CN103135109B - Ultra wide band radar imaging method based on multipath signals - Google Patents

Ultra wide band radar imaging method based on multipath signals Download PDF

Info

Publication number
CN103135109B
CN103135109B CN201310038343.2A CN201310038343A CN103135109B CN 103135109 B CN103135109 B CN 103135109B CN 201310038343 A CN201310038343 A CN 201310038343A CN 103135109 B CN103135109 B CN 103135109B
Authority
CN
China
Prior art keywords
imaging
antenna
integral
theta
signal
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN201310038343.2A
Other languages
Chinese (zh)
Other versions
CN103135109A (en
Inventor
金添
周智敏
卢哲俊
陆必应
陈波
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
National University of Defense Technology
Original Assignee
National University of Defense Technology
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by National University of Defense Technology filed Critical National University of Defense Technology
Priority to CN201310038343.2A priority Critical patent/CN103135109B/en
Publication of CN103135109A publication Critical patent/CN103135109A/en
Application granted granted Critical
Publication of CN103135109B publication Critical patent/CN103135109B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Landscapes

  • Radar Systems Or Details Thereof (AREA)

Abstract

The invention provides an ultra wide band radar imaging method based on multipath signals. The method includes a first step of setting mirroring virtual transmitting antennas and mirroring virtual receiving antennas according to a signal propagation route on the condition that the position of a reflecting body is known, a second step of carrying out phase position and amplitude compensation on multipath signals according to imaging geometry and utilizing any pair of the transmitting antenna and the receiving antenna to carrying out imaging, and a third step of carrying out coherence stack on imaging results of each transmitting and receiving antenna pair to obtain the final imaging. In the imaging process, the multipath signals from different directions are utilized to increase the aperture of a radar receiving antenna in the ultra wide band radar imaging method, and consequently the purpose of improving imaging resolving rate of an objective is achieved.

