AU654547B2 - Azimuth range velocity display and cursor for use therewith - Google Patents
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- AU654547B2 AU654547B2 AU16074/92A AU1607492A AU654547B2 AU 654547 B2 AU654547 B2 AU 654547B2 AU 16074/92 A AU16074/92 A AU 16074/92A AU 1607492 A AU1607492 A AU 1607492A AU 654547 B2 AU654547 B2 AU 654547B2
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Description
40530AU HKS:MAH:PFB 6 5 57 R Z T Regulation 3.2
AUSTRALIA
Patents Act 1990 COMPLETE SPECIFICATION FOR A STANDARD PATENT
ORIGINAL
Name of Applicant: THE COMMONWEALTH OF AUSTRALIA Actual Inventor: .STEVEN PAUL TUCKER L -1 L CL, 6,- EC).
Address for Service: P 0 COLLISON CO.,117 King William Street, Adelaide, S.A. 5000 'T 0 Invention Title: AZIMUTH RANGE VELOCITY DISPLAY AND CURSOR FOR USE THEREWITH Details of Associated Provisional Applications: AUSTRALIAN Patent Application No. PK6001 Dated 6th May 1991 AUSTRALIAN Patent Application No. PK6000 Dated 6th May 1991 The following statement is a full description of this invention, including the best method of performing it known to us: The invention disclosed herein relates to a method and apparatus for displaying radar information. Further, a cursor or template is disclosed for use with this displayed radar information. The invention is expected to be useful with Frequency Modulated Continuous Wave radar systems employing waveform agility. That is, systems employing variable radar carrier frequencies and waveform repetition rates. One application for the invention is expected to be radar systems using Over-the-Horizon-Radars.
Frequency Modulated Continuous Wave radar systems make use of the property that signals of slightly different frequencies give rise to beat frequencies. Radar return signals reflected from a moving target will be shifted in frequency due to the velocity of the target. This frequency shift is due to the phenomena known as the Doppler effect. Doppler shifted radar return signals give rise to beat frequencies. These can be detected and converted into a value of the velocity of the radar target. However, due to the nature of the generation of the beat frequencies the beat frequency does not provide information as to whether the target is coming toward the radar or moving j.
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away. Previous radar systems have required measurements to be made of S" 20 radar returns of successive radar dwells. The proposed invention is intended to provide a method of detekmining the velocity of a target and whether a target is closing or retreating from the radar with minimal computation of radar •returns of successive radar dwell.
This invention is useful with radars employing waveform agility. Such a radar I 25 will employ variable waveform repetition frequency and variable carrier frequency. These waveform parameters will be constant for each radar dwell but will vary intentionally from dwell to dwell. Waveform agility is desirable for many reasons including: a) blind-speed unmasking to reveal targets masked by radar clutter 30 return signal, b) countering radar jamming measures, and c) avoidance of other users of the frequency spectrum.
After signal processing, the radar returns are displayed on a visual display means as video data. Employing waveform agility affects the video data which is displayed on a visual display means. It has been known to display the video data in terms of range, azimuth and Doppler space. A Doppler frequency within the Doppler space for fixed waveform repetition frequency and fixed carrier frequency can be considered as a velocity of a detected target. The Doppler frequency is effectively the velocity of a target and corresponds to the shift in frequency of the return signal from t'-e transmitted signal. The term "Doppler frequency" will be used herein to indicate Doppler space data displayed in terms of velocity, or Doppler space data that can be displayed in terms of velocity. In the case of OTHR the video data is known to be displayed in terms of Azimuth, with nested range versus Doppler frequency.
To faci'.ate operator confirmation of tracks, a series of successive radar scans are presented in a cyclically animating sequence. This also has the advantage of combating target fading by allowing visual integration. For fixed waveform repetition frequency and carrier frequency the Doppler frequency axis of a display can be interpreted as velocity with respect to the radar.
Targets with a constant radial velocity with respect to the radar will maintain a fixed position in the Doppler space.
"'"The stationarity of the targets in Doppler space is effected by factors other than target movement. If the waveform parameters change then this stationarity is lost. In practice, the stationarity will only exist for a single dwell as the •waveform parameters can change from dwell to dwell. Consequently, a target will appear to have a varying Doppler frequency and the target display position will jitter on the display means. The variations in the radar parameters lead to an ambiguous velocity range Vamb. This can be written as: Vamb (c X WRF) a (2 X f) Where: 30 Vamb ambiguous velocity; 30 Vamb ambiguous velocity; c the velocity of light; 3 WRF waveform repetition frequency; and f carrier frequency.
As can be seen from the above equation, changes in the ratio of waveform repetition frequency to carrier frequency result in changes in the ambiguous velocity range. If the carrier frequency is varied then the Doppler frequency varies. Previously, if the waveform repetition frequency varies and the Doppler frequency remains constant then the talget position on a display will vary. This is because the ambiguous velocity will vary and previously the display screen window size was constant for a specific ambiguous velocity.
As mentioned above, Over the Horizon Radar systems make use of the propagation characteristics of ionospheric propagation of radio waves. So the received radar returns are subject to the known characteristics of ionospheric propagation. As such it is not uncommon for a radar return to be subject to fading and other atmospheric effects. The above is compounded with radar returns travelling via E layer, F layer or mix-mode paths. As a result, it can be very difficult to determine whether a radar return is a target or a spurious return.
