Patents by Inventor June Chul Roh

June Chul Roh 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: 20160219558
    Abstract: A method of operating a wireless communication system is disclosed. The method includes receiving allocation information for a plurality of second wireless transceivers from a first wireless transceiver by one of the second wireless transceivers on a physical broadcast channel (PBCH). The one of the second wireless transceivers decodes the allocation information for the plurality of second wireless transceivers.
    Type: Application
    Filed: August 4, 2015
    Publication date: July 28, 2016
    Applicant: TEXAS INSTRUMENTS INCORPORATED
    Inventors: PIERRE BERTRAND, JUNE CHUL ROH, JUN YAO
  • Publication number: 20160218905
    Abstract: A method of operating a wireless communication system is disclosed. The method includes receiving first and second parallel data streams. The first data stream is converted to a first frequency-domain data stream by a discrete Fourier transform (DFT) having NDFT0 size, where NDFT0 is a positive integer. The second data stream is converted to a second frequency-domain data stream by a DFT having NDFT1 size, where NDFT1 is a positive integer. The first and second frequency-domain data streams are mapped to respective subcarriers.
    Type: Application
    Filed: December 16, 2015
    Publication date: July 28, 2016
    Applicant: TEXAS INSTRUMENTS INCORPORATED
    Inventors: JUNE CHUL ROH, PIERRE BERTRAND, JUN YAO
  • Publication number: 20160182092
    Abstract: A system and method for providing error control coding for backhaul applications are disclosed. Data is first encoded using Reed-Solomon (RS) coding. The output RS blocks are then turbo coded. The size of the output RS blocks is selected to match the input of the turbo encoder. The bits from the RS blocks may be interleaved to create the input turbo blocks. Cyclic Redundancy Check (CRC) parity bits may be added to the data prior to RS coding.
    Type: Application
    Filed: December 23, 2014
    Publication date: June 23, 2016
    Inventors: Mohamed Farouk Mansour, June Chul Roh, Srinath Hosur
  • Publication number: 20160013812
    Abstract: A network coding method includes receiving a plurality of input packets each having a packet length. Encoding the plurality of input packets by applying a convolutional code across symbols in corresponding positions of the plurality of input packets obtaining a number of encoded packets. The number of encoded packets obtained being more than the number of input packets.
    Type: Application
    Filed: November 25, 2014
    Publication date: January 14, 2016
    Inventors: Samantha Rose Summerson, Anuj Batra, June Chul Roh
  • Publication number: 20150381209
    Abstract: A method for performing code block segmentation for wireless transmission using concatenated forward error correction encoding includes receiving a transport block of data for transmission having a transport block size, along with one or more parameters that define a target code rate. A number N of inner code blocks needed to transmit the transport block is determined. A number M—outer code blocks may be calculated based on the number of inner code blocks and on encoding parameters for the outer code blocks. The transport block may then be segmented and encoded according to the calculated encoding parameters.
    Type: Application
    Filed: June 24, 2015
    Publication date: December 31, 2015
    Inventors: June Chul Roh, Pierre Bertrand
  • Publication number: 20150365782
    Abstract: In at least some embodiments, a communication device includes a transceiver with a physical (PHY) layer. The PHY layer is configured for body area network (BAN) operations in a limited multipath environment based on a constant symbol rate for BAN packet transmissions and based on M-ary PSK, differential M-ary PSK or rotated differential M-ary PSK modulation. The PHY layer is configured to transmit and receive data in a frequency band selected from the group consisting of: 402-405 MHz, 420-450 MHz, 863-870 MHz, 902-928 MHz, 950-956 MHz, 2360-2400 MHz, and 2400-2483.5 MHz.
