Patents by Inventor Alexander Melzer

Alexander Melzer 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: 11018728
    Abstract: A circuit includes a transmission channel that outputs a continuous-wave signal based on a reference signal, a transmit monitoring signal path that couples out a portion of the transmit signal as a monitoring signal, a test phase shifter that receives the reference signal and generates a phase-shifted signal based on a sequence of phase offsets applied to the reference signal, a phase mixer that mixes the phase-shifted signal and the monitoring signal to generate a mixer output signal including a plurality of direct current (DC) values, an analog-to-digital converter that samples the mixer output signal in order to provide a sequence of DC values; and a monitor circuit that applies a discrete Fourier transform (DFT) to the sequence of DC values to generate a plurality of DFT bins with corresponding DFT bin values, and generate compensated phase information of the transmission channel using at least two DFT bin values.
    Type: Grant
    Filed: May 28, 2019
    Date of Patent: May 25, 2021
    Inventors: Oliver Lang, Werner Arriola, Vincenzo Fiore, Alexander Melzer
  • Patent number: 10969463
    Abstract: A method for processing radar data is described herein. In accordance with one embodiment, the method includes the calculation of a Range Map based on a digital radar signal received from a radar receiver. The Range Map includes spectral values for a plurality of discrete frequency values and a plurality of discrete time values, wherein each spectral value is represented by at least a first parameter. Further, the method includes applying an operation to at least the first parameters in the Range Map for at least one discrete frequency value to smooth or analyze at least a portion of the Range Map.
    Type: Grant
    Filed: October 11, 2018
    Date of Patent: April 6, 2021
    Assignee: Infineon Technologies AG
    Inventors: Alexander Melzer, Mario Huemer, Paul Meissner, Alexander Onic, Rainer Stuhlberger, Fisnik Sulejmani, Matthias Wagner
  • Publication number: 20210080537
    Abstract: A radar system includes a local oscillator for generating a local oscillator signal, transmission channels, and a reception channel. The transmission channels are designed to generate and output RF radar signals based on the local oscillator signal The transmission channels have phase shifters for setting the phase of the RF radar signals. The reception channel is designed to receive an RF signal and to convert it into a baseband signal by using the local oscillator signal supplied thereto. A method includes operating the local oscillator in a CW mode, setting a specific combination of phase shifts for the phase shifters of the transmission channels, altering the phase of the local oscillator signal supplied to the reception channel or of the phase shifts of the phase shifters by a phase offset, and ascertaining that phase offset for which the baseband signal at least approximately assumes a maximum.
    Type: Application
    Filed: September 14, 2020
    Publication date: March 18, 2021
    Applicant: Infineon Technologies AG
    Inventors: Alexander MELZER, Andreas DOLLINGER, Rene KOBLER, Georg KREBELDER, Christoph WAGNER, Martin WIESSFLECKER
  • Publication number: 20210072346
    Abstract: In accordance with an embodiment, a method includes: receiving a reflected radar signal including a first radar chirp signal during a first chirp time period and a second radar chirp signal during a second chirp time period; downconverting the reflected radar signal to form a baseband signal; adding a DC offset to the baseband signal to form a DC offset baseband signal, adding the DC offset including adding a first DC offset to the baseband signal during the first chirp time period, and adding a second DC offset to the baseband signal during the second chirp time period, where the first DC offset is different from the second DC offset; and digitizing the DC offset baseband signal using an analog-to-digital converter to form a digitized baseband signal.
    Type: Application
    Filed: September 6, 2019
    Publication date: March 11, 2021
    Inventors: Peter Bogner, Christoph Affenzeller, Alexander Melzer, Martin Wiessflecker
  • Publication number: 20210025973
    Abstract: A method for the use in a radar system is described herein. In accordance with one embodiment, the method includes providing a local oscillator signal to an RF output channel of a radar system. The RF output channel is configured to generate, in an enabled state, an RF output signal based on the local oscillator signal. The method further includes determining a first measurement signal based on the local oscillator signal and a first representation of the RF output signal, while the RF output channel is disabled, and thus the first measurement signal represents crosstalk. Further, the method includes determining a second measurement signal based on the local oscillator signal and a second representation of the RF output signal while the RF output channel is enabled. A phase value associated with the RF output channel is determined based on the first measurement signal and the second measurement signal.