Herein we describe a preferred display scheme, Azimuth Range Velocity Display, suitable for Over the Horizon Radar systems. In this particular display format, as exhibited in one preferred form, 10 azimuth regions form a vertical axis of a plot each with 20 range cells also vertically aligned. The horizontal axis against which the range and azimuth of a radar return is plotted are velocity. It will be appreciated that the invention is not to be limited to the particular preferred display scheme just mentioned.
25 It is an object of the invention to alleviate any one of the mentioned problems or at least provide the public with a useful alternative.
The invention may be said to reside in a method of displaying and determining the velocity associated with radar returns of frequency modulated continuous *°*°wave radars by means of a processor means including determining a velocity 30 for each radar return from a detected beat frequency associated with received radar returns, displaying upon visual display means for successive radar dwells one or more major plots indicating range, azimuth and velocity of any 4 radar returns, each major plot being characterised by a velocity axis with a maximum and a minimum display velocity, the major plots being composed of minor plots indicating range, azimuth and velocity of any radar return and characterised by a velocity axis that extends between zero velocity and the magnitude of greatest possible velocity corresponding to the range of the detected beat frequencies, the minor plots being repeated end upon end with respect to the velocity axes whilst the velocity displayed is not larger than the said maximum display velocity or smaller than the said minimum display velocity, the transition from one of the minor plots to an adjacent minor plot corresponding with zero velocity, and the method being such that between successive radar dwells radar returns on one side of the said zero velocity remain substantially in the same display position whereas associated radar returns displayed on the other side of the zero velocity do not remain substantially in the same position.
Preferably the method is further characterised by the processor means providing signal representation of return signal amplitude, and the displaying on the display means one or more plots of radar return iamplitude verses radar return range.
Preferably the method is further characterised by the displaying of some 20 information of the radar returns in a textual format.
•o Preferably the method is further characterised by the radar returns being generated with an Over-the-Horizon-Radar.
Preferably the method is further characterised by displaying a series of successive radar scans in a cyclically animating sequence.
25 Preferably the method is characterised by dividing the maximum value of a display velocity into k consecutive velocity bins, each velocity bin corresponding to a velocity range P, and interpolating the Doppler space data for each dwell into each velocity bin according to: M= (amb Vmax where: M the range of Doppler data for each velocity bin; Vamb the ambiguous velocity; P the region of velocity values for each velocity bin; Vmax the maximum velocity displayed; and the function {arg} is the smallest integer greater than or equal to arg.
In preference, the interpolation of the Doppler data is according to a linear interpolation scheme or a nearest neighbour interpolation scheme.
Preferably the method is characterised by displaying range verses amplitude information of return signals.
Alternatively, the invention may be said to reside in an apparatus for displaying and determining the velocity associated with radar returns of frequency modulated continuous wave radars including processor means adapted to determine a velcocity for each radar return from a detected beat frequency associated with received radar returns, visual display means 15 adapted to display for successive radar dwells one or more major plots indicating range, azimuth and velocity of any radar returns, each major plot being characterised by a velocity axis with a maximum and a minimum display velocity, the major plots being composed of minor plots indicating range, azimuth and velocity of any radar return and characterised by a velocity axis that extends between zero velocity and the magnitude of greatest possible velocity corresponding to the range of the detected beat frequencies, the minor plots being repeated end upon end with respect to the velocity axes .whilst the velocity displayed is not larger than the said maximum display velocity or smaller than the said minimum display velocity, the transition from i 25 one of the minor plots to an adjacent minor plot corresponding with zero "°.*"velocity, and the apparatus being adapted so that between successive radar dwells radar returns on one side of the said zero velocity remain substantially in the same display position whereas associated radar returns displayed on the other side of the zero velocity do not remain substantially in the same position.
6 Preferably the apparatus is characterised by the processor means provicing signal representation of return signal amplitude, and the display means displays one or more plots of radar return amplitude verses radar return range.
Preferably the apparatus is characterised by the processor means providing infromation to the display means such that information of radar returns is displayed in a textual format.
Preferably the apparatlu" is characterised by the radar means being an Overthe-Horizon-Radar.
Preferably the apparatus is characterised by the processor means providing infromation to the display means such that a series of successive radar scans are displayed in a cyclically animating sequence.
Preferably the apparatus is characterised by the processor means being adapted to divided the maximum value of a display velocity into k consecutive velocity bins, each velocity bin corresponding to a velocity range P, and Doppler space data for each dwell being interpolated into each velocity bin according to: M= (Vamb X where: M the range of Doppler data for each velocity bin; 20 Vamb the ambiguous velocity; P the region of velocity values for each velocity bin; Vmax the maximum velocity displayed; and the function {arg} is the smallest integer greater than or equal to arg.
Preferably the apparatus is characterised by the processor means being adapted to interpolate the Doppler data according to linear interpolation scheme or nearest neighbour interpolation scheme.
7 Preferably the apparatus is characterised by the processor means being adapted to provide to the display means range verses amplitude information of return signals and the display means being adapted to display this range verses amplitude information.
