)}ut are derived based on these channel estimates and thereafter used by the access point and user terminal, respectively. For follow-on calibration, one entity transmits a MIMO pilot and a steered reference. The other entity derives a first transmit matrix based on the steered reference and a second transmit matrix based on the MIMO pilot and calibration error matrices Qap and Qut, which contain estimates of the errors in {circumflex over (K)}ap and {circumflex over (K)}ut, respectively.
    Type: Application
    Filed: February 19, 2004
    Publication date: August 25, 2005
    Inventors: Mark Wallace, John Ketchum, J. Walton, Steven Howard
  • Publication number: 20050180312
    Abstract: A multi-antenna transmitting entity transmits data to a single- or multi-antenna receiving entity using (1) a steered mode to direct the data transmission toward the receiving entity or (2) a pseudo-random transmit steering (PRTS) mode to randomize the effective channels observed by the data transmission across the subbands. The PRTS mode may be used to achieve transmit diversity or spatial spreading. For transmit diversity, the transmitting entity uses different pseudo-random steering vectors across the subbands but the same steering vector across an entire packet for each subband. The receiving entity does not need to have knowledge of the pseudo-random steering vectors or perform any special processing. For spatial spreading, the transmitting entity uses different pseudo-random steering vectors across the subbands and different steering vectors across the packet for each subband. Only the transmitting and receiving entities know the steering vectors used for data transmission.
    Type: Application
    Filed: February 18, 2004
    Publication date: August 18, 2005
    Inventors: J. Walton, John Ketchum, Mark Wallace, Steven Howard, Sanjiv Nanda