METHOD AND SYSTEM FOR RESOLVING RANGE AMBIGUITY
20180306911 · 2018-10-25
Assignee
Inventors
Cpc classification
B61L29/30
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A system for resolving range ambiguity includes a wave generator a modulator for applying a digital signature to a continuous wave to generate a digitally-signed continuous wave, a transmitter for emitting the digitally-signed continuous wave from the ranging system as interrogating radiation towards an object, a receiver for receiving a portion of the interrogating radiation after reflection from the object, a correlator for correlating the portion of the interrogating radiation against the emitted digitally signed continuous wave according to the digital signature, a processor for determining from correlation in the correlator an elapsed time period between emitting the interrogating radiation and receiving the portion of the interrogating radiation after reflection from the object, wherein the processor calculates a range of the object from the transmitter by employing space-time adaptive processing and to determine a velocity of the object from correlation in the correlator using Doppler detection.
Claims
1. A method (400) of resolving range ambiguity in a ranging system (200), wherein the method comprises: (i) generating a continuous wave; (ii) applying a digital signature to the continuous wave to generate a digitally-signed continuous wave (232); (iii) emitting the digitally-signed continuous wave (232) from a transmitter (230) of the ranging system (200) as interrogating radiation towards an object (240); (iv) receiving at a receiver (250) a portion of the interrogating radiation after reflection from the object (240); (v) correlating the portion of the interrogating radiation (242) against the emitted digitally signed continuous wave (232) according to the digital signature; (vi) determining from correlation in (v) an elapsed time period between emitting the interrogating radiation and receiving the portion of the interrogating radiation after reflection from the object (240); (vii) from the elapsed time period and a frequency of the continuous wave, calculating a range of the object (240) from the transmitter (230), employing space-time adaptive processing; and (viii) determining a velocity of the object (240) from correlation in (v) using Doppler detection.
2. The method (400) of claim 1, wherein applying the digital signature further comprises applying a frequency shift waveform.
3. The method (400) of claim 1, wherein applying the digital signature further comprises applying discrete frequency modulation steps.
4. The method (400) of claim 1, wherein applying the digital signature further comprises applying frequency pulses in a frequency range of 76 GHz to 76.5 GHz.
5. The method (400) of claim 1, wherein applying the digital signature further comprises applying frequency pulses exhibiting individual frequencies.
6. The method (400) of claim 1, wherein applying the digital signature further comprises applying a frequency shift waveform exhibiting non-linearity.
7. The method (400) of claim 1, wherein applying the digital signature further comprises forming a specific code.
8. The method (400) of claim 1, wherein correlating further comprises correlating over an entire pulse train (300) of the emitted digitally signed continuous wave (232).
9. The method (400) of claim 1, wherein the method further comprises at least one of: (a) adaptively modifying a length of the digital signature, for example by modifying a total number of step-wise frequency changes employed for the digital signature when employed in the ranging system (200); (b) adaptively modifying magnitudes of frequency changes for step-wise frequency changes associated with the digital signature, for example by scaling the frequency changes from one step to another in the digital signature when employed in the ranging system (200); and (c) adaptively reversing an order of frequency changes of the digital signature employed in the ranging system (200).
10. A system (200) for resolving range ambiguity, wherein the system (200) comprises: (i) a wave generator for generating a continuous wave, and a modulator for applying a digital signature to the continuous wave to generate a digitally-signed continuous wave (232); (ii) a transmitter (230) for emitting the digitally-signed continuous wave (232) from the ranging system (200) as interrogating radiation towards an object (240); (iii) a receiver (250) for receiving a portion of the interrogating radiation after reflection from the object (240); (iv) a correlator for correlating the portion of the interrogating radiation (242) against the emitted digitally signed continuous wave (232) according to the digital signature; (vi) a processor for determining from correlation in the correlator an elapsed time period between emitting the interrogating radiation and receiving the portion of the interrogating radiation after reflection from the object (240); wherein the processor, from the elapsed time period and a frequency of the continuous wave, is operable to calculate a range of the object (240) from the transmitter (230) by employing space-time adaptive processing; and to determine a velocity of the object (240) from correlation in the correlator using Doppler detection.