Alternatively, the invention resides in a method of displaying and determining the velocity associated with radar returns of frequency modulated continuous wave radars by means of a processor means including determining a velocity for each radar return from a detected beat frequency associated with received radar returns, displaying upon visual display means for successive radar dwells one or more major plots indicating range, azimuth and velocity of any radar returns, each major plot being characterised )y a velocity axis with a maximum and a minimum display velocity, the major plots being composed of minor plots indicating range, azimuth and velocity of any radar return and characterised by a velocity axis that extends between zero velocity and the magnitude of greatest possible velocity corresponding to the range of the detected beat frequencies, the minor plots being repeated end upon end with respect to the velocity axes whilst the velocity displayed is not larger than the said maximum display velocity or smaller than the said minimum display velocity, the transition from one of the minor plots to an adjacent minor plot corresponding with zero velocity, and the method being such that between successive radar dwells radar returns on one side of the said zero velocity remain substantially in the same display position whereas associated radar returns displayed on the other side of the zero velocity do not remain substantially in the same position, and further characterised for assisting 25 classification of the radar returns by displaying the radar returns on the display means, and displaying predicted radar return positions of a radar return on the display meanswhere the prediction of the position of the radar returns is in °}accordance with radar return azimuth from the antenna and estimates of the heights of the E and F layers.
30 Alternatively, the invention resides in a method for assisting classification of radar returns including displaying the radar returns on display means, displaying predicted radar return positions of a radar return on the display means where the prediction of the position of the radar returns is in accordance with radar return azimuth from the antenna and estimates of the heights of the E and F layers.
8 In preference, the displaying of radar returns is in accordance with the Azimuth Range Velocity Display scheme described herein.
In preference, the radar returns are radar returns from an Over the Horizon Radar.
In preference, for a selected radar return three predicted positions of the radar return are displayed, a first being in accordance with E layer propagation, a second being in accordance with F layer propagation, and a third being in accordance with mix-mode propagation.
In preference, the predicted position of the radar return upon the display means is further controlled by a control device.
In preference, the control device is a trackball, computer mouse, or the like.
In preference, as the control device is moved the predicted position of the radar return is moved upon the display means in accordance with the with radar return azimuth from the antenna and estimates of the heights of the E and F layers.
In preference, any radar return corresponds to a dwell, the predicted positions of the radar returns displayed upon the display means are recalculated assuming a constant velocity for that radar return, and repositioned for each dwell thereby forming an animinated time sequence of predicted position of 20 the radar returns displayed upon the display means.
In a further form the invention may be said to reside in an apparatus for displaying and determining the velocity associated with radar returns of frequency modulated continuous wave radars including processor means adapted to determine a velocity for each radar return from a detected beat frequency associated with received radar returns, visual display means **adapted to display for successive radar dwells one or more major plots indicating range, azimuth and velocity of any radar returns, each major plot being characterised by a velocity axis with a maximum and a minimum display velocity, the major plots being composed of minor plots indicating range, azimuth and velocity of any radar return and characterised by a velocity axis that extends between zero velocity and the magnitude of greatest possible 9 velocity corresponding to the range of the detected beat frequencies, the minor plots being repeated end upon end with respect to the velocity axes whilst the velocity displayed is not larger than the said maximum display velocity or smaller than the said minimum display velocity, the transition from one of the minor plots to an adjacent minor plot corresponding with zero velocity, and the apparatus being adapted so that between successive radar dwells radar returns on one side of the said zero velocity remain substantially in the same display position whereas associated radar returns displayed on the other side of the zero velocity do not remain substantially in the same position, and the processor means being further adapted to predicted radar return positions of a radar return and effect display of the same on the display means where the prediction of the position of the radar returns is in accordance with radar return azimuth from the antenna and estimates of the heights of the E and F layers.
In an alternative form, the invention may be said to reside in an apparatus adapted to assist classification of radar returns including display means adapted to display the radar returns, processor means adapted to predicted radar return positions of a radar return and effect display of the same on the display means where the prediction of the position of the radar returns is in accordance with radar return azimuth from the antenna and estimates of the heights of the E and F layers.
In preference, the display means is adapted to display the radar returns in accordance with the Azimuth Range Velocity Display scheme described herein.
In preference, the radar returns are radar returns from an Over the Horizon Radar.
In preference, the processor means calculates three predicted positions of a selected radar return and effects display of these upon the display means, of the three predicted positions a first being in accordance with E layer propagation, a second being in accordance with F layer propagation, and a third being in accordance with mix-mode propagation.
*S
In preference, the predicted position of the radar return upon the display means is further controlled by a control device.
In preference, the control device is a trackball, computer mouse, or the like.
In preference, as the control device is moved the predicted position of the radar return is moved upon the display means in accordance with the with radar return azimuth from the antenna and estimates of the heights of the E and F layers.
In preference, any radar return corresponds to a dwell, the predicted positions of the radar returns calculated by the processor means and displayed upon the display means are recalculated assuming a constant velocity for that radar return, and repositioned upon the display means for each dwell thereby forming an animinated time sequence of predicted position of the radar returns displayed upon the display means.
The invention will now be described with reference to the accompanying diagram.
FIG. la illustrates a portion of a known display screen format; FIG. lb illustrates the same display as FIG. 1 with a subsequent frame displayed; ""FIG. 2 illustrates a portion of a display screen forming part of the invention; FIG. 3 illustrates in block diagram form an apparatus exhibiting the invention; FIG. 4 illustrates a display screen forming part of the invention; eSS FIG. 5 illustrates radar returns for a series of radar dwells; FIG. 6 is a sketch of illustrating the conical nature of an long antenna array; 2 F FIG. 7 is a sketch of the paths of the radar returns; FIG. 8 is a sketch of the template for a low velocity target; and FIG. 9 is a sketch of the template for a high velocity target showing the characteristic slope.