    Type: Application
    Filed: June 23, 2020
    Publication date: January 28, 2021
    Applicant: Infineon Technologies AG
    Inventors: Vincenzo FIORE, Werner ARRIOLA, Rene KOBLER, Oliver LANG, Alexander MELZER
  • Publication number: 20200396049
    Abstract: Noise test systems, methods, and circuitries are provided for determining a phase error of a first modulator using a second modulator. In one example, an integrated circuit device includes a first modulator configured to modulate a first signal to generate a first modulated signal and a second modulator configured to modulate a second signal to generate a second modulated signal. The first signal and the second signal are based on the same reference signal.
    Type: Application
    Filed: June 3, 2020
    Publication date: December 17, 2020
    Inventors: Vincenzo Fiore, Werner Arriola, Oliver Lang, Alexander Melzer
  • Publication number: 20200386854
    Abstract: A radar system and a method for a radar system are described. In accordance with one exemplary embodiment, the method includes generating a local oscillator signal in a first radar chip, generating a frequency-divided signal from the local oscillator signal by means of a frequency divider arranged in the first radar chip, transmitting the frequency-divided signal to a second radar chip, and transmitting the local oscillator signal to the second radar chip. The local oscillator signal received in the second radar chip is fed to an output channel of the second radar chip, which generates an output signal on the basis thereof. The method further includes generating—on the basis of the output signal of the output channel and the frequency-divided signal received by the second radar chip—a signal indicating a phase angle of the output signal relative to the received frequency-divided signal.
    Type: Application
    Filed: May 28, 2020
    Publication date: December 10, 2020
    Applicant: Infineon Technologies AG
    Inventors: Alexander MELZER, Clemens PFEFFER
  • Publication number: 20200382170
    Abstract: A circuit includes a transmission channel that outputs a continuous-wave signal based on a reference signal, a transmit monitoring signal path that couples out a portion of the transmit signal as a monitoring signal, a test phase shifter that receives the reference signal and generates a phase-shifted signal based on a sequence of phase offsets applied to the reference signal, a phase mixer that mixes the phase-shifted signal and the monitoring signal to generate a mixer output signal including a plurality of direct current (DC) values, an analog-to-digital converter that samples the mixer output signal in order to provide a sequence of DC values; and a monitor circuit that applies a discrete Fourier transform (DFT) to the sequence of DC values to generate a plurality of DFT bins with corresponding DFT bin values, and generate compensated phase information of the transmission channel using at least two DFT bin values.
    Type: Application
    Filed: May 28, 2019
    Publication date: December 3, 2020
    Applicant: Infineon Technologies AG
    Inventors: Oliver LANG, Werner ARRIOLA, Vincenzo FIORE, Alexander MELZER
  • Publication number: 20200301001
    Abstract: A radar method is described. According to one exemplary embodiment, the method includes generating a first RF oscillator signal in a first chip and supplying the first RF oscillator signal to a transmission (TX) channel of the first chip and transmitting the first RF oscillator signal from the TX channel of the first chip to the second chip via a transmission line.
    Type: Application
    Filed: May 8, 2020
    Publication date: September 24, 2020
    Applicant: Infineon Technologies AG
    Inventors: Florian Starzer, Helmut KOLLMANN, Alexander MELZER, Rainer STUHLBERGER, Roland VUKETICH, Mathias ZINNOECKER
  • Publication number: 20200191911
    Abstract: A method is described below which can be used in a radar system. According to one example implementation, the method comprises providing a digital baseband signal using a radar receiver. The baseband signal comprises a plurality of segments, wherein each segment is assigned to a chirp of an emitted chirp sequence and each segment comprises a specific number of samples.
    Type: Application
    Filed: December 4, 2019
    Publication date: June 18, 2020
    Inventors: Paul MEISSNER, Alexander MELZER, Christian SCHMID, Mate Andras TOTH
  • Patent number: 10684363
    Abstract: A radar method is described. According to one exemplary embodiment, the method includes generating a first RF oscillator signal in a first chip and supplying the first RF oscillator signal to a transmission (TX) channel of the first chip and transmitting the first RF oscillator signal from the TX channel of the first chip to the second chip via a transmission line.
