Radar apparatus and signal processing method therein
Exemplary embodiments provide a radar apparatus having a plurality of antenna elements and enabling to reduce a number of ADCs as long as being allowable according to a bandwidth of the ADC, reduce a chip area occupied by the ADC and interconnections in an integrated circuit, and prevent a synchronization problem between the ADCs by sampling receive signals of multiple channels at once. Frequencies of local oscillation signals used for downconverting receive signals are set to be different from each other by an amount of an offset frequency, so that each of band-limited receive signals obtained through respective RF paths may occupy a different position on a frequency axis of a frequency domain. Downconverted receive signals are combined into a single signal and converted into a single digital signal stream, and a signal processing of the digital signal stream in a digital domain enables to obtain target data.
1 . A radar apparatus, comprising:
a transmit circuit configured to generate a radio frequency (RF) transmit signal based on a local oscillation signal and comprising a transmit antenna radiating a transmit electromagnetic signal corresponding to the RF transmit signal;
a receive circuit configured to detect, through a plurality of antennas, receive electromagnetic signals that the transmit electromagnetic signal was reflected by a target and propagated toward the radar apparatus and amplify detected signals to acquire n-tuple RF receive signals (where n is a natural number greater than or equal to 2);
a frequency downconverter configured to convert each of the RF receive signals into an in-phase (I)-channel intermediate frequency (IF) signal and a quadrature (Q)-channel IF signal such that frequency bands of 2n IF signals for the RF receive signals are sequentially displaced by a predetermined offset frequency;
an analog-to-digital converter configured to perform an analog-to-digital conversion of a single IF signal into which the 2n IF signals are combined to generate a single digital signal stream; and
a digital signal processor configured to processes the digital signal stream to extract target information,
wherein the frequency downconverter is configured to convert a frequency band of each RF receive signal into a first IF band to generate the I-channel IF signal, and shift a phase of the RF receive signal by 90 degrees and convert a frequency band of a phase-shifted RF receive signal into a second IF band different from the first IF band to generate the Q-channel IF signal,
wherein the frequency downconverter is configured to convert the RF receive signals into the 2n IF signals such that 2n IF bands of the 2n IF signals are sequentially displaced in a frequency domain by the predetermined offset frequency,
wherein the receive circuit comprises:
the plurality of antennas each configured to detect one of the electromagnetic signals and convert a detected electromagnetic signal into an electrical signal to output one of the RF receive signals; and
a plurality of low noise amplifiers each configured to amplify a corresponding one of the RF receive signals, and
wherein the frequency downconverter is configured to include: a multiple-frequency local oscillation signal generator configured to generate (2n−1) adjusted oscillation signals having frequencies sequentially added with the predetermined offset frequency from a base frequency of the local oscillation signal and output 2n oscillation signals including the local oscillation signal and the adjusted oscillation signals, wherein the 2n oscillation signals comprises n-tuple oscillation signal pairs of two oscillation signals being out of phase by 90 degrees from each other; and a frequency conversion circuit configured to mix each of the RF receive signals with two oscillation signals of a corresponding oscillation signal pair among the 2n oscillation signals to generate the 2n IF signals; or the frequency downconverter is configured to include: a first frequency converter configured to mix each of the RF receive signals with the local oscillation signal and a phase-shifted local oscillation signal whose phase is shifted by 90 degrees from the local oscillation signal to generate 2n common IF band signals; a multiple-frequency local oscillation signal generator configured to generate (2n−1) offset oscillation signals having frequencies sequentially added with the offset frequency from the offset frequency; and a second frequency converter configured to mix each of a second and subsequent common IF band signals among the 2n common IF band signals with the (2n−1) offset oscillation signals, respectively, to generate the 2n IF signals including a first common IF band signal.
2 . The radar apparatus of claim 1 , wherein the predetermined offset frequency is set to be equal to a signal bandwidth of a beat frequency of the radar apparatus.
3 . The radar apparatus of claim 1 , wherein the predetermined offset frequency is set to be greater than a signal bandwidth of a beat frequency of the radar apparatus.
4 . A signal processing method in a radar apparatus, comprising:
detecting, by a plurality of antennas, electromagnetic signals that a transmit electromagnetic signal was reflected by a target and propagated toward the radar apparatus and amplifying detected signals to acquire n-tuple radio frequency (RF) receive signals (where n is a natural number greater than or equal to 2);
converting each of the RF receive signals into an in-phase (I)-channel intermediate frequency (IF) signal and a quadrature (Q)-channel IF signal such that frequency bands of 2n IF signals for the RF receive signals are different from each other;
combining the 2n IF signals to obtain a single IF signal and performing an analog-to-digital conversion of the single IF signal to generate a single digital signal stream; and
processing the digital signal stream to extract target information,
wherein converting each of the RF receive signals into the I-channel IF signal and the Q-channel IF signal comprises:
converting a frequency band of each RF receive signal into a first IF band to generate the I-channel IF signal; and
shifting a phase of the RF receive signal by 90 degrees and converting a frequency band of a phase-shifted RF receive signal into a second IF band different from the first IF band to generate the Q-channel IF signal,
wherein the RF receive signals are converted into the 2n IF signals such that 2n IF bands of the 2n IF signals are sequentially displaced in a frequency domain by a predetermined offset frequency, and
wherein converting each of the RF receive signals into the I-channel IF signal and the Q-channel IF signal comprises: generating 2n oscillation signals including the local oscillation signal used for generating the transmit electromagnetic signal and (2n−1) adjusted oscillation signals having frequencies sequentially added with the predetermined offset frequency from a base frequency of the local oscillation signal, wherein the 2n oscillation signals comprises n-tuple oscillation signal pairs of two oscillation signals being out of phase by 90 degrees from each other; and mixing each of the RF receive signals with two oscillation signals of a corresponding oscillation signal pair among the 2n oscillation signals to generate the 2n IF signals; or converting each of the RF receive signals into the I-channel IF signal and the Q-channel IF signal comprises: mixing each of the RF receive signals with the local oscillation signal used for generating the transmit electromagnetic signal and a phase-shifted local oscillation signal whose phase is shifted by 90 degrees from the local oscillation signal to generate 2n common IF band signals; and converting the 2n common IF band signals into the 2n IF signals in respective IF bands sequentially displaced by the predetermined offset frequency.
5 . The signal processing method of claim 4 , wherein the predetermined offset frequency is set to be equal to a signal bandwidth of a beat frequency of the radar apparatus.
6 . The signal processing method of claim 4 , wherein the predetermined offset frequency is set to be greater than a signal bandwidth of a beat frequency of the radar apparatus.
7 . The signal processing method of claim 4 , wherein converting the 2n common IF band signals into the 2n IF signals comprises:
generating (2n−1) offset oscillation signals having frequencies sequentially added with the predetermined offset frequency from the predetermined offset frequency; and
mixing each of a second and subsequent common IF band signals among the 2n common IF band signals with the (2n−1) offset oscillation signals, respectively, to generate the 2n IF signals including a first common IF band signal.