The subject disclosure relates to radar systems used in vehicular tracking systems and, in particular, to a system and method for calibrating a phase relation between in-phase and quadrature channels of a radar system.
Vehicles can benefit from the use of radar systems which can locate an object or target in an environment of the vehicle and provide relevant parameters regarding an object, such as a range or location of the object, an angular location of the object, a relative velocity of the object, etc. Radar systems send source signals into a volume, with respect to the vehicle, and receive reflections of the source signals from any objects in the volume. Radar systems employ multipliers, such as balanced down converters, which convert the high-frequency radar signals to base-band frequencies. A balanced downconverter includes separate in-phase (I) and quadrature (Q) channels that have a phase relation of 90 degrees between them (i.e., are out of phase by 90 degrees). However, this phase relation needs to be maintained and the down-converting multiplication to the base-band frequencies needs to be the same for each channel. Variation of the phase relation or the multiplication for down-conversion can result in additional parasitic harmonic signals appearing in radar output, such as the appearance of ghost targets in the radar system, the masking of weak targets by strong targets, and errors in range and Doppler (velocity) measurements. Accordingly, it is desirable to provide a method of controlling a phase relation between I-channels and Q-channels in vehicular radar systems.
In one exemplary embodiment, a method of calibrating a radar system is disclosed. The method includes transmitting a source signal, from a transmitter, at a target at a selected location from the radar system, and receiving an echo signal, as a reflection of the source signal from the target, at an in-phase channel and quadrature channel of a receiver. A range space is obtained for the echo signal that includes a target peak corresponding to the target, wherein the range space includes a ghost peak for the target resulting from an IQ difference between the in-phase and quadrature channels. The IQ difference between the in-phase and quadrature channels is adjusted to reduce an amplitude of the ghost frequency peak.
In an embodiment, a difference is estimated between an intensity of the target peak and an intensity of the ghost peak, and the IQ difference is adjusted to increase the difference in intensities. An IQ corrector circuit receives an in-phase reference signal along the in-phase channel and a quadrature reference signal along the quadrature channel from the transmitter. The IQ difference is adjusted at the IQ corrector circuit. In various embodiments, the IQ difference is at least one of: (i) a difference between a phase of the in-phase channel and the quadrature channel; and (ii) a difference between a gain of the in-phase channel and a gain of the quadrature channel. A range of the target may be within a maximum range of the radar system. In an embodiment, an in-phase component of the reflected signal is combined with the in-phase reference signal and a quadrature component of the reflected signal is combined with the quadrature reference signal.
In an embodiment, the method further includes determining one of a range and a Doppler frequency of an object using the calibrated radar system and providing the one of the range and the Doppler frequency to an autonomous driving system of a vehicle in order to provide a signal that the autonomous driving system may be used to maneuver the vehicle with respect to the target.
In another exemplary embodiment, a radar system is disclosed. The radar system includes a transmitter circuit that transmits a source signal having an in-phase component and quadrature component, a receiver circuit for receiving an echo signal that is a reflection of the source signal from a target, wherein the receiver circuit includes an in-phase channel and a quadrature channel, respectively, an IQ corrector circuit that provides an IQ difference between the in-phase channel and the quadrature channel, a digital signal processor for obtaining a range space for the echo signal that includes a target peak corresponding to the target, wherein the range space includes a ghost peak resulting from the IQ difference between the in-phase and quadrature channels, and a correction module that adjusts the IQ difference at the IQ corrector circuit to reduce an amplitude of the ghost peak.
The correction module estimates a difference in an intensity of the target peak and an intensity of the ghost peak, and adjusts the IQ difference to increase the difference in intensities. The IQ corrector circuit receives an in-phase reference signal from the transmitter circuit along an in-phase channel and a quadrature reference signal from the transmitter circuit along a quadrature channel. The IQ difference may be at least one of: (i) a difference between a phase of the in-phase channel and the quadrature channel; and (ii) a difference between a gain of the in-phase channel and a gain of the quadrature channel. In an embodiment, the selected location of the target is within a maximal range of the radar system.
In an embodiment, the digital signal processor provides at least one of a range and a Doppler frequency of an object using the calibrated radar system and providing the at least one of the range and the Doppler frequency to an autonomous driving system of a vehicle in order to provide a signal that the autonomous driving system may be used to maneuver the vehicle with respect to the target.
In yet another exemplary embodiment, a vehicle is disclosed. The vehicle includes a radar system. The radar system includes a transmitter circuit that transmits a source signal at a target at a selected location from the radar system, a receiver circuit for receiving a reflection of the source signal from the target, wherein the receiver circuit includes an in-phase channel and a quadrature channel, respectively, an IQ corrector circuit that provides an IQ difference between the in-phase channel and the quadrature channel, a digital signal processor for obtaining a range space for the echo signal that includes a target peak corresponding to the target, wherein the range space includes a ghost peak resulting from the IQ difference between the in-phase and quadrature channels, a correction module that adjusts the IQ difference at the IQ corrector circuit to reduce an amplitude of the ghost peak, and a driving system of the vehicle that maneuvers with respect to an object detected using the radar system, wherein the calibration of the radar system increases an accuracy of a radar signal obtained using the radar system.