It will be appreciated that the Figures are for illustraive purposes only and not to be taken as accurate representations.
The illustration shown in FIG. 1 a and FiG. lb are fo. a display of an Over-the- Horizon-Radar svst,m. The horizontal axis 1 is the Doppler frequency. The vertical axis 2 is the azimuth or radar beam data. The vertical ax;s consists of a plurality of beams such as 3, 4 and 5 for example. The range 6 of a target is the vertical component of the display for each radar beam, for example of beam 7. This leads to the name of Azimuth, nested Range versus Doppler.
The problem of Doppler jitter is illustrated by sequential frames of the display of target 8; this is for exemplification purposes only. Note the horizontal shift in target display location.
For a display window of a constant size the abovementioned problems can fully or partly be alleviated. Accordingly, the return signals are plotted in terms of velocity instead of Doppler frequency. For a given radar set-up the carrier frequency and the waveform repetition frequency will vary within set limits.
Consequently, the ambiguous velocity will vary within corresponding limits.
The maximum value of the velocity axis displayed will be set greater than the maximum value of the ambiguous velocity.
With the data in this format then the vertical axis remains the same as for the known format illustrated in FIG. 1. Now referring to FIG. 2, the horizontal axis 9 will now be velocity not Doppler frequency. This leads to the name Azimuth, nested Range versus Velocity.
e To form the display of FIG. 2 the region for the plot is divided into a matrix of cells which can correspond to display pixels. The maximum value of the displayed velocity is divided into a plurality of consecutive discrete velocity bins or cells. The number of velocity bins being k and would be 200 for the embodiment. Each discrete velocity bin will have a corresponding velocity range For each dwell, there is a portion of the Doppler space data corresponding to each discrete velocity bin which can vary from dwell to dwell.
The Doppler space data for each dwell consists of N Doppler data cells. The Doppler data from a given dwell is interpolated into these velocity bins. The range of Doppler data interpolated into each velocity bin can be calculated from: M= Vamb X 2 i where: M the range of Doppler data for each velocity bin; Vamb the ambiguous velocity; P the region of velocity values for each velocity bin; Vmax the maximum velocity displayed; and the function {arg} is the smallest integer greater than or equal to arg.
With the restriction that Vmax Vamb, the range of Doppler data for each velocity bin is always less than the region of velocity values for each velocity bin.
I'*od To prevent data compression, the range of Doppler data for each velocity bin should be greater than the number of Doppler data cells. This is 15 impractical in general. However, some data compression is tolerable in practical circumstances. The number of Doppler data cells in the embodiment was chosen to be 128. The display window size for the velocity axis was chosen to be 200 pixels. This corresponds to the number of velocity bins k being equal to 200. Further, this will generally result in M N.
S
The Doppler data cells can be interpolated into the velocity cells k by various schemes including linear interpolation and nearest neighbour interpolation.
Linear interpolation can be expressed as: V(x) aX b X D(i +1) *h where: D(i) are the Doppler samples; 13 V(x) are the interpolated velocity samples; i x and a b 1.
Nearest Neighbour interpolation or replication is straightforward with the velocity sample being derived from the nearest Doppler cell. The former scheme is more accurate and provides higher video quality but the latter is quicker to implement on digital processing means. The latter scheme can lead to 'soft' striping effect if M>N or discarding of data if N>M.
FIG. 2 also illustrates a target return of a target 10 typical of Over-the-Horizon- Radar returns.
In FIG. 3 the apparatus exhibiting the invention as a whole is illustrated in block diac -am form. This is of an Over-the-Horizon-Radar system such as the Jindalee Over-the-Horizon-Radar developed by the Defence Science and Technology Organisation, Salisbury, South Australia. The apparatus includes a transmitter means 11 adapted to transmit the energy at the desired waveform repetition frequency and carrier frequency. The radar return signals are detected by antenna means 12 which includes RF stages. The antenna means 12 are adapted to supply processor means 13. number ot rar43r return signals may be associated with one radar target; for example an 20 aeroplane in flight often provides three return signals, one for F layer 90990: a propagation, one for E layer propagation, and one for mix-mode propagation.
The processor means 13 are adapted to provide signal representation of the received radar return signals and antenna aperture azimuth. The oL' Vuts of S S• the processing means 13 are further processed by signal processor means 14 which are adapted to provide raw display signals. Velocity of a target is *Ge determined from the beat frequency due to the radar return signal.
*4#S The raw display signals represent azimuth of the antenna aperture, Doppler frequency of any radar return signals and range of any radar return signals.
S S oee The range of a radar return signal is the range or distance from the antenna to the target causing the return signal.
The raw display signals are supplied to the converting means 15 adapted to convert for each radar sweep or dwell the Dcppler frequency signals of any return signals to velocity signals by interpolation. This has been described earlier. The converted raw data is displayed on display means 16. There are display controller means 17 adapted to control the display means 16.
