Radar apparatus and operating method thereof
A radar apparatus includes a transmitter configured to transmit electromagnetic waves; a receiver configured to receive electromagnetic waves that are reflected; and a processor configured to extract a relative velocity, with respect to the radar apparatus, of at least one front object based on the electromagnetic waves received by the receiver, wherein the processor is further configured to locally adjust respective resolutions of scanning front regions based on the relative velocity of the at least one front object.
1 . A radar apparatus comprising:
a transmitter configured to transmit electromagnetic waves, the transmitter being configured to steer the electromagnetic waves to scan a front region;
a receiver configured to receive electromagnetic waves that are reflected; and
a processor configured to extract a relative velocity, with respect to the radar apparatus, of at least one front object based on the electromagnetic waves received by the receiver,
wherein the processor is further configured to extract a distance to the at least one front object, and locally adjust a horizontal angular resolution and a vertical angular resolution of steering the electromagnetic waves in scanning the front region based on the distance to the at least one front object, and
wherein the processor is further configured to:
control the transmitter to scan, at a first horizontal/vertical angular resolution, a first front region in which a first object moves at a relative velocity within a first relative velocity range and within a first distance range in a direction approaching to the radar apparatus;
control the transmitter to scan, at a second horizontal/vertical angular resolution higher than the first horizontal/vertical angular resolution, a second front region in which a second object moves at a relative velocity within the first relative velocity range and within a second distance range farther than the first distance range in the direction approaching the radar apparatus; and
control the transmitter to scan, at a third horizontal/vertical angular resolution higher than the second horizontal/vertical angular resolution, a third front region in which a third object moves at a relative velocity within a second relative velocity range higher than the first relative velocity range and within the second distance range in the direction approaching the radar apparatus.
2 . The radar apparatus of claim 1 , wherein the processor is configured to locally adjust the horizontal angular resolution and the vertical angular resolution of steering the electromagnetic waves in scanning the front region based on the distance to the at least one front object, such that the horizontal angular resolution and the vertical angular resolution are increased in an area in which a front object is present at a farther distance and are decreased in an area in which a front object is present at a closer distance.
3 . The radar apparatus of claim 2 , wherein the processor is further configured to locally adjust the horizontal angular resolution and the vertical angular resolution of steering the electromagnetic waves in scanning the front region further based on the relative velocity of the at least one front object, such that the horizontal angular resolution and the vertical angular resolution are increased in an area in which a front object of a higher relative velocity is present and are decreased in an area in which a front object of a lower relative velocity is present.
4 . The radar apparatus of claim 3 , wherein the processor is further configured to control the transmitter to scan, at a fourth horizontal/vertical angular resolution higher than the third horizontal/vertical angular resolution, a fourth front region in which a fourth object moves at a relative velocity within a third relative velocity range higher than the second relative velocity range and within the second distance range in the direction approaching the radar apparatus.
5 . The radar apparatus of claim 1 , wherein the processor is further configured to control the transmitter to scan an entire front region at the first horizontal/vertical angular resolution in an initial stage.
6 . The radar apparatus of claim 1 , wherein the processor is further configured to control the transmitter to scan an entire front region at a resolution less than the first horizontal/vertical angular resolution in an initial stage.
7 . The radar apparatus of claim 1 , wherein the processor is further configured to update information about the relative velocity of the at least one front object after completing scanning in one frame with respect to an entire front region and again locally adjust the horizontal angular resolution and the vertical angular resolution based on the updated information.
8 . The radar apparatus of claim 1 , wherein the transmitter comprises:
a transmitting element array comprising a plurality of transmitting elements which are one-dimensionally or two-dimensionally arranged; and
a transmitting circuit configured to provide transmission signals to the plurality of transmitting elements, and
wherein the processor is further configured to control the transmitting circuit such that, based on the transmission signals, phases of the electromagnetic waves emitted from the plurality of transmitting elements change according to a front region to which the electromagnetic waves are to be transmitted.
9 . The radar apparatus of claim 1 , wherein the processor is further configured to determine a possibility of collision with a front object from among the at least one front object, based on information about the extracted distance to the front object and the relative velocity of the front object.
10 . A light detection and ranging (LiDAR) apparatus comprising:
a transmitter configured to transmit laser light, the transmitter being configured to steer the laser light to scan a front region;
a photodetector configured to receive laser light that is reflected; and
a processor configured to extract a relative velocity, with respect to the LiDAR apparatus, of at least one front object based on the laser light received by the photodetector,
wherein the processor is further configured to extract a distance to the at least one front object, and locally adjust a horizontal angular resolution and a vertical angular resolution of steering the laser light in scanning the front region based on the distance to the at least one front object, and
wherein the processor is further configured to:
control the transmitter to scan, at a first horizontal/vertical angular resolution, a first front region in which a first object moves at a relative velocity within a first relative velocity range and within a first distance range in a direction approaching to the LiDAR apparatus;
control the transmitter to scan, at a second horizontal/vertical angular resolution higher than the first horizontal/vertical angular resolution, a second front region in which a second object moves at a relative velocity within the first relative velocity range and within a second distance range farther than the first distance range in the direction approaching the LiDAR apparatus; and
control the transmitter to scan, at a third horizontal/vertical angular resolution higher than the second horizontal/vertical angular resolution, a third front region in which a third object moves at a relative velocity within a second relative velocity range higher than the first relative velocity range and within the second distance range in the direction approaching the LiDAR apparatus.
11 . The LiDAR apparatus of claim 10 , wherein the processor is configured to locally adjust the horizontal angular resolution and the vertical angular resolution of steering the laser light in scanning the front region based on the distance to the at least one front object, such that the horizontal angular resolution and the vertical angular resolution are increased in an area in which a front object is present at a farther distance and are decreased in an area in which a front object is present at a closer distance.
12 . The LiDAR apparatus of claim 11 , wherein the processor is further configured to locally adjust the horizontal angular resolution and the vertical angular resolution of steering the laser light in scanning the front region further based on the relative velocity of the at least one front object, such that the horizontal angular resolution and the vertical angular resolution are increased in an area in which a front object of a higher relative velocity is present and are decreased in an area in which a front object of a lower relative velocity is present.
13 . The LiDAR apparatus of claim 12 , wherein the processor is further configured to control the transmitter to scan, at a fourth horizontal/vertical angular resolution higher than the third horizontal/vertical angular resolution, a fourth front region in which a fourth object moves at a relative velocity within a third relative velocity range higher than the second relative velocity range and within the second distance range in the direction approaching the LiDAR apparatus.
14 . The LiDAR apparatus of claim 10 , wherein the processor is further configured to control the transmitter to scan an entire front region at the first horizontal/vertical angular resolution in an initial stage.
15 . The LiDAR apparatus of claim 10 , wherein the processor is further configured to control the transmitter to scan an entire front region at a resolution less than the first horizontal/vertical angular resolution in an initial stage.
16 . The LiDAR apparatus of claim 10 , wherein the processor is further configured to update information about the relative velocity of the at least one front object after completing scanning in one frame with respect to an entire front region and again locally adjust the horizontal angular resolution and the vertical angular resolution based on the updated information.
17 . The LiDAR apparatus of claim 10 , wherein the processor is further configured to determine a possibility of collision with a front object from among the at least one front object, based on information about the extracted distance to the front object and the relative velocity of the front object.