The correction module estimates a difference in an intensity of the target peak and an intensity of the ghost peak, and adjusts the IQ difference to increase the difference in intensities. The IQ corrector circuit receives an in-phase reference signal from the transmitter circuit along an in-phase channel and a quadrature reference signal from the transmitter circuit along a quadrature channel. The IQ difference may be at least one of: (i) a difference between a phase of the in-phase channel and the quadrature channel; and (ii) a difference between a gain of the in-phase channel and a gain of the quadrature channel. In an embodiment, the selected location of the target is within a maximal range of the radar system.
In an embodiment, the digital signal processor provides at least one of a range and a Doppler frequency of an object using the calibrated radar system and providing the at least one of the range and the Doppler frequency to an autonomous driving system of a vehicle in order to provide a signal that the autonomous driving system may be used to maneuver the vehicle with respect to the target.
The above features and advantages, and other features and advantages of the disclosure are readily apparent from the following detailed description when taken in connection with the accompanying drawings.
Other features, advantages and details appear, by way of example only, in the following detailed description, the detailed description referring to the drawings in which:
The following description is merely exemplary in nature and is not intended to limit the present disclosure, its application or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
In accordance with an exemplary embodiment of the disclosure,
The receiver circuit 210 includes electronic components for receiving an echo signal relating to the source signal and calculating an output that provides location and velocity parameters with respect to an object. The receiver circuit 210 includes an IQ corrector 216 that receives a reference signal 205 from the transmitter modulator 204 of the transmitter circuit 202 at the fundamental frequency of the fundamental signal. The reference signal 205 includes an in-phase reference component (I) and a quadrature reference component (Q). The in-phase reference component is received at the IQ corrector 216 along an in-phase channel and the quadrature reference component is received at the IQ corrector 216 along a quadrature channel. The IQ corrector 216 provides a phase shift between the in-phase reference component and the quadrature reference component so that there is a 90 degree phase difference between them. The in-phase reference component is sent from the IQ corrector 216 to frequency multiplier 218 which performs a frequency multiplication on the in-phase reference signal. The frequency-multiplied in-phase signal is sent from frequency multiplier 218 to mixer 220. The quadrature reference component is sent from IQ corrector 216 to frequency multiplier 226 which performs a frequency multiplication on the quadrature reference signal. The frequency-multiplied quadrature signal is sent from frequency multiplier 226 to mixer 228. Ideally, the frequency multipliers 206, 218 and 226 all multiply the fundamental frequency by a same amount.
The receiver circuit 210 also includes a receiver antenna 212 that receives a reflection of the source signal in the form of an echo signal and generates an electrical signal in response. The electrical signal is passed through a low noise amplifier (LNA) 214. An in-phase component of the received electrical signal is sent to mixer 220 and a quadrature component of the received electrical signal is sent to mixer 228.
Mixer 220 combines the in-phase reference component with the in-phase component of the received echo signal to generate a combined in-phase component. Mixer 228 combines the quadrature reference component with the quadrature component of the received echo signal to generate a combined quadrature component. The combined in-phase component passes through low-pass filter 222 for noise reduction and through analog-digital converter 224 which converts the combined in-phase component to an in-phase digital signal. The combined quadrature component passes through low-pass filter 230 for noise reduction and through analog-digital converter 232 which converts the combined quadrature component to a quadrature digital signal. The in-phase digital signal and the quadrature digital signal are input to digital signal processor (DSP) 234.
The DSP 234 transforms the digital signals into k-space. In one embodiment, the DSP 24 performs a Fast Fourier Transform (FFT) on the digital signal to obtain a discrete frequency spectrum representative of the target. The DSP 234 performs the FFT on the in-phase digital signal and the quadrature digital signal. The FFT produces a spectrum in k-space. The spectrum includes peaks at frequencies that coincide with a parameter of the object, such as a range of the object. The peaks may be converted into a range space to produce peaks in range space that indicate a range or location of the target with respect to the vehicle.
The radar system is calibrated by reducing the intensity of the ghost peak 304. In an embodiment, a difference is calculated between the intensity of the target peak 302 and the intensity of the ghost peak 304. The IQ difference between the I-channel and Q-channel at the IQ corrector 216 is then adjusted in order to reduce the difference between the intensities. Referring again to
While the above disclosure has been described with reference to exemplary embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from its scope. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the disclosure without departing from the essential scope thereof. Therefore, it is intended that the disclosure not be limited to the particular embodiments disclosed, but will include all embodiments falling within the scope of the application.
Number | Name | Date | Kind |
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20060022866 | Walton | Feb 2006 | A1 |
20080068251 | Meinecke | Mar 2008 | A1 |
20180156910 | Bharadwaj | Jun 2018 | A1 |
Number | Date | Country | |
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20180252798 A1 | Sep 2018 | US |