    Type: Grant
    Filed: August 20, 2018
    Date of Patent: June 16, 2020
    Assignee: Infineon Technologies AG
    Inventors: Florian Starzer, Helmut Kollmann, Alexander Melzer, Rainer Stuhlberger, Roland Vuketich, Mathias Zinnoecker
  • Publication number: 20200174098
    Abstract: A method for a radar system is described. In accordance with one example implementation, the method comprises generating a frequency-modulated RF oscillator signal and feeding the RF oscillator signal to a first transmitting channel and a second transmitting channel. The method further comprises generating a first RF transmission signal in the first transmitting channel based on the RF oscillator signal, emitting the first RF transmission signal via a first transmitting antenna, receiving a first RF radar signal via a receiving antenna, and converting the first RF radar signal to a baseband, as a result of which a first baseband signal is obtained, which has a first signal component having a first frequency and a first phase, where the first signal component is assignable to direct crosstalk from the first transmitting antenna. This procedure is repeated for the second transmitting channel.
    Type: Application
    Filed: November 27, 2019
    Publication date: June 4, 2020
    Inventors: Oliver LANG, Michael GERSTMAIR, Alexander MELZER, Alexander ONIC, Christian SCHMID
  • Patent number: 10670698
    Abstract: A method for estimating phase noise of an RF oscillator signal in a frequency-modulated continuous-wave (FMCW) radar system and related radar devices are provided. The method includes applying the RF oscillator signal to an artificial radar target composed of circuitry, which applies a delay and a gain to the RF oscillator signal, to generate an RF radar signal. Furthermore, the method includes down-converting the RF radar signal received from the artificial radar target from an RF frequency band to a base band, digitizing the down-converted RF radar signal to generate a digital radar signal, and calculating a decorrelated phase noise signal from the digital radar signal. A power spectral density of the decorrelated phase noise is then calculated from the decorrelated phase noise signal, and the power spectral density of the decorrelated phase noise is converted into a power spectral density of the phase noise of an RF oscillator signal.
    Type: Grant
    Filed: November 22, 2016
    Date of Patent: June 2, 2020
    Assignee: Infineon Technologies AG
    Inventors: Alexander Melzer, Mario Huemer, Alexander Onic, Florian Starzer, Rainer Stuhlberger
  • Patent number: 10663559
    Abstract: A method for cancelling phase noise in a radar signal is described herein. In accordance with one embodiment, the method includes transmitting an RF oscillator signal, which represents a local oscillator signal including phase noise, to a radar channel and receiving a respective first RF radar signal from the radar channel. The first RF radar signal included at least one radar echo of the transmitted RF oscillator signal. Further, the method includes applying the RF oscillator signal to an artificial radar target composed of circuitry, which applies a delay and a gain to the RF oscillator signal, to generate a second RF radar signal. The second RF radar signal is modulated by a modulation signal thus generating a frequency-shifted RF radar signal. Further, the method includes subtracting the frequency-shifted RF radar signal from the first RF radar signal.
    Type: Grant
    Filed: October 6, 2017
    Date of Patent: May 26, 2020
    Assignee: Infineon Technologies AG
    Inventors: Mario Huemer, Alexander Melzer, Alexander Onic, Rainer Stuhlberger
  • Publication number: 20200158825
    Abstract: The present disclosure relates to a light detection and ranging (LIDAR) sensor comprising a detector configured to generate a first detector signal at a first delay time following an emission of a first light pulse and to generate at least one second detector signal at the first delay time following an emission of at least a second light pulse; and a processor configured to generate a combined signal for the first delay time based on a combination of the first detector signal and the at least one second detector signal. Depending on the type of combination, the combined signal can be used for interference detection or mitigation.