11. The system of claim 10, wherein the modulator (220) is further configured to apply a frequency shift waveform.
12. The system of claim 10, wherein the modulator (220) is further configured to apply discrete frequency modulation steps.
13. The system of claim 10, wherein the modulator (220) is further configured to apply frequency pulses in a frequency range of 76 GHz to 76.5 GHz.
14. The system of claim 10, wherein the modulator (220) is further configured to apply frequency pulses exhibiting individual frequencies.
15. The system of claim 10, wherein the modulator (220) is further configured to apply a frequency shift waveform exhibiting non-linearity.
16. The system of claim 10, wherein the modulator is further configured to form a specific code.
17. The system of claim 10, wherein the correlator (260) is further configured to correlate over an entire pulse train (300) of the emitted digitally signed continuous wave (232).
18. A computer program products comprising a non-transitory computer-readable storage medium having computer-readable instructions stored thereon, the computer-readable instructions being executable by a computerized device comprising processing hardware configured to execute a method as claimed in claim 1.
Description
DESCRIPTION OF THE DIAGRAMS
[0047] Embodiments of the present disclosure will now be described, by way of example only, with reference to the following diagrams wherein:
[0048]
[0049]
[0050]
[0051]
[0052] In the accompanying diagrams, an underlined number is employed to represent an item over which the underlined number is positioned or an item to which the underlined number is adjacent. A non-underlined number relates to an item identified by a line linking the non-underlined number to the item. When a number is non-underlined and accompanied by an associated arrow, the non-underlined number is used to identify a general item at which the arrow is pointing.
DESCRIPTION OF EMBODIMENTS
[0053] According to a first aspect, there is provided a method of resolving range ambiguity in a ranging system, characterized in that the method comprises: [0054] (i) generating a continuous wave; [0055] (ii) applying a digital signature to the continuous wave to generate a digitally-signed continuous wave; [0056] (iii) emitting the digitally-signed continuous wave from a transmitter of the ranging system as interrogating radiation towards an object; [0057] (iv) receiving at a receiver a portion of the interrogating radiation after reflection from the object; [0058] (v) correlating the portion of the interrogating radiation against the emitted digitally signed continuous wave according to the digital signature; [0059] (vi) determining from correlation in (v) an elapsed time period between emitting the interrogating radiation and receiving the portion of the interrogating radiation after reflection from the object; [0060] (vii) from the elapsed time period and a frequency of the continuous wave, calculating a range of the object from the transmitter, employing space-time adaptive processing; and [0061] (viii) determining a velocity of the object from correlation in (v) using Doppler detection.
[0062] The method is of advantage in that the method requires spreading transmitted power over a relatively smaller bandwidth by employing the digitally-signed continuous wave, for example implemented as a frequency step-wise coded continuous wave.
[0063] As a result, it is feasible to relax performance of a phase locked loop (PLL) employed in the ranging system, due to a relatively smaller bandwidth that is employed in operation, and to avoid range ambiguity, for example which potentially arises due the performance limitations of the PLL.
[0064] It will be appreciated that if a single target is included in a clutter-free environment, a correlator of a ranging system is able, with relative ease, to estimate a range of the single target and its associated Doppler characteristics. However, if the aforementioned environment is a dense target scenario, or there are a plurality of targets obscured by clutter, for example various forms of round reflection of radar radiation, then a processor capable of providing a sophisticated tracking framework is advantageously employed in embodiments of the present disclosure.
[0065] Optionally, in the method, applying the digital signature further comprises applying a frequency shift waveform.
[0066] Optionally, in the method, applying the digital signature further comprises applying discrete frequency modulation steps. More optionally, in the method, applying the digital signature further comprises applying frequency pulses in a frequency range of 76 GHz to 76.5 GHz.
[0067] Optionally, in the method, applying the digital signature further comprises applying frequency pulses exhibiting individual frequencies.
[0068] Optionally, in the method, applying the digital signature further comprises applying a frequency shift waveform exhibiting non-linearity.
[0069] Optionally, in the method, applying the digital signature further comprises forming a specific code.
[0070] Optionally, in the method, correlating further comprises correlating over an entire pulse train of the emitted digitally signed continuous wave.