Due to the varying ambiguous velocity the maximum value of any target for any dwell will vary. As illustrated in Fig. 5 the displayed velocity range from the beat frequency will vary. However, a radar return will appear substantially in the same position on one side of the zero line and on the other side will jitter. The is apparent on the right hand side of the line v=0 compared with that on the left hand side. When a series is displayed an operator is able to determine which of the radar returns are true and which are due to the beat frequency. Such a display makes use of visual integration.
The details of the transmitting means and antenna means can be any of the suitable forms known to the art. The display controller means, display means, signal processor means and converting means can be any suitable computer and peripheral hardware known to the art. The invention does not lie within any of the known specific details of any of the above mentioned component parts of the invention but in the combination of those parts and the display of 20 the radar return signals in terms of velocity instead of Doppler frequency.
In FIG. 4 a full video display 18 is illustrated showing the portion illustrated in .i FIG. 2 and other information useful in the use of a radar. This is an exemplary display. As can be seen the full display 18 includes the display 19 of FIG. 2, an overview display 20, radar information 21, received return beam amplitude 25 22 and target information 23.
The display 19 is an enlarged portion of the overview display 20. The overview display 20 allows a radar operator to see all or a large portion of the **"radar return information and then referring to the display 19 obtain detailed information if required. The radar information 21 gives visual indication to a radar operator of the cperating parameters of the radar.
The received return beam amplitude 22 is a plot of the range versus amplitude information of return signals. This can be used to facilhiate recognition of closely space targets.
The display of a velocity range greater than the ambiguous velocity can be achieved by displaying multiple copies of the single ambiguity. These copies are not identical, but should be shifted one range cell for each multiple of the ambiguous velocity away from zero. This is due to the range-Doppler coupling inherent in the processed data. The range shift can be ignored for display purposes and accounted for in the algorithms that interpret peak locations and overlay tracks on the video data.
A display cursor may be used to select one or more targets that an operator wishes to interrogate. Target information such as range, velocity, heading etc can be displayed in the target information 23 portion of the display.
The ultimate task of the operators is to classify the mode structure of target returns. Multimode conditions are prevalent in the Australian environment, and in other locations, generally resulting in resolvable returns from the E and F layers, as well as a mixed mode return. A number of factors contribute to make mode clas. fication non-trivial.
I Further, it will be appreciated that a number of radar return signals may be associated with one radar target; for example an aeroplane in flight often provides three return signals, one for F layer propagation, one for E layer •propagation, and one for mix-mode propagation.
As the radar is steered away from boresight, the azimuth oi the multimode Sreturns diverge because the different mode elevation angles lead to different measured angles. The conical field pattern is illustrated in FIG. 6. FIG. 6 (a) illustrates the antenna beam pattern showing the substantially conical shape 25. This view is broadside to the antenna array 24. The arc transversad by the antenna beam 26 increase in elevation as the azimuth is increased from broadside. At large steer angles the difference is sufficient for multimode Si: returns from a target to appear in different beams, and therefore be vertically separated on the Azimuth, nested Range verses Velocity (ARV) display. This effect, coupled with the independent fading characteristics of the returns conspire to make operator classification of multimode difficult.
Mix-mode path is where a target is radiated with energy via either the E or F layer and returned by the other. So mix-mode returns have a range in between that of the E and the F layer paths. It is desirable to determine which of the radar returns are due to E, F or mix-mode paths so the range can be determined. These paths are illustrated in FIG. 7. In FIG. 7 the Earth 27 is encompased by E layer 28 and F layer 29. A target is illustrated at 30 with a receiving antenna at 31. The E layer progation path is marked by 32 and the F layer path is marked by 33. Energy of radar returns of mix-mode paths go out to the target via one of the Layer paths and return by the other.
The velocity measured by the radar is proportional to the cosine of the elevation angle, consequently the measured velocity of each mode is different.
As the velocity increases so does the difference, giving the returns a characteristic slope in range-velocity co-ordinates. Multimode returns therefore can differ in all the measured dimensions of range, azimuth and velocity.
A dynamic template has been developed to assist in identifying multimode returns. The template, in this embodiment, consists of three circles, each are approximately the expected size of a target return, positioned in azimuthrange-velocity space consistent with the expected location of the multimode returns.
The template is controlled by a control device, such as a trackball, computer 'mouse or the like, and can be considered to be a complex cursor. As the template is moved, the locations of the returns are dynamically re-calculated to maintain the correct relation. The locations are determined by using the position of the trackball to define the mixed mode in slant co-ordinates. These are converted to a ground position, which are then used to calculate the E and F mode returns in slant co-ordinates using the appropriate ionospheric heights. To simplify this computation the Earth, E and F ;ayer are assumed to be concentric spheres.
To illustrate the template showing the characteristic slope due to velocity of a target refer to FIGS. 8 and 9. FIG. 8 is when a target 34 is travelling a low velocity and FIG. 9 is when a target 34 is travelling at a high velocity. The slope is due to the different incident angle at the target between E layer, F layer and mix-mode propagations. The Doppler velocity detected is related to the cosine of the incident angle which is greater for a smaller incident angle.
An additional feature of this template which can be invoked during an 17 animation sequence is called "velocity locking". In this case the position of the template is automatically updated from dwell to dwell. The range and velocity co-ordinates of the current template position are used to determine its new position in the next dwell of the sequence, assuming a constant velocity. So if the template were positioned on a set of peaks, then as the animation progresses the template automatically follows those peaks. Obviously only peaks that correlate in range progression and velocity will be shadowed by the template. Transponder returns, manoeuvring targets and helicopters do not meet this criterion.
