IP Library › Granted Patent US 12,607,736
Granted Patent B2
US 12,607,736 · App. 17/966,041 · Granted Apr 21, 2026

Radar device and radar image generation method

Inventors: Takayuki Kitamura (Tokyo, JP); Kei Suwa (Tokyo, JP)
Assignee: MITSUBISHI ELECTRIC CORPORATION
G01S13/89
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Quick Facts
Patent No.
US 12,607,736
App. No.
17/966,041
Granted
Apr 21, 2026
Kind
B2
Abstract

A radar device includes: a control unit to cause a series of processing to be repeatedly executed, the series of processing including transmitting transmission signals to space using transmission antennas arranged linearly, receiving reflected signals that are the transmission signals reflected in the space using reception antennas linearly arranged in the same direction as the transmission antennas, transmitting the transmission signals simultaneously from the transmission antennas, receiving the reflected signals by the reception antennas, and acquiring digital data; and a signal processing unit to generate a three-dimensional radar image of a target moved in a direction crossing an antenna arrangement direction of the transmission antennas and the reception antennas by using the digital data sequentially acquired in the series of processing repeatedly executed as two-dimensional array data.

Claims (25)

1 . A radar device, comprising:

a transmitter to transmit transmission signals to space by using a plurality of transmission antennas arranged linearly and a receptor to receive reflected signals that are the transmission signals reflected in the space by using a plurality of reception antennas linearly arranged in the same direction as a plurality of the transmission antennas, and acquire digital data of the received signals;

a controller to cause the transmitter and the receptor to repeatedly execute a series of processing in which the transmitter simultaneously transmits the transmission signals from a plurality of the transmission antennas and the receptor receives the reflected signals by a plurality of the reception antennas and acquires the digital data; and

a signal processor to generate a three-dimensional radar image of a detection object moved in a direction crossing an antenna arrangement direction of a plurality of the transmission antennas and a plurality of the reception antennas by using the digital data sequentially acquired in the series of processing repeatedly executed as two-dimensional array data, wherein

at least one first transmission antenna of a plurality of the transmission antennas is disposed at a first end of a substrate and at least one second transmission antenna of the plurality of transmission antennas is disposed at a second end of the substrate opposite to the first end of the substrate,

the controller sets a pulse repetition interval of the transmission signals simultaneously transmitted from a plurality of the transmission antennas to be constant, and sets an initial phase change amount between the transmission signals at the pulse repetition interval to a different value for each of the transmission antennas,

the transmitter simultaneously transmits the transmission signals having initial phase change amounts different for each of the transmission antennas from a plurality of the transmission antennas and multiplexes the transmission signals on a Doppler frequency axis such that the radar device implements a Doppler division multiplexing-multiple input multiple output (DDM-MIMO) system, and

the signal processor generates two dimensional frequency signals by performing one dimensional Fourier transform on a plurality of reception signals which are reflected signals sequentially received in the pulse repetition intervals by the reception antenna, generates first compressed data by performing bulk compression on data of each reception path for each respective transmission antenna, generates three dimensional frequency signals by performing three dimensional Fourier transform on the plurality of reception signals parallel to generating the two dimensional frequency signals, generates signals of the three-dimensional radar image of the detection object for each of the transmission antennas using the two dimensional frequency signals and the three dimensional frequency signals generated in parallel and generates a final three-dimensional radar image of the detection object by coherently adding signals of the three-dimensional radar image generated for each of the transmission antennas.

2 . The radar device according to claim 1 , wherein

a plurality of the reception antennas are arranged at equal intervals.

3 . The radar device according to claim 1 , comprising

a plurality of array antennas in which a plurality of the transmission antennas and a plurality of the reception antennas are arranged on the substrate, wherein

a plurality of the array antennas are linearly arranged.

4 . The radar device according to claim 1 , wherein the signal processor is configured to generate second compressed data by performing bulk compression for each transmission path on the first compressed data for each respective transmission antenna.

5 . The radar device according to claim 4 , wherein the signal processor is configured to generate corrected data by performing bistatic arrangement correction on the second compressed data.

6 . The radar device according to claim 5 , wherein the signal processor is configured to generate interpolated data by performing Stolt interpolation on the corrected data,

and use the interpolated data to generate the three-dimensional frequency signals.

7 . A radar image generation method of a radar device including,

a transmitter to transmit transmission signals to space by using a plurality of transmission antennas arranged linearly, and a receptor to receive reflected signals that are the transmission signals reflected in the space by using a plurality of reception antennas linearly arranged in the same direction as a plurality of the transmission antennas, and acquire digital data of the received signals, the method comprising:

causing the transmitter and the receptor to repeatedly execute a series of processing in which the transmitter simultaneously transmits the transmission signals from a plurality of the transmission antennas and the receptor receives the reflected signals by a plurality of the reception antennas and acquires the digital data; and

generating a three-dimensional radar image of a detection object moved in a direction crossing an antenna arrangement direction of a plurality of the transmission antennas and a plurality of the reception antennas by using the digital data sequentially acquired in the series of processing repeatedly executed as two-dimensional array data, wherein

at least one first transmission antenna of a plurality of the transmission antennas is disposed at a first end of a substrate and at least one second transmission antenna of the plurality of transmission antennas is disposed at a second end of the substrate opposite to the first end of the substrate, wherein

the controller sets a pulse repetition interval of the transmission signals simultaneously transmitted from a plurality of the transmission antennas to be constant, and sets an initial phase change amount between the transmission signals at the pulse repetition interval to a different value for each of the transmission antennas, wherein

the transmitter simultaneously transmits the transmission signals having initial phase change amounts different for each of the transmission antennas and multiplexes the transmission signals on a Doppler frequency axis such that the radar device implements a Doppler division multiplexing-multiple input multiple output (DDM-MIMO) system, and

the signal processor generates two dimensional frequency signals by performing one dimensional Fourier transform on a plurality of reception signals which are reflected signals sequentially received in the pulse repetition intervals by the reception antenna, generates first compressed data by performing bulk compression on data of each reception path for each respective transmission antenna, generates three dimensional frequency signals by performing three dimensional Fourier transform on the plurality of reception signals parallel to generating the two dimensional frequency signals, generates signals of the three-dimensional radar image of the detection object for each of the transmission antennas using the two dimensional frequency signals and the three dimensional frequency signals generated in parallel and generates a final three-dimensional radar image of the detection object by coherently adding signals of the three-dimensional radar image generated for each of the transmission antennas.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 17, 2022
From: KITAMURA, TAKAYUKI; SUWA, KEI
To: MITSUBISHI ELECTRIC CORPORATION
Reel/Frame 061444/0904 →
Continuity (2)
Continuation PCTJP2020023091 · Jun 11, 2020
Related Publication 20230039504A1 · Feb 9, 2023
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