[0071] Optionally, the method includes at least one of: [0072] (a) adaptively modifying a length of the digital signature, for example by modifying a total number of step-wise frequency changes employed for the digital signature when employed in the ranging system; [0073] (b) adaptively modifying magnitudes of frequency changes for step-wise frequency changes associated with the digital signature, for example by scaling the frequency changes from one step to another in the digital signature when employed in the ranging system; and [0074] (c) adaptively reversing an order of frequency changes of the digital signature employed in the ranging system.
[0075] According to a second aspect, there is provided a system for resolving range ambiguity, characterized in that the system comprises: [0076] (i) a wave generator for generating a continuous wave, and a modulator for applying a digital signature to the continuous wave to generate a digitally-signed continuous wave; [0077] (ii) a transmitter for emitting the digitally-signed continuous wave from the ranging system as interrogating radiation towards an object; [0078] (iii) a receiver for receiving a portion of the interrogating radiation after reflection from the object; [0079] (iv) a correlator for correlating the portion of the interrogating radiation against the emitted digitally signed continuous wave according to the digital signature; [0080] (vi) a processor for determining from correlation in the correlator an elapsed time period between emitting the interrogating radiation and receiving the portion of the interrogating radiation after reflection from the object; wherein the processor, from the elapsed time period and a frequency of the continuous wave, is operable to calculate a range of the object from the transmitter by employing space-time adaptive processing; and to determine a velocity of the object from correlation in the correlator using Doppler detection.
[0081] Optionally, the processor is operable to compute the elapsed time period.
[0082] Optionally, in the system, the modulator is further operable to apply a frequency shift waveform.
[0083] Optionally, in the system, the modulator is further operable to apply discrete frequency modulation steps. More optionally, in the system, the modulator is further operable to apply frequency pulses in a frequency range of 76 GHz to 76.5 GHz.
[0084] Optionally, in the system, the modulator is further operable to apply frequency pulses exhibiting individual frequencies.
[0085] Optionally, in the system, the modulator is further operable to apply a frequency shift waveform exhibiting non-linearity.
[0086] Optionally, in the system, the modulator is further operable to form a specific code.
[0087] Optionally, in the system, the correlator is further operable to correlate over an entire pulse train of the emitted digitally signed continuous wave.
[0088] According to a third aspect, there is provided a computer program products comprising a non-transitory computer-readable storage medium having computer-readable instructions stored thereon, the computer-readable instructions being executable by a computerized device comprising processing hardware to execute a method pursuant to the first aspect.
[0089] In overview, referring to
[0090] Referring to
[0091] Referring next to
[0092] In an example, the transmitter 230 and the receiver 250 include an array of antenna elements for emitting the digitally signed continuous wave 232, namely the interrogating radiation, and receiving the reflected continuous wave 242, respectively. Optionally, a same array of antenna elements are optionally employed both for emitting the digitally signed continuous wave 232 and also for receiving the reflected continuous wave 242.
[0093] The ranging system 200 also employs in operation a correlator 260 that is operable to correlate the reflected continuous wave 242 against the emitted digitally signed continuous wave 232 according to the digital signature. The ranging system 200 further employs in operation a processor 270 that is operable to determine an elapsed time period between emitting and receiving and, from the elapsed time period and a frequency of the continuous wave, to calculate the range of the object 240 from the transmitter 230.
[0094] In the present disclosure, the digitally signed continuous wave 232, emitted by the transmitter 230, is mutually different from the conventional interrogating radiation, as shown in
[0095] As aforementioned, the modulator 220 is operable to apply the digital signature to the continuous wave. Specifically, the modulator 220 of the present disclosure is operable to apply the digital signature to the continuous wave generated by the wave generator 210, such that the transmitter 230 emits the digitally signed continuous wave 232 as interrogating radiation. In an example, the modulator 220 is operable to apply a frequency-shift waveform, namely constituting the digitally signed continuous wave 232 as the interrogating radiation. Moreover, the modulator 220 is optionally adapted to apply discrete frequency modulation steps in order to achieve the frequency-shift waveform.
[0096] As aforementioned, the digitally signed continuous wave 232, as interrogating radiation, is associated with the pulse train having pulses exhibiting individual frequencies, namely temporally changed in frequency step-wise manner. In an example, the modulator 220 is operable to apply frequency pulses exhibiting individual frequencies. Moreover, the modulator 220 is also operable to apply a frequency-shift waveform exhibiting non-linearity. Furthermore, the modulator 220 is further operable to form a specific code. The specific code is associated with the individual frequencies of the pulse train that constitute the digitally signed continuous wave 232.