    Type: Application
    Filed: November 20, 2019
    Publication date: May 21, 2020
    Applicant: Infineon Technologies AG
    Inventors: Paul MEISSNER, Michiel HELSLOOT, Alexander MELZER, Vladimir PETROVIC, Christoph STEINER, Hendrikus VAN LIEROP
  • Publication number: 20200150260
    Abstract: Methods for detecting radar targets are provided. According to one exemplary embodiment, the method includes providing a digital radar signal having a sequence of signal segments. Each signal segment of the sequence is respectively associated with a chirp of a transmitted RF radar signal. The method further includes detecting one or more radar targets based on a first subsequence of successive signal segments of the sequence. For each detected radar target, a distance value and a velocity value are determined. If a group of radar targets having overlapping signal components has been detected, a respective spectral value is calculated for each radar target of the group of radar targets based on a second subsequence of the sequence of signal segments and further based on the velocity values ascertained for the group of radar targets.
    Type: Application
    Filed: November 6, 2019
    Publication date: May 14, 2020
    Applicant: Infineon Technologies AG
    Inventors: Oliver LANG, Michael GERSTMAIR, Alexander MELZER, Christian SCHMID
  • Publication number: 20200124699
    Abstract: A method is described that can be used in a radar system. In accordance with one exemplary embodiment, the method includes calculating a first spectrum, which represents a spectrum of a segment of a complex baseband signal. The segment is assignable to a specific chirp of a chirp sequence contained in a first RF radar signal. The method further includes estimating a second spectrum, which represents a spectrum of an interference signal contained in the complex baseband signal, based on a portion of the first spectrum that is assigned to negative frequencies.
    Type: Application
    Filed: October 18, 2019
    Publication date: April 23, 2020
    Applicant: Infineon Technologies AG
    Inventors: Paul MEISSNER, Alexander MELZER, Mate Andras TOTH
  • Publication number: 20200096603
    Abstract: A radar system includes a first integrated radar circuit having a plurality of first transmission paths and a local oscillator configured to generate a local oscillator signal. The first integrated radar circuit has a first terminal configured to output an oscillation signal based on the local oscillator signal. The radar system includes a second integrated radar circuit having a second transmission path and a second terminal. The radar system includes a partially reflective element coupled to the first terminal via a first line section and to the second terminal via a second line section. The partially reflective element is configured to reflect back a first portion of the oscillation signal as a reflected signal via the first line section to the first terminal and to pass on a second portion of the oscillation signal as a forward signal via the second line section to the second terminal.
    Type: Application
    Filed: September 20, 2019
    Publication date: March 26, 2020
    Applicant: Infineon Technologies AG
    Inventors: Philipp SCHMIDT, Alexander MELZER, Andreas OCH
  • Publication number: 20200088838
    Abstract: In accordance with an embodiment, a method of operating a radar system includes activating a transmitter to transmit a radar signal during a first time period, receiving a reflection of the radar signal from a radar antenna, downconverting the reflected radar signal, and digitally processing the downconverted reflected radar signal within a first frequency bandwidth using a first signal path. The method also includes deactivating the transmitter during a second time period, receiving a second signal from the radar antenna during the second time period, downconverting the second signal, measuring a power of the downconverted second signal within a second frequency bandwidth using a second signal path different from the first signal path, and determining an interference metric based on measuring the power.
    Type: Application
    Filed: September 18, 2018
    Publication date: March 19, 2020
    Inventors: Alexander Melzer, Paul Meissner, Mate Andras Toth
  • Publication number: 20200025870
    Abstract: The description below relates to a method for a radar sensor. According to one example implementation, the method comprises receiving configuration data and storing the received configuration data in a first radar chip having multiple transmission channels. The configuration data contain multiple parameter sets for a chirp sequence and association information representing an association of a respective chirp of the chirp sequence with one of the multiple parameter sets. The method further comprises receiving a trigger signal in the first radar chip. The trigger signal indicates the beginning of a respective chirp of the chirp sequence. The transmission channels mentioned are repeatedly configured in sync with the trigger signal, wherein for each chirp of the chirp sequence the transmission channels are configured according to the respective association information.
    Type: Application
    Filed: July 15, 2019
    Publication date: January 23, 2020
    Inventors: Alexander MELZER, Bernhard GRESLEHNER-NIMMERVOLL, Clemens PFEFFER