    Type: Application
    Filed: May 12, 2015
    Publication date: December 17, 2015
    Inventors: Anuj Batra, Timothy M. Schmidl, Srinath Hosur, June Chul Roh
  • Publication number: 20150349839
    Abstract: A symbol modulation system applicable to a body area network is disclosed herein. The symbol modulation system includes a symbol mapper. The symbol mapper is configured to determine a time within a predetermined symbol transmission interval at which a transmission representative of the symbol will occur. The time is determined based on a value of a symbol and a value of a time-hopping sequence. The time is selected from a plurality of symbol value based time slots, and a plurality of time-hopping sequence sub-time-slots within each symbol value based time slot. The symbol mapper is configured to generate a single guard interval within the symbol transmission interval. The single guard interval is positioned to terminate the symbol transmission interval.
    Type: Application
    Filed: August 13, 2015
    Publication date: December 3, 2015
    Inventors: June Chul Roh, Anuj Batra, Sudipto Chakraborty, Srinath Hosur
  • Patent number: 9143187
    Abstract: A symbol modulation system applicable to a body area network is disclosed herein. The symbol modulation system includes a symbol mapper. The symbol mapper is configured to determine a time within a predetermined symbol transmission interval at which a transmission representative of the symbol will occur. The time is determined based on a value of a symbol and a value of a time-hopping sequence. The time is selected from a plurality of symbol value based time slots, and a plurality of time-hopping sequence sub-time-slots within each symbol value based time slot. The symbol mapper is configured to generate a single guard interval within the symbol transmission interval. The single guard interval is positioned to terminate the symbol transmission interval.
    Type: Grant
    Filed: April 29, 2014
    Date of Patent: September 22, 2015
    Assignee: TEXAS INTRUMENTS INCORPORATED
    Inventors: June Chul Roh, Anuj Batra, Sudipto Chakraborty, Srinath Hosur
  • Publication number: 20150092886
    Abstract: A method includes simulating transmission of multiple symbols representing multiple bits over at least one communication channel, where the multiple symbols are associated with a polar code. The method also includes identifying error rates of equivalent bit channels associated with the simulated transmission of the symbols. The method further includes selecting a specified number of the bits as frozen bits in the polar code using the identified error rates. Simulating the transmission of the symbols could include computing log likelihood ratio (LLR) values associated with the equivalent bit channels and simulating polar decoding of received symbols using the LLR values. Identifying the error rates could include calculating means and variances of the LLR values associated with the equivalent bit channels and identifying probability density functions of the LLR values using the means and variances. The selected bits could represent the specified number of bits identified as having worst error rates.
    Type: Application
    Filed: October 1, 2014
    Publication date: April 2, 2015
    Inventors: Corina Ioana Ionita, June Chul Roh, Mohamed F. Mansour, Srinath Hosur
  • Publication number: 20150091742
    Abstract: A method includes receiving multiple bits to be transmitted. The method also includes applying a first binary alphabet polar code to a first subset of the multiple bits to generate first encoded bits. The first encoded bits are associated with a first bit level of a multilevel coding scheme. The method further includes generating one or more symbols using the first encoded bits and bits associated with a second bit level of the multilevel coding scheme. The first binary alphabet polar code is associated with a first coding rate. In addition, the method could include applying a second binary alphabet polar code to a second subset of the multiple bits to generate second encoded bits. The second encoded bits are associated with the second bit level. The second binary alphabet polar code is associated with a second coding rate such that the bit levels have substantially equal error rates.
    Type: Application
    Filed: October 1, 2014
    Publication date: April 2, 2015
    Inventors: Corina Ioana Ionita, June Chul Roh, Mohamed F. Mansour, Srinath Hosur
  • Patent number: 8966346
    Abstract: Apparatus and method for processing a physical layer protocol convergence (PLCP) header. In one embodiment, a wireless device includes a PLCP header processor. The PLCP header processor is configured to: process a physical layer header, process a check value based on the physical layer header, and process an error correction code based on the physical layer header and the check value. A concatenation of the physical layer header, check value, and error correction code the PLCP header processor is configured to process consists of a number of information bits that is an integer multiple of a number of information bits per symbol used to encode the PLCP header.