The range cuts are associated with the cursor, and therefore the template position. When velocity locking is invoked the displayed range cuts will be dynamically updated. If the template is highlighting a target, then the selected range lines will always display the target as the animation proceeds.
To facilitate correlation of the automatic tracking output with the radar returns, the filtered track positions are overlayed on the video data. The track histories for the whole animated sequence of dwells are displayed. Alternatively, only I the track position for the dwell currently in view was overlayed. Display of the full track history can sometimes obscure the underlying detections, particularly if the target progresses in range by the spacing of the multimode returns S 20 during the animation sequence. In this case the track histories from the multimode returns coalesce. The single track positions are then more useful, although the history option will highlight the fact that a target is manoeuvring.
SoIt will be appreciated that by use of the template classification of radar returns is simplified. Further, the effects of fading etc are reduced with the template as :25 temporary non radar returns do not mean loss of radar target display position.
When fading etc does not occur the radar return will be within the vicinity of the predicted position. Also, when one or more return paths are not providing o radar returns ie the E or the F layer, then an operator may locate the template upon a suspected target radar return and correct the position when it becomes apparent that it is necessary. That is if the F layer is not providing a radar return path for a dwell and the mix-mode path is taken by the operator as the F layer then when the F layer is providing a radar return the operator can readily correct the positioning of the template.
It will be apparent to those skilled in the art that there are many ways of 18 implementing the invention disclosed herein. All such implementations wouid fall within the spirit of the invention. It will also be apparent that the template can be used to tag a radar return and so enable a target to be selected.
Further, information of the selected target can be displayed in textual and other formats.
0
Claims (36)
1. A method of displaying and determining the velocity associated with radar returns of frequency modulated continuous wave radars by means of a processor means including determining a velocity for each radar return from a detected beat frequency associated with received radar returns, displaying upon visual display means for successive radar dwells one or more major plots indicating range, azimuth and velocity of any radar returns, each major plot being characterised by a velocity axis with a maximum and a minimum display velocity, the major plots being composed of minor plots indicating range, azimuth and velocity of any radar return and characterised by a velocity axis that extends between zero velocity and the magnitude of greatest possible velocity corresponding to the range of the detected beat frequencies, the minor plots being repeated end upon end with respect to the 'velocity axes whilst the velocity displayed is not larger than the said maximum display velocity or smaller than the said minimum display velocity, the transition from one of the minor plots to an adjacent minor plot corresponding with zero velocity, and the method being such that between successive radar dwells radar returns on one side of the said zero velocity remain substantially in the :'"'same display position whereas associated radar returns displayed on the other side of the zero velocity do not remain substantially in the same position. ooeo 20
2. A method as in claim 1 further characterised by the processor means providing signal representation of return signal amplitude, and the displaying on the display means one or more plots of radar return amplitude verses radar return range.
3. A method as in claim 1 further characterised by the displaying of some 25 information of the radar returns in a textual format.
4. A method as in claim 1, 2 or 3 further characterised by the radar returns being generated with an Over-the-Horizon-Radar.
A method as in claim 1, 2, 3 or 4 further characterised by displaying a series of successive radar scans in a cyclically animating sequence.
6. A method as in claim 1 to 5 characterised by dividing the maximum value of a display velocity into k consecutive velocity bins, each velocity bin corresponding to a velocity range P, and interpolating the Doppler space data for each dwell into each velocity bin according to: M {I (Vamb X V' where: M the range of Doppler data for each velocity bin; Vamb the ambiguous velocity; P the region of velocity values for each velocity bin; Vmax the maximum velocity displayed; and the function {arg} is the smallest integer greater than or equal to arg.
7. A method as in claim 6 where the interpolation of the Doppler data is according to a linear interpolation scheme or a nearest neighbour interpolation scheme.
8. A method as in claim 1 to 7 characterised by displaying range verses ariplitude information of return signals.
9. An apparatus for displaying and determining the velocity associc-ted 15 with radar returns of frequency modulated continuous wave radars including processor means adapted to determine a velocity for each radar return from a detected beat frequency associated with received radar returns, visual display means adapted to display for successive radar dwells one or more major plots indicating range, azimuth and velocity of any radar returns, each major plot being characterised by a velocity axis with a maximum and a minimum display velocity, the major plots being composed of minor plots indicating range, azimuth and velocity of any radar return and characterised by a velocity axis that extends between zero velocity and the magnitude of greatest possible velocity corresponding to the range of the detected beat frequencies, the minor plots being repeated end upon end with respect to the velocity axes whilst the velocity displayed is not larger than the said maximum display velocity or smaller than the said minimum display velocity, the transition from one of the minor plots to an adjacent minor plot corresponding with zero velocity, and th-' apparatus oeing adapted so that between successive radar dwells radar rei.,ns on one side of the said zero velocity remain substantially in the same display position whereas associated radar returns displayed on the other side of the zero velocity do not remain substantially in the same position.
An apparatus as in claim 9 further characterised by the processor means providing signal representation of return signal amplitude, and the display means displays one or more plots of radar return amplitude verses radar return range.
11. An apparatus as in claim 9 further characterised by the processor means providing infromation to the display means such that information of radar returns is displayed in a textual format.