[0097] In an embodiment, the modulator 220 is optionally operatively coupled to the processor 270 for applying the digital signature to the continuous wave. The processor 270 is optionally advantageously implemented as one or more reduced instruction set computers (RISC), or an array of such RISC. The processor 270 is optionally operable to execute one or more software products, including computer instructions, which enable the digital signature to be applied to the continuous wave.
[0098] As aforementioned, the correlator 260 is operable to correlate the reflected continuous wave 242 against the emitted digitally signed continuous wave 232 according to the digital signature. Specifically, the correlator 260 is operable to correlate over an entire pulse train of the emitted digitally signed continuous wave 232 against the reflected continuous wave 242 according to the digital signature. For example, the correlator 260 optionally employs a match filter, which is operable to correlate according to the digital signature, over the entire pulse train. Thereafter, the processor 270 is operable to determine the elapsed time between emitting and receiving and, from the elapsed time and frequency of the continuous wave, calculate the range of the object 240 from the transmitter 230. As mentioned above, the processor 270 is optionally a computer and is operable to execute one or more software products, for example for implementing one or more algorithms. Therefore the processor 270 is optionally operable to execute algorithms capable of processing an elapsed time period and a frequency of the continuous wave to calculate the range of the object 240 from the transmitter 230.
[0099] Optionally, alternatively, the correlator 260 is operable to correlate temporal sub-portions of the reflected continuous wave 242 against sub-portions of the emitted digitally signed continuous wave 232 according to the digital signature. Specifically, the correlator 260 is operable to correlate over sub-portions of an entire pulse train of the emitted digitally signed continuous wave 232 against sub-portions of the reflected continuous wave 242 according to the digital signature; such an approach reduces an amount of computing power required to perform correlation for each sub-portion, such that grouped consecutive correlation of the sub-portions is used for indicating that a correlation match has been identified. Such an approach potentially reduces computing effort required, enabling embodiments of the present disclosure to be implemented in a more cost-effective manner, for example important in cost-sensitive applications such as vehicle-mounted automatic braking and autonomous steering apparatus.
[0100] Referring next to
[0101] In an embodiment, the pulse train 300 includes frequency pulses 302, 304, 306, 308 in a frequency range of 76 GHz to 76.5 GHz. For example, the modulator 220 of the ranging system 200, as shown in
[0102] Although, the pulse train 300 is shown to include frequency pulses 302, 304, 306, 308 in a frequency range of 76 GHz to 76.5 GHz, it will be appreciated that frequency pulses ranging optionally include higher or lower frequency limits. For example, the frequency pulses ranging for the pulse train 300 are optionally in a frequency range of 76 GHz to 76.25 GHz, or in a frequency range of 76 GHz to 77 GHz.
[0103] The ranging system 200, elucidated in the foregoing with reference to
[0110] In one embodiment, the processor 270 of the ranging system 200 is further adapted to employ space-time adaptive processing. As aforementioned, the ranging system 200 is optionally employed on a moving platform, such as an on-vehicle radar system); particularly, in such a situation, the processor 270 is adapted to employ space-time adaptive processing. In other words, operating parameters of the processor 270 of the ranging system 200 are varied depending a nature of signals being received in operation from a region of interest (ROI), in an adaptive manner; for example, when the ranging system 200 is vehicle-mounted, varying road conditions in front of a vehicle can vary in complexity when driving from a rural road environment into a complex urban road environment or a complex motorway road environment (for example, a nature of the signature can be varied depending upon changes in the region of interest (ROI)). The space-time adaptive processing enables signal component arising from clutter within the region of interest can be filtered away; such clutter is potentially caused by ground reflections; such filtering enables range data to be extracted pertaining to moving objects with respect to a moving platform (for example a road vehicle chassis, airframe or similar) that is employed with the ranging system 200. The space-time adaptive processing enables order-of-magnitude sensitivity improvements for range detection to be achieved. Moreover, the processor 270 is operable to determine, namely to compute, a velocity of the object 240 from the correlation performed between the reflected continuous wave 242 and the emitted digitally signed continuous wave 232 according to the digital signature, for example by using Doppler detection.