Description

A kind of ULTRA-WIDEBAND RADAR formation method based on multipath signal
Technical field
The invention belongs to ULTRA-WIDEBAND RADAR technical field of imaging, is a kind of ULTRA-WIDEBAND RADAR formation method based on multipath signal.
Background technology
In ULTRA-WIDEBAND RADAR imaging, if there is comparatively ideal reflecting body to exist in scene, will produce stronger multipath signal, radar imagery performance is impacted; Especially in ultra-broadband wall-through imaging, due to the existence of the reflecting bodys such as body of wall, ceiling, ground, multipath signal is very abundant, if use traditional radar imagery technology, these multipath signals will form the virtual image on image.But the existence of reflecting body makes to be reflected back toward to the target echo of surrounding scattering receiving antenna place, the multipath signal to these from different directions is used, and can produce the effective aperture that is greater than actual receiver aperture, improves imaging resolution.
But utilize multipath signal, need the temporal resolution of radar enough high, can each multipath signal is separated, and the ultrabroad band that the signal of ULTRA-WIDEBAND RADAR has with it, relative Narrow-band Radar, can differentiate the multipath signal receiving at different time, thereby it is processed accordingly.
Summary of the invention
The present invention proposes a kind of ULTRA-WIDEBAND RADAR formation method based on multipath signal.In imaging process, utilize the multipath signal from different directions to increase radar receiving antenna aperture, reach the object that improves target imaging resolution.
Basic ideas of the present invention are: first, the in the situation that of known reflecting body position, the path of propagating according to signal arranges the virtual emitting antenna of mirror image and the virtual receiving antenna of mirror image; Then, according to imaging geometry, multipath signal is carried out to phase place and Amplitude Compensation, and carry out imaging with any a pair of emitting antenna and receiving antenna; Finally, the imaging results that each dual-mode antenna is right is carried out to coherence stack, obtain final image.The present invention only considers to be not more than with reflecting body the multipath signal of two secondary reflections, and more the multipath signal of multiple reflection number of times is due to intensity weak ignoring too.
Technical scheme of the present invention comprises following treatment step:
The first step, determines virtual antenna position
According to actual transmission antenna, actual receiving antenna and reflecting body position in imaging scene, according to signal propagation path, the virtual emitting antenna of mirror image and the virtual receiving antenna of mirror image are set in relevant position.
Second step, multipath signal phase place and Amplitude Compensation
To being reflected amplitude and the phase place that the signal of body reflection changes in reflection process, compensate.When signal incides second medium by first medium, incident angle is θ i, refraction angle θ tby Snell law, calculated:
sin θ i sin θ t = ϵ 2 ϵ 1 - - - ( 1 )
ε wherein 1the specific inductive capacity of first medium, ε 2it is the specific inductive capacity of second medium; By Fresnel formula, calculate reflected field E again rwith incident electric field E ithe ratio of complex amplitude:
r ⊥ = E r E i = η 2 cos θ i - η 1 cos θ t η 2 cos θ i + η 1 cos θ t r / / = E r E i = η 1 cos θ i - η 2 cos θ t η 1 cos θ i + η 2 cos θ t - - - ( 2 )
R reflected field E during for vertical polarization rwith incident electric field E ithe ratio of complex amplitude; r //reflected field E during for horizontal polarization rwith incident electric field E ithe ratio of complex amplitude, wherein η 1for first medium wave impedance, first medium reflects the medium that front signal is propagated; η 2for second medium wave impedance, second medium is reflecting body medium.
The signal (being multipath signal) that utilizes the comparison of electric field complex amplitude to be reflected body reflection carries out phase place and Amplitude Compensation.
The 3rd step, each dual-mode antenna is to imaging
Calculate the imaging results f (x between any a pair of emitting antenna and receiving antenna, y), wherein emitting antenna can be both that actual transmission antenna can be also virtual emitting antenna, and receiving antenna can be both that actual receiving antenna can be also virtual receiving antenna, and computation process is as follows:
Suppose emitting antenna coordinate (x t, 0), receiving antenna coordinate (u, 0); Order transmits as p (t), receives signal and is:
s ( t , u ) = ∫ ∫ g ( x , y ) p ( t - ( x - u ) 2 + y 2 + ( x - x t ) 2 + y 2 c ) dxdy - - - ( 3 )
Wherein t is the fast time, and c is velocity of EM-waves, and g (x, y) is the scattering function that scene (x, y) is located;
Utilize following formula to obtain imaging results:
f ( x , y ) = ∫ ∫ s ( t , u ) δ ( t - ( x - u ) 2 + y 2 + ( x - x t ) 2 + y 2 c ) dtdu - - - ( 4 )
Wherein f (x, y) is the image value that scene (x, y) is located, and δ () is impulse function.
By said process, calculate the imaging results between any a pair of emitting antenna and receiving antenna, comprise the imaging results of utilizing direct signal and the imaging results of utilizing multipath signal.
The 4th step, imaging results coherence stack
Resulting each imaging results in the 3rd step is superposeed, obtain high-resolution imaging effect.Owing to the phase place of multipath signal being compensated at second step, each image addition is coherence stack, and after stack, imaging effect is best.
Beneficial effect of the present invention: the present invention has obtained than Geng great effective aperture, actual antennas aperture by virtual dual-mode antenna is set, and has improved target imaging resolution; By the phase place of reflected signal and amplitude are compensated, become image to carry out coherence stack each simultaneously, reach the object that improves imaging resolution.
Accompanying drawing explanation
Fig. 1 is treatment scheme schematic diagram of the present invention;
Fig. 2 is imaging scene schematic diagram;