    Type: Grant
    Filed: November 6, 2013
    Date of Patent: February 24, 2015
    Assignee: Texas Instruments Incorporated
    Inventors: June Chul Roh, Anuj Batra, Srinath Hosur
  • Publication number: 20150038187
    Abstract: A system and method for providing wireless communications between a medical controller hub and an implant node are disclosed. The hub transmits signals to facilitate communication connections with the node. The signals include connection invitation polls with identification parameters. A node monitors the hub's transmissions for the connection invitation polls. When a poll is detected, the node compares the identification parameters to a list of preferred identification values. If the received identification parameter is on the preferred list, and the node and hub are not already connected, then the node responds to the connection invitation poll. If the received identification parameter is not on the preferred list, then the node continues to monitor hub transmissions for other connection invitation polls that include identification parameters that are on the preferred list.
    Type: Application
    Filed: October 22, 2014
    Publication date: February 5, 2015
    Inventors: Jin-Meng Ho, June Chul Roh
  • Patent number: 8924831
    Abstract: A network coding method includes receiving a plurality of message packets each having a packet length. Encoding the plurality of message packets by applying a convolutional code across symbols in corresponding positions of the plurality of message packets obtaining a number of encoded packets. The number of encoded packets obtained being more than the number of message packets.
    Type: Grant
    Filed: August 27, 2012
    Date of Patent: December 30, 2014
    Assignee: Texas Instruments Incorporated
    Inventors: Samantha Rose Summerson, Anuj Batra, June Chul Roh
  • Patent number: 8914234
    Abstract: Embodiments of the invention provide methods of calibrating a blending filter based on extended Kalman filter (EKF), which optimally integrates the IMU navigation data with all other satellite measurements (tightly-coupled integration filter). In one embodiment a coordinate transformation matrix using a latest position fix is created. The state variables (for user velocity) are transformed to a local navigation coordinate. The state variables of said integration filter is estimated. A blended calibrated position fix is the output of the method.
    Type: Grant
    Filed: May 24, 2013
    Date of Patent: December 16, 2014
    Assignee: Texas Instruments Incorporated
    Inventor: June Chul Roh
  • Publication number: 20140365848
    Abstract: A method for uplink (UL) wireless backhaul communication at a wireless backhaul remote unit in a radio access network comprising receiving a configuration for radio frames and a transmission schedule through a downlink (DL) physical layer broadcast channel, wherein the transmission schedule comprises a transmission allocation for the remote unit, generating a UL data frame, wherein generating the UL data frame comprises performing forward error correction (FEC) encoding on a data bit stream to generate a plurality of FEC codewords, wherein performing the FEC encoding comprises performing Reed Solomon (RS) encoding on the data bit stream to generate a plurality of RS codewords, performing byte interleaving on the RS codewords, and performing Turbo encoding on the byte interleaved RS codewords to generate one or more Turbo codewords, wherein each Turbo codeword is encoded from more than one RS codeword, and transmitting the UL data frame according to the transmission allocation.
    Type: Application
    Filed: June 5, 2014
    Publication date: December 11, 2014
    Inventors: June Chul ROH, Pierre BERTRAND, Srinath HOSUR, Vijay POTHUKUCHI, Mohamed Farouk MANSOUR
  • Publication number: 20140362701
    Abstract: A method for communicating over a wireless backhaul channel comprising generating a radio frame comprising a plurality of time slots, wherein each time slot comprises a plurality of symbols in time and a plurality of sub-carriers in a system bandwidth, broadcasting a broadcast channel signal comprising a transmission schedule to a plurality of remote units in a number of consecutive sub-carriers centered about a direct current (DC) sub-carrier in at least one of the time slots in the radio frame regardless of the system bandwidth, and transmitting a downlink (DL) control channel signal and a DL data channel signal to a first of the remote units, wherein the DL data channel signal is transmitted by employing a single carrier block transmission scheme comprising a Discrete Fourier Transform (DFT) spreading for frequency diversity.