[0111] Referring next to
[0112] At a step 402, a continuous wave is generated.
[0113] At a step 404, a digital signature is applied to the continuous wave from the step 402.
[0114] At a step 406, the digitally signed continuous wave generated in the step 404 is emitted as interrogating radiation from a transmitter towards an object.
[0115] At a step 408, a portion of the emitted continuous wave, namely a portion of the interrogating radiation, is received at a receiver after reflection from the object.
[0116] At a step 410, the portion of the reflected continuous wave is correlated against the emitted digitally signed continuous wave according to the digital signature.
[0117] At a step 412, an elapsed time period is determined between emitting the interrogating radiation and receiving a reflection of the interrogating radiation.
[0118] At a step 414, the range of the object from the transmitter is calculated from the elapsed time period and frequency of the continuous wave.
[0119] The steps 402 to 414 are only illustrative and other alternatives can also be provided where one or more steps are added, one or more steps are removed, or one or more steps are provided in a different sequence without departing from the scope of the claims of the present disclosure. For example, the method 400 further includes employing space-time adaptive processing. Moreover, the method 400 includes determining a velocity of the object from the correlation using Doppler detection. The application of the digital signature further includes forming a specific code. In an example, the application of the digital signature on the continuous wave includes application of a frequency shift waveform. Alternatively, the application of the digital signature on the continuous wave includes application of discrete frequency modulation steps, namely frequency modulation applied in a step-wise manner. In an example, the application of the digital signature includes application of frequency pulses in a frequency range of 76 GHz to 76.5 GHz. Moreover, the application of the digital signature includes application of frequency pulses exhibiting individual distinct frequencies. Furthermore, the application of the digital signature includes application of a frequency shift waveform exhibiting non-linearity. Moreover, the correlation of the reflected continuous wave against the emitted digitally signed continuous wave includes correlation over an entire pulse train of the emitted digitally signed continuous wave.
[0120] According to another aspect, the present disclosure further provides a computer program product comprising a non-transitory computer-readable storage medium having computer-readable instructions stored thereon, the computer-readable instructions being executable by a computerized device comprising processing hardware to execute the method 400 described hereinabove.
[0121] Optionally, the ranging system 200 applies the digital signature to the continuous wave to generate then interrogating radiation that is emitted towards the region of interest (ROI), such that the ranging system 200, for subsequent interrogations of the region of interest (ROI) adaptively modifies the digital signature as a function of range and/or velocity information determined from the portion of the interrogating radiation after reflection from an object in the region of interest (ROI). Such modification of the digital signature includes at least one of: [0122] (a) adaptively modifying a length of the digital signature, for example by modifying a total number of step-wise frequency changes employed for the digital signature when employed in the ranging system 200; [0123] (b) adaptively modifying magnitudes of frequency changes for step-wise frequency changes associated with the digital signature, for example by scaling the frequency changes from one step to another in the digital signature when employed in the ranging system 200; and [0124] (c) adaptively reversing an order of frequency changes of the digital signature employed in the ranging system 200.
[0125] Such modification of the digital signature is capable of modifying selectivity or object discrimination of the ranging system 200, when in operation, when interrogating the region of interest (ROI).
[0126] It will be appreciated that if a single target were included in a clutter-free environment, a correlator of the ranging system 200 would be able, with relative ease, to estimate a range of the single target and its associated Doppler characteristics. However, if the aforementioned environment were a dense target scenario, or there were a plurality of targets obscured by clutter, for example various forms of round reflection of radar radiation, then a processor capable of providing a sophisticated tracking framework would be advantageously employed in the ranging system 200, when implementing embodiments of the present disclosure.
[0127] Modifications to embodiments of the present disclosure described in the foregoing are possible without departing from the scope of the invention as defined by the accompanying claims. Expressions such as including, comprising, incorporating, consisting of, have, is used to describe and claim the present invention are intended to be construed in a non-exclusive manner, namely allowing for items, components or elements not explicitly described also to be present. Reference to the singular is also to be construed to relate to the plural. Numerals included within parentheses in the accompanying claims are intended to assist understanding of the claims and should not be construed in any way to limit subject matter claimed by these claims.