Fig. 3 is three kinds of multipath signals and direct signal schematic diagram, (a) represent by virtual transmission antennas transmit, the multipath signal 1 that actual receiving antenna receives, (b) represent by actual transmission antenna transmission, the multipath signal 2 that virtual receiving antenna receives, (c) represents by virtual transmission antennas transmit, the multipath signal 3 that virtual receiving antenna receives, (d) represent by actual transmission antenna transmission the direct signal that actual receiving antenna receives.
Fig. 4, for according to four of Fig. 3 kinds of result figure that signal carries out imaging, is (a) to multipath signal 1 imaging results figure; (b) be to multipath signal 2 imaging results figure; (c) be to multipath signal 3 imaging results figure; (d) be direct signal imaging results figure;
Fig. 5 is the last high-resolution imaging result figure that utilizes the present invention to obtain.
Embodiment
The ultra broadband formation method based on multipath signal that the present invention proposes is divided into four steps, as shown in Figure 1.Below in conjunction with an example, the present invention is further explained.
As shown in Figure 2, reflecting body is body of wall to imaging scene.Actual dual-mode antenna is mode of single illuminator and multiple receivers, and receiving antenna is the receiving array of long 2 meters, depending on as a whole, by open circles, represents; An emitting antenna is positioned in the middle of receiving array, by filled circles, represents.Transmit and use gaussian derivative pulse, pulse width is 1.2ns.Body of wall is positioned at receiving array left end.Take the coordinate axis that body of wall and receiving array place straight line be rectangular coordinate system (long measure is rice), body of wall is positioned on y axle, and receiving array is positioned on x axle, from x=0 to x=2; Emitting antenna is positioned at (1,0).In the middle of scene, there is a target, be positioned at (0.7,1).
Implement by the following step:
The first step, according to the travel path of signal, determines virtual emitting antenna and virtual receiving antenna position.The present invention only considers to be not more than reflection case twice with body of wall, so the raw three kinds of multipath signals of common property, adds direct signal, determines altogether four kinds of different dual-mode antennas pair, as Fig. 3 (a), (b), (c) with (d).(a) virtual emitting antenna and the actual receiving antenna for multipath signal 1 is carried out to imaging, wherein virtual emitting antenna is positioned at (1,0); (b) actual transmission antenna and the virtual receiving antenna for multipath signal 2 is carried out to imaging, wherein virtual receiving array is from x=-2 to x=0; (c) virtual emitting antenna and the virtual receiving antenna for multipath signal 3 is carried out to imaging, wherein virtual receiving array is from x=-2 to x=0, and virtual emitting antenna is positioned at (1,0); (d) actual transmission antenna and the actual receiving antenna for direct signal is carried out to imaging.
Second step, carries out phase place and Amplitude Compensation to multipath signal.
If three kinds of multipath signals are carried out to the dual-mode antenna centering receiving antenna of imaging, be positioned at (u mn, 0), n=1,2,3,
Emitting antenna is positioned at (x n, 0), wherein the different values of n represent different multipath signals, m represents m receiving antenna in receiving antenna array, according to signal propagation path, can calculate the angle that the multipath signal of locating through scene (x, y) incides body of wall by following formula:
θ in ( x , y ) = arctan ( y x - u mn ) - - - ( 5 )
Then by foregoing (1) formula, calculate refraction angle, then by (2) formula, calculated the ratio r (x, y) of refraction electric field and incident electric field complex amplitude.In this example, first medium is air, and second medium is body of wall.
As what use, be pulse signal, need to signal carry out after Hilbert transform with multiply each other and get again real part; As what use, be the complex signals such as linear frequency modulation or Step Frequency, directly with multiply each other.There are two secondary reflections with body of wall and need to carry out twice compensation.Multipath signal s after compensation mn(t) be:
s mn(t)
= ∫ ∫ Re { HT [ g ( x , y ) p ( t - ( x - u mn ) 2 + y 2 + ( x - x n ) 2 + y 2 c ) ] 1 r ( x , y ) } dxdy , n = 1,2,3 - - - ( 6 )
HT[wherein] be Hilbert transform operator, Re{} is the number of winning the confidence real part.
The 3rd step, each dual-mode antenna is to imaging.
After multipath signal after being compensated by (6) formula, re-use foregoing (4) formula, by each dual-mode antenna in Fig. 3, to utilizing multipath signal and direct signal to carry out imaging, obtain the imaging results f of three kinds of multipath signals 1, f 1, f 3with the imaging results f of direct signal, wherein s (t) is uncompensated direct signal:
f 1 ( x , y ) = ∫ ∫ s m 1 ( t ) δ ( t - ( x - u m 1 ) 2 + y 2 + ( x - x 1 ) 2 + y 2 c ) dtdu m 1 f 2 ( x , y ) = ∫ ∫ s m 2 ( t ) δ ( t - ( x - u m 2 ) 2 + y 2 + ( x - x 2 ) 2 + y 2 c ) dtdu m 2 f 3 ( x , y ) = ∫ ∫ s m 3 ( t ) δ ( t - ( x - u m 3 ) 2 + y 2 + ( x - x 3 ) 2 + y 2 c ) dtdu m 3 f ( x , y ) = ∫ ∫ s ( t ) δ ( t - ( x - u ) 2 + y 2 + ( x - x t ) 2 + y 2 c ) dtdu - - - ( 7 )
Respectively as Fig. 4 (a), (b), (c) with (d), be wherein orientation to be distance to, ordinate to, unit be meter horizontal ordinate.Fig. 4 (a) is the imaging results between dual-mode antenna in Fig. 3 (a), Fig. 4 (b) is the imaging results between dual-mode antenna in Fig. 3 (b), Fig. 4 (c) is the imaging results between dual-mode antenna in Fig. 3 (c), and Fig. 4 (d) is the imaging results between dual-mode antenna in Fig. 3 (d).
The 4th step, each imaging results coherence stack.
Each imaging results coherence stack by the 3rd step, obtains last composograph F:
F=f 1+f 2+f 3+f (8)
The azimuth resolution performance of F obviously improves, and brings up to 0.06 meter by original 0.10 meter, as shown in Figure 5.
The above is only a kind of preferred implementation of the present invention, in the present invention for single-shot multiple receive antenna configuration can also expand to MIMO (Multiple-Input Multiple-Out-put) and single station/bis-station ULTRA-WIDEBAND RADAR isotype, the imaging algorithm of use also can expand to other imaging algorithms.It should be pointed out that for those skilled in the art, under the premise without departing from the principles of the invention, can also make some improvements and modifications, these improvements and modifications also should be considered as protection scope of the present invention.