12. An apparatus as in claim 9, 10 or 11 further characterised by the radar means being an Over-the-Horizon-Radar. 15
13. An apparatus as in claim 9, 10, 11 or 12 further characterised by the processor means providing information to the display means such that a series of successive radar scans are displayed in a cyclically animating sequence.
14. An apparatus as in claim 9 to 13 characterised by the processor means 20 being adapted to divided the maximum value of a display velocity into k consecutive velocity bins, each velocity bin corresponding to a velocity range P, and Doppler space data for each dwell being interpolated into each velocity bin according to: M= (Vanmb X .V..max where: M the range of Doppler data for each velocity bin; Vamb the ambiguous velocity; P the region of velocity values for each velocity bin; 22 Vmax the maximum velocity displayed; and the function {arg} is the smallest integer greater than or equal to arg.
An apparatus as in claim 14 characterised by the processor means being adapted to interpolate the Doppler data according to linear interpolation scheme or nearest neighbour interpolation scheme.
16. An apparatus as in claim 9 to 15 characterised by the processor means being adapted to provide to the display means range verses amplitude information of return signals and the display means being adapted to display this range verses amplitude information.
17. A method for assisting classification of radar returns including displaying the radar returns on display means, and displaying predicted radar return positions of a radar return on the display means where the prediction of the position of the radar returns is in accordance with radar return azimuth .from the antenna and estimates of the heights of ionospheric E and F layers, 15 and including the steps of displaying and determining the velocity associated with radar returns of frequency modulated continuous wave radars by means of a processor means including determining a velocity for each radar return from a detected beat frequency associated with received radar returns, displaying upon visual display means for successive radar dwells one or more 20 major plots indicating range, azimuth and velocity of any radar returns, each major plot being characterised by a velocity axis with a maximum and a minimum display velocity, the major plots being composed of minor plots indicating range, azimuth and velocity of any radar return and characterised by a velocity axis that extends between zero velocity and the magnitude of greatest possible velocity corresponding to the range of the detected beat frequencies, the minor plots being repeated end upon end with respect to the velocity axes whilst the velocity displayed is not larger than the said maximum display velocity or smaller than the said minimum display velocity, the transition from one of the minor plots to an adjacent minor plot corresponding with zero velocity, and the method being such that between successive radar dwells radar returns on one side of the said zero velocity remain substantially in the same display position whereas associated radar returns displayed on the other side of the zero velocity do not remain substantially in the same position. 23
18. A method as in either claim 17 or 18 wherein the displaying of radar returns is in accordance with the Azimuth Range Velocity Display scheme described herein.
19. A method as in claim 17 or 18 wherein the radar returns are radar returns from an Over the Horizon Radar.
A method as in claim 17, 18 or 19 wherein for a selected radar return three predicted positions of the radar return are displayed, a first being in accordance with E layer propagation, a second being in accordance with F layer propagation, and a third being in accordance with mix-mode propagation.
21. A method as in claim 17, 18, 19 or 20 wherein the predicted position of the radar return upon the display means is further controlled by a control device.
22. A method as in claim 21 wherein the control device is a trackball, 15 computer mouse, or the like. oo*
*23. A method as in either claim 21 or claim 22 wherein as the control device is moved the predicted position of the radar return is moved upon the display means in accordance with the radar return azimuth from the antenna and estimates of the heights of the E and F layers. 20
24. A method as in any one of claims 17 to 23 wherein any radar return corresponds to a dwell, the predicted positions of the radar returns displayed upon the display means are recalculated assuming a constant velocity for that radar return, and repositioned for each dwell thereby forming an animinated time sequence of predicted position of the radar returns displayed upon the display means.
An apparatus adapted to assist classification of radar returns including display means adapted to display the radar returns, processor means adapted to predicted radar return positions of a radar return and effect display of the same on the display means where the prediction of the position of the radar returns is in accordance with radar return azimuth from the antenna and estimates of the heights of ionospheric E and F layers, and adapted for 24 displaying and determining the velocity associated with radar returns of frequency modulated continuous wave radars including processor means adapted to determine a velocity for each radar return from a detected beat frequency associated with received radar returns, visual display means adapted to display for successive radar dwells one or more major plots indicating range, azimuth and velocity of any radar returns, each major plot being characterised by a velocity axis with a maximum and a minimum display velocity, the major plots being composed of minor plots indicating range, azimuth and velocity of any radar return and characterised by a velocity axis that extends between zero velocity and the magnitude of greatest possible velocity corresponding to the range of the detected beat frequencies, the minor plots being repeated end upon end with respect to the velocity axes whilst the velocity displayed is not larger than the said maximum display velocity or smaller than the said minimum display velocity, the transition from one of the minor plots to an adjacent minor plot corresponding with zero velocity, and the apparatus being adapted so that between successive radar :dwells radar returns on one side of the said zero velocity remain substantially in the same display position whereas associated radar returns displayed on the other side of the zero velocity do not remain substantially in the same 20 position.
26. An apparatus as in claim 25 where the display means is adapted to "display the radar returns in accordance with the Azimuth Range Velocity o Display scheme described herein. ooo
27. An apparatus as in claim 25 or 26 where the radar returns are radar 25 returns from an Over the Horizon Radar.
28. An apparatus as in claim 25, 26 or 27 where the processor means calculates three predicted positions of a selected radar return and effects display of these upon the display means, of the three predicted positions a first being in accordance with E layer propagation, a second being in a,:ordance with F layer propagation, and a third being in accordance with mix-mode propagation.
