With the term clutter, one indicates all the undesired echoes received by a radar, usually constituted by the reflection of the electro-magnetic energy upon natural elements (mountains, precipitations, etc.) or artificial (buildings, architectural structures, etc.) of the ambient surrounding the target. Therefore, the clutter constitutes a disturbance of the additive type (besides the thermal noise and the jamming) that superposes to the useful signal identifying instead the target to be detected.
The problem of filtering the clutter in the marine field is well known in literature: when one uses a radar in the X band with medium or high range resolution (i.e. 5-10 meters), the sea clutter shows itself in the form of a multitude of temporary peaks or “spikes” of the sea surface visualized on the console of the operator. This clutter depends on the sea state and the grazing angle of the radar. This phenomenon has an effect of producing radar echoes that have the same behaviors as small targets. The occurrence rate of this effect show an increment as soon as the sea roughness state increases, and such an effect produces in the detection a white background that cannot be filtered by the usual tracking processing.
In particular, concerning the spikes one has the following [1,2]:
In
In
Patent document U.S. Pat. No. 3,699,573 A [3] describes a canonical method for the correlation of plots on subsequent scans or “scan to scan correlator”, wherein a hypothetical maximum speed is used which can be reached by targets of interest, which is fixed “a priori” and which cannot solve in an effective way the problem of the sea spikes, since the correlation windows generated in such a way are too large and the probability to have sea spikes in the so determined windows in both scans is such not able to filter in a decisive way the sea spikes.
Patent document US 2010/026559 A1 [4] describes a method to discriminate between target and clutter to improve “a priori” the detection performances of the target. For all the range cells, even if they do not generate plots, the method tries to eliminate the clutter without necessarily using a coherent radar: one has to resort to the estimation of the relative speed between target and clutter that is obtained by the phase difference of the radar signal along the range in the absence of a univocal phase reference between transmitter and receiver. The method described, that is applied entirely in the signal processing, presents however unsatisfactory results in the case of sea spikes.
Patent document U.S. Pat. No. 4,972,194 A [5] describes a method of the estimation of the Doppler speed by the calculation of the phase difference between echoes of a burst of subsequent transmitted impulses to the end of determining the average Doppler speed of the clutter to per calibrate a Doppler filter that carries out the cancelation of such a clutter in the radar signal of the subsequent burst, obtaining results that are still unsatisfactory in the case of sea spikes. This method is applied entirely in the signal processing as well.
These known methods are not effective enough in the filtering of the sea spikes. There is a need for a method that, by processing the radar information in a different way, succeeds to obtain a better final filtering, i.e. to discriminate the detections of the various naval vessels from those of the sea spikes.
According to an aspect of the present disclosure, a method for filtering the clutter that solves the problems connected to the sea spikes and overcomes the inconveniences of the prior art is provided.
In particular, according to an aspect of the present disclosure, a method is provided for determining an estimate of an absolute radial speed of radar plots, covering a certain radar area in subsequent scans of duration Tscan wherein a radar transmits a signal and listens to return echoes during a sweep time interval, the radar comprising i) a coherent transmitter and a coherent receiver with a coherent oscillator providing a phase reference, ii) a signal processor, and iii) a radar extractor that on a basis of detected echoes, produced by objects close to a waterbody surface or by the waterbody surface itself, extracts plots characterized by range and azimuth, the method being comprising a quantization of the certain radar area into a plurality of elementary radar cells, in particular having dimensions comparable to a range radar resolution, and an execution of the following steps:
Steps A1-A4 are performed downstream of the radar extractor and not in the signal processing (as for example in [4] and [5]), decreasing the computational load with respect to this type of solutions.
According to an aspect of the present disclosure, the calculation of the instantaneous absolute radial speeds and radial directions is performed for each of the radar cells or for those radar cells that have generated detection in the signal processor, or have generated a plot in the radar extractor.
According to an aspect of the present disclosure, the radar is a radar with a solid-state transmitter for a monitoring of waterbodies and VTS (Vessel Traffic Service) applications.
According to an aspect of the present invention, said elementary radar cells have dimensions comprised between 0.5 times and 2 times the radar range resolution.
According to another aspect of the present disclosure, a coherent radar is provided, in particular for the detection of objects on waterbodies, that covers a certain radar area in subsequent scans of duration Tscan wherein the coherent radar transmits a signal and listens to return echoes during a sweep time interval and has a coherent transmitter and a coherent receiver, a signal processor, a radar extractor that extracts plots characterized by range and azimuth, and electronic processing means configured to execute the steps of the method for determining an estimate of the radial speed of radar echoes according to the present disclosure.
According to an aspect of the present disclosure, the coherent radar comprises a console that includes a display for a visualization of radar detections, wherein a signal filtered by said electronic processing means is visualized.
According to an aspect of the present disclosure, said electronic processing means are constituted by the signal processor.
The subject-matter of present disclosure will be now described by way of illustration but not by way of limitation, with particular reference to the figures of the annexed drawings, wherein:
The method according to the present disclosure for the filtering of the sea clutter can be separated in two parts:
These two functions according to the present disclosure are preferably to be applied in coherent radars with solid state transmitter for the sea monitoring and the Vessel Traffic Service (VTS) applications.