    Type: Application
    Filed: June 5, 2014
    Publication date: December 11, 2014
    Inventors: June Chul ROH, Pierre BERTRAND, Srinath HOSUR, Vijay POTHUKUCHI, Mohamed Farouk MANSOUR
  • Patent number: 8891710
    Abstract: A method of channel estimation includes receiving a signal after transmission over a media having a plurality of sub-carriers in a frequency band. The signal is preprocessed including performing a fast Fourier transform (FFT) to generate a plurality of frequency-domain samples. Channel estimating is applied to the plurality of frequency-domain samples using (i) least squares (LS) estimation, wherein the LS estimation generates intermediate LS channel estimates for each of the sub-carriers, and (ii) frequency-domain filtering and scaling the intermediate LS channel estimates. The frequency-domain filtering uses a common frequency-domain filter consisting of a single filter coefficient vector having a plurality of frequency-domain filter coefficients to generate refined channel estimates for each of the plurality of sub-carriers.
    Type: Grant
    Filed: August 2, 2012
    Date of Patent: November 18, 2014
    Assignee: Texas Instruments Incorporated
    Inventor: June Chul Roh
  • Patent number: 8860609
    Abstract: Techniques for loosely coupling a Global Navigation Satellite System (“GNSS”) and an Inertial Navigation System (“INS”) integration are disclosed herein. A system includes a GNSS receiver, an INS, and an integration filter coupled to the GNSS receiver and the INS. The GNSS receiver is configured to provide GNSS navigation information comprising GNSS receiver position and/or velocity estimates. The INS is configured to provide INS navigation information based on an inertial sensor output. The integration filter is configured to provide blended position information comprising a blended position estimate and/or a blended velocity estimate by combining the GNSS navigation information and the INS navigation information, and to estimate and compensate at least one of a speed bias and a heading bias of the INS navigation information.
    Type: Grant
    Filed: October 23, 2009
    Date of Patent: October 14, 2014
    Assignee: Texas Instruments Incorporated
    Inventor: June Chul Roh
  • Publication number: 20140233609
    Abstract: A symbol modulation system applicable to a body area network is disclosed herein. The symbol modulation system includes a symbol mapper. The symbol mapper is configured to determine a time within a predetermined symbol transmission interval at which a transmission representative of the symbol will occur. The time is determined based on a value of a symbol and a value of a time-hopping sequence. The time is selected from a plurality of symbol value based time slots, and a plurality of time-hopping sequence sub-time-slots within each symbol value based time slot. The symbol mapper is configured to generate a single guard interval within the symbol transmission interval. The single guard interval is positioned to terminate the symbol transmission interval.
    Type: Application
    Filed: April 29, 2014
    Publication date: August 21, 2014
    Applicant: TEXAS INSTRUMENTS INCORPORATED
    Inventors: June Chul Roh, Anuj Batra, Sudipto Chakraborty, Srinath Hosur
  • Patent number: 8767889
    Abstract: A method of generating normalized bit log-likelihood ratio (LLR) values. A signal is received in a frequency band after transmission over a media, wherein the signal includes at least one complex data symbol having a plurality of information bits, and the complex data symbol is transmitted on at least one frequency channel. Initial LLR values are calculated for each of the plurality of information bits based on bit-to-symbol mapping of modulation and noise variance information from the complex data symbol. An average signal to noise ratio (SNR) of the frequency channel is calculated. Each initial LLR value is normalized by dividing by the average SNR to generate a plurality of normalized LLR values. The normalized LLR values may be quantized to provide a finite-bit representation.
    Type: Grant
    Filed: August 22, 2012
    Date of Patent: July 1, 2014
    Assignee: Texas Instruments Incorporated
    Inventor: June Chul Roh