Patents by Inventor Géza Németh

Géza Németh 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: 20240098775
    Abstract: A method and a network node for applying machine learning for training a communication policy controlling radio resources for communication of messages between the network node and a control node operating a remotely controlled device is provided. The network node obtains said messages during one or more communication phases communicated when an initial first communication policy is applied for controlling a Quality of Service, QoS, mode. The network node trains a machine learning model based on said messages and the first communication policy. The network node produces a second communication policy including at least one adjusted QoS mode for at least one communication phase. The network node determines a performance score for the second communication policy in the communication phase(s) based on the radio resources used when communicating using the second communication policy.
    Type: Application
    Filed: February 5, 2021
    Publication date: March 21, 2024
    Inventors: Géza SZABÓ, Levente NÉMETH
  • Publication number: 20210064141
    Abstract: The invention is a system for detecting a signal body gesture, comprising a mobile device and a kinetic sensor adapted for recording a measurement motion parameter pattern corresponding to the time dependence of a motion parameter of the mobile device in a measurement time window, and a decision unit applying a machine learning classification algorithm subjected to basic training utilizing machine training with the application of a training database comprising signal training motion parameter patterns corresponding to the signal body gesture, operated in case the measurement motion parameter pattern having a value equal to or exceeding a predetermined signal threshold value, suitable for classifying the measurement motion parameter pattern to a signal body gesture category. The invention is, furthermore, a method for training the system.
    Type: Application
    Filed: September 3, 2018
    Publication date: March 4, 2021
    Inventors: Géza Németh, Bálint Pál Gyires-Tóth, Bálint Czeba, Gergö Attila Nagy
  • Patent number: 8254207
    Abstract: In various embodiments, seismic receivers may detect seismic energy and transmit digital signals representative of the seismic energy to an S-line interface module (SLIM) and/or a smart antenna module (SAM) for collection. A SLIM may be used to connect two or more seismic receivers together. A SAM may include a memory medium for storing digital signals from seismic receivers (e.g., received directly from the seismic receivers or received through a connection to a SLIM) and a wireless transmitter to transmit data stored on the memory medium. The SAM may further include a Global Positioning System (GPS) receiver for receiving and storing timestamps, clock data, and/or positional data relative to the seismic receivers. The timestamps, clock data, and/or positional data may be transmitted along with the digital signal data to an external source (e.g., a laptop) for analysis to detect characteristics of subterranean formations.
    Type: Grant
    Filed: September 22, 2008
    Date of Patent: August 28, 2012
    Inventors: Geza Nemeth, Robert Gray Moore, Zoltan Csizmadia
  • Publication number: 20100074055
    Abstract: In various embodiments, seismic receivers may detect seismic energy and transmit digital signals representative of the seismic energy to an S-line interface module (SLIM) and/or a smart antenna module (SAM) for collection. A SLIM may be used to connect two or more seismic receivers together. A SAM may include a memory medium for storing digital signals from seismic receivers (e.g., received directly from the seismic receivers or received through a connection to a SLIM) and a wireless transmitter to transmit data stored on the memory medium. The SAM may further include a Global Positioning System (GPS) receiver for receiving and storing timestamps, clock data, and/or positional data relative to the seismic receivers. The timestamps, clock data, and/or positional data may be transmitted along with the digital signal data to an external source (e.g., a laptop) for analysis to detect characteristics of subterranean formations.
    Type: Application
    Filed: September 22, 2008
    Publication date: March 25, 2010
    Inventors: Geza Nemeth, Robert Gray Moore, Zoltan Csizmadia
  • Patent number: 7382690
    Abstract: In the present invention, a seismic receiver contains an onboard digitizer that samples and converts a signal from detected seismic energy into the digital domain. The receiver contains an analog to digital converter, a transmission circuitry, and a link to the seismic detection circuitry. The signal from the seismic detection circuitry is converted into a digital signal, which is then relayed to the data recorder. These components are all resident to the receiver itself. Additional control circuitry is employed to provide clocking and testing functions. These receivers communicate with one another, and provide sampled seismic data on an individual basis. The components may be prepared on a PCB and put inside the receiver cap. The PCB may be flexible in nature, as to provide a maximum of surface mounted components in the smallest amount of space.
    Type: Grant
    Filed: June 12, 2006
    Date of Patent: June 3, 2008
    Inventor: Geza Nemeth
  • Publication number: 20060233051
    Abstract: In the present invention, a seismic receiver contains an onboard digitizer that samples and converts a signal from detected seismic energy into the digital domain. The receiver contains an analog to digital converter, a transmission circuitry, and a link to the seismic detection circuitry. The signal from the seismic detection circuitry is converted into a digital signal, which is then relayed to the data recorder. These components are all resident to the receiver itself. Additional control circuitry is employed to provide clocking and testing functions. These receivers communicate with one another, and provide sampled seismic data on an individual basis. The components may be prepared on a PCB and put inside the receiver cap. The PCB may be flexible in nature, as to provide a maximum of surface mounted components in the smallest amount of space.
    Type: Application
    Filed: June 12, 2006
    Publication date: October 19, 2006
    Inventor: Geza Nemeth
  • Patent number: 7085196
    Abstract: In the present invention, a seismic receiver contains an onboard digitizer that samples and converts a signal from detected seismic energy into the digital domain. The receiver contains an analog to digital converter, a transmission circuitry, and a link to the seismic detection circuitry. The signal from the seismic detection circuitry is converted into a digital signal, which is then relayed to the data recorder. These components are all resident to the receiver itself. Additional control circuitry is employed to provide clocking and testing functions. These receivers communicate with one another, and provide sampled seismic data on an individual basis. The components may be prepared on a PCB and put inside the receiver cap. The PCB may be flexible in nature, as to provide a maximum of surface mounted components in the smallest amount of space.
    Type: Grant
    Filed: December 7, 2001
    Date of Patent: August 1, 2006
    Inventor: Geza Nemeth
  • Publication number: 20030123325
    Abstract: In the present invention, a seismic receiver contains an onboard digitizer that samples and converts a signal from detected seismic energy into the digital domain. The receiver contains an analog to digital converter, a transmission circuitry, and a link to the seismic detection circuitry. The signal from the seismic detection circuitry is converted into a digital signal, which is then relayed to the data recorder. These components are all resident to the receiver itself. Additional control circuitry is employed to provide clocking and testing functions. These receivers communicate with one another, and provide sampled seismic data on an individual basis. The components may be prepared on a PCB and put inside the receiver cap. The PCB may be flexible in nature, as to provide a maximum of surface mounted components in the smallest amount of space.
    Type: Application
    Filed: December 7, 2001
    Publication date: July 3, 2003
    Inventor: Geza Nemeth