The present disclosure is useful for reducing the effects of the sea spikes and filtering the radar echoes without negatively influencing the correct target detection.
The estimation of the radial speed is based on the coherence of the radar (that for VTS applications can be obtained by nowadays technology of the radars with solid-state transmitter), and is subdivided into the following functions:
In order to limit the processing load without influencing the performances, it is possible to carry out, for each radar cell, only the calculation of the phase difference, whilst the calculation of the radial speed and its average can be performed only for the radar cells that have generated a plot after the extractor.
The conventional method for the estimation of the radial speed based on Doppler filters according to the prior art is not effective when sea spikes are present, because the speed of the targets to be detected can be very close to those of the sea spikes, i.e. greatly much smaller than the resolution permitted by the Doppler filter.
The other function, i.e. the scan-to-scan correlation with the use of the radial speed, is carried out at the level of the plots extraction (after the radar extractor), as follows:
R
b
=R−ν·T
scan
On the basis of the tests performed by the Inventors, the estimation of the radial speed is necessary to obtain the results of the filtering method of the present disclosure, owing to the fact that, in the absence of such a data, the windows come out to be too large in range and the likelihood that at the previous scan another spike is present is very high, and therefore the filter is ineffective in these conditions.
On the basis of the radar type and the radar site, the following parameters are for example defined in the method according to the present disclosure:
The functionality permitted by the method of the present disclosure has been tested on a solid-state coherent radar (the coherence is in any case essential to detect the absolute phase and estimate the absolute radial speed), in different sites and conditions of the sea with the following parameters:
The application of the method according to the present disclosure has produced the following results:
In
As above evidenced, the nowadays methods do not allow an effective filtering of the spikes, because for the sea applications non-coherent magnetron radar are utilized.
The non-coherent radars do not allow the estimation of the absolute radial speed, essential to obtain an effective filtering according to the method described by the present disclosure. The described method overcomes the limitations by utilizing a coherent solid-state radar of last generation, but it is obviously applicable to any future technology providing the coherence.
The present disclosure concerns the blocks “Phase difference”, “Doppler velocity” and “Scan-to-scan correlation”.
The method described by the present disclosure overcomes the limitations of use of the standard plots correlation window (utilized in [3]), that is not based on the estimation of the radial speed of the plots, but on the maximum absolute speed that a target can achieve, that is fixed “a priori”. The use of the standard correlation windows does not solve the problem of the large number of false alarms generated by the sea spikes in case of sea state force 3 or higher, since the windows is too large in range and the probability to have a plot due to a sea spike within the window is very high. The range amplitude of the correlation window utilized in the present disclosure depends instead by the accuracy of the estimation of the absolute radial speed and is much smaller than the standard one (
For further clarity,
R
b
=R
n
−ν·T
scan
LR
a=3·√{square root over (σR2+σν2·Tscan2)}
LR
a
′=V
max
·T
scan+ε
The estimation of the radial speed ν by the radar is positive in case of moving away of the object that caused the radar echo and negative in case of coming closer to the same. In
By way of example, one compares the range width of the correlation window of the present disclosure with that utilized according to the standard method of [3]; the following values of the quantities determining such widths are considered:
One obtains in the standard case:
LR
A
′=V
max
·T
scan+3·σR=20·6+3·3=129 m
One obtains in the case of the method of the present disclosure:
LR
A=3·√{square root over (σR2+σν2·Tscan2)}=3·√{square root over (9+0.09·36)}=10.5 m
Hence, one achieves the utilization of a correlation window having an area that is one order of magnitude smaller.
The present disclosure distinguishes itself from the prior art solutions based on the use of Doppler speed in the signal processing (for example [4] and [5]), owing to the fact that such an estimation is calculated and utilized after the radar extractor, which requires a computational load that is remarkably smaller. Another difference with respect to [4] and [5] concerns the use made of the Doppler speed estimation: it determines the correlation of the plots of subsequent antenna scans without intervening in the detection step.
The method of the present disclosure equally applies to any other spike caused by liquid bodies, for example river spikes or the like.
Aspects of the present disclosure have been above described and some modifications of the present disclosure have been suggested, but it should be understood that those skilled in the art can make variations and changes, without so departing from the related scope of protection, as defined by the following claims. All patents and publications mentioned in the specification are indicative of the levels of skill of those skilled in the art to which the disclosure pertains. All references cited in this disclosure are incorporated by reference to the same extent as if each reference had been incorporated by reference in its entirety individually.
Number | Date | Country | Kind |
---|---|---|---|
RM2011A000690 | Dec 2011 | IT | national |
The present disclosure concerns a method for determining an estimate of radial speed of radar echoes by using Doppler information and claims the priority to Italian patent application number RM2011A000690, filed on Dec. 28, 2011, which is incorporated herein by reference in its entirety. The present application is also related to U.S. application Ser. No. ______ entitled “Method for Filtering of Clutter by Scan-to-Scan Correlation Using Doppler Information” and filed on even date herewith, Attorney Docket No. P1143-US, which is also incorporated herein by reference in its entirety. More in detail, the present disclosure concerns a method of post-processing of the radar data that uses the information of the absolute Doppler speed as obtained by the coherent elaboration of the input data.