29. An apparatus as in claim 25, 26, 27 or 28 wherein the predicted position of the radar return upon the display means is further controlled by a control device.
An apparatus as ir Jlaim 29 wherein the control device is a trackball, computer mouse, or the like.
31. An apparatus as in either claim 29 or claim 30 wherein as the control device is moved the predicted position of the radar return is moved upon the display means in accordance with the with radar return azimuth from the antenna and estimates of the heights of the E and F layers.
32. An apparatus as in any one of claims 25 to 31 wherein any radar return corresponds to a dwe'i, the predicted positions of the radar returns calculated by the processor means and displayed upon the display means are I 0 recalculated assuming a constant velocity for that radar return, and repositioned upon the display means for each dwell thereby forming an animinated time sequence of predicted position of the radar returns displayed upon the display means.
33. A method for displaying and determining the velocity associated with radar returns substantially as described herein with reference to the accompar,'ing diagrams.
34. An apparatus for displaying and determining the velocity associated with radar returns substantially as described herein with reference to the accompanying diagrams.
35. A method for assisting classification of radar returns substantially as described herein with reference to the accompanying diagrams.
36. An apparatus for assisting classification of radar returns substantially as described herein with reference to the accompanying diagrams. Dated this 14th day of September 1994 THE COMMONWEALTH OF AUSTRALIA By their Patent Attorneys COLLISON CO. ABSTRACT A method of displaying and classifying radar returns, and apparatus therefor. There is a method of displaying and determining the velocity of radar returns of frequency modulated continuous wave radars including determining a velocity for each radar return from a detected beat frequency associated with received radar returns, displaying upon visual display means for successive radar dwells one or more major plots indicating range, azimuth and velocity of any radar returns, each major plot being characterised by a velocity axis with a maximum and a minimum display velocity, the major plots being composed of minor plots indicating range, azimuth and velocity of any radar return and characterised by a velocity axis that extends between zero velocity and the magnitude of greatest possible velocity corresponding to the range of the detected beat frequencies, the minor plots being repeated end upon ,nd with respect to the velocity axes whilst the velocity displayed in not larger than the said maximum display velocity or smaller than the said minimum display 0:0 velocity, the transition from one of the m:nor plots to an adjacent minor plot corresponding with zero velocity, and the method being such that between sees successive radar dwells radar returns on one side of the said zero velocity remain substantially in the same display position whereas associated radar 20 returns displayed on the other side of the zero velocity do not rer;fiain substantially in the same position. Further there is a method for assisting classification of radar returns including displaying the radar returns on display means, displaying predicted radar return positions of a radar return on the display means where the prediction of 25 the position of the radar returns is in accordance with radar return azimuth oooo form the antenna and estimates of the heights of the E and F layers. Oleo* ooo
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
AU16074/92A AU654547B2 (en) | 1991-05-06 | 1992-05-06 | Azimuth range velocity display and cursor for use therewith |
Applications Claiming Priority (5)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
AUPK6001 | 1991-05-06 | ||
AUPK600191 | 1991-05-06 | ||
AUPK6000 | 1991-05-06 | ||
AUPK600091 | 1991-05-06 | ||
AU16074/92A AU654547B2 (en) | 1991-05-06 | 1992-05-06 | Azimuth range velocity display and cursor for use therewith |
Publications (2)
Publication Number | Publication Date |
---|---|
AU1607492A AU1607492A (en) | 1993-03-11 |
AU654547B2 true AU654547B2 (en) | 1994-11-10 |
Family
ID=27152238
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
AU16074/92A Ceased AU654547B2 (en) | 1991-05-06 | 1992-05-06 | Azimuth range velocity display and cursor for use therewith |
Country Status (1)
Country | Link |
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AU (1) | AU654547B2 (en) |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US11428798B2 (en) | 2017-11-13 | 2022-08-30 | Robin Radar Facilities Bv | Radar based system and method for detection of an object and generation of plots holding radial velocity data, and system for detection and classification of unmanned aerial vehicles, UAVs |
Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US3891987A (en) * | 1969-09-18 | 1975-06-24 | Us Navy | One-operation signal processor |
US3898659A (en) * | 1969-06-09 | 1975-08-05 | Us Navy | Data storage and conversion system |
US4833475A (en) * | 1986-01-27 | 1989-05-23 | Raytheon Company | Raster scan radar with true motion memory |
-
1992
- 1992-05-06 AU AU16074/92A patent/AU654547B2/en not_active Ceased
Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US3898659A (en) * | 1969-06-09 | 1975-08-05 | Us Navy | Data storage and conversion system |
US3891987A (en) * | 1969-09-18 | 1975-06-24 | Us Navy | One-operation signal processor |
US4833475A (en) * | 1986-01-27 | 1989-05-23 | Raytheon Company | Raster scan radar with true motion memory |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US11428798B2 (en) | 2017-11-13 | 2022-08-30 | Robin Radar Facilities Bv | Radar based system and method for detection of an object and generation of plots holding radial velocity data, and system for detection and classification of unmanned aerial vehicles, UAVs |
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AU1607492A (en) | 1993-03-11 |
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