Claims (1)

1. the ULTRA-WIDEBAND RADAR formation method based on multipath signal, is characterized in that, comprises the steps:
The first step, determine virtual antenna position:
According to actual transmission antenna, actual receiving antenna and reflecting body position in imaging scene, according to signal propagation path, the virtual emitting antenna of mirror image and the virtual receiving antenna of mirror image are set in relevant position;
Second step, multipath signal phase place and Amplitude Compensation:
According to signal propagation path, while inciding second medium by first medium, incident angle is θ i, refraction angle θ tby Snell law, calculated:
sin θ i sin θ t = ϵ 2 ϵ 1
ε wherein 1the specific inductive capacity of first medium, ε 2it is the specific inductive capacity of second medium; By Fresnel formula, calculate reflected field E again rwith incident electric field E ithe ratio of complex amplitude:
r ⊥ = E r E i = η 2 cos θ i - η 1 cos θ t η 2 cos θ i + η 1 cos θ t
r / / = E r E i = η 1 cos θ i - η 2 cos θ t η 1 cos θ i + η 2 cos θ t
R reflected field E during for vertical polarization rwith incident electric field E ithe ratio of complex amplitude; r //reflected field E during for horizontal polarization rwith incident electric field E ithe ratio of complex amplitude, wherein η 1for first medium wave impedance; η 2for second medium wave impedance;
The signal that utilizes the comparison of electric field complex amplitude to be reflected body reflection carries out phase place and Amplitude Compensation, and the multipath signal after being compensated is;
s mn ( t ) = ∫ ∫ Re { HT [ g ( x , y ) p ( t - ( x - u mn ) 2 + y 2 + ( x - x n ) 2 + y 2 c ) ] 1 r ( x , y ) } dxdy , n = 1,2,3
HT[wherein] be Hilbert transform operator, Re{} is the number of winning the confidence real part; R (x, y), for the ratio of refraction electric field and incident electric field complex amplitude, is r when vertical polarization , when horizontal polarization, be r //; The dual-mode antenna centering receiving antenna that three kinds of multipath signals is carried out to imaging is positioned at (u mn, 0), emitting antenna is positioned at (x n, 0), wherein the different values of n represent different multipath signals, m represents m receiving antenna in receiving antenna array; G (x, y) is the scattering function that scene (x, y) is located;
The 3rd step, each dual-mode antenna is to imaging:
Calculate multipath signal between any a pair of emitting antenna and receiving antenna and the imaging results of direct signal:
f 1 ( x , y ) = ∫ ∫ s m 1 ( t ) δ ( t - ( x - u m 1 ) 2 + y 2 + ( x - x 1 ) 2 + y 2 c ) dtdu m 1
f 2 ( x , y ) = ∫ ∫ s m 2 ( t ) δ ( t - ( x - u m 2 ) 2 + y 2 + ( x - x 2 ) 2 + y 2 c ) dtdu m 2
f 3 ( x , y ) = ∫ ∫ s m 3 ( t ) δ ( t - ( x - u m 3 ) 2 + y 2 + ( x - x 3 ) 2 + y 2 c ) dtdu m 3
f ( x , y ) = ∫ ∫ s ( t ) δ ( t - ( x - u ) 2 + y 2 + ( x - x t ) 2 + y 2 c ) dtdu
F wherein 1(x, y), f 2(x, y), f 3(x, y) is the imaging results of multipath signal, the imaging results of f (x, y) direct signal, and δ () is impulse function, s (t) is uncompensated direct signal;
The 4th step, imaging results coherence stack:
Resulting each imaging results in the 3rd step is superposeed, obtain high-resolution imaging effect.
CN201310038343.2A 2013-01-31 2013-01-31 Ultra wide band radar imaging method based on multipath signals Active CN103135109B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201310038343.2A CN103135109B (en) 2013-01-31 2013-01-31 Ultra wide band radar imaging method based on multipath signals

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201310038343.2A CN103135109B (en) 2013-01-31 2013-01-31 Ultra wide band radar imaging method based on multipath signals

Publications (2)

Publication Number Publication Date
CN103135109A CN103135109A (en) 2013-06-05
CN103135109B true CN103135109B (en) 2014-10-22

Family

ID=48495191

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201310038343.2A Active CN103135109B (en) 2013-01-31 2013-01-31 Ultra wide band radar imaging method based on multipath signals

Country Status (1)

Country Link
CN (1) CN103135109B (en)

Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104090275B (en) * 2014-07-23 2017-01-18 中国电子科技集团公司第四十一研究所 Amplitude compensating method used for multi-probe array imaging
US10209344B2 (en) 2015-03-12 2019-02-19 Src, Inc. Methods and systems for mitigating multipath propagation
CN107656243A (en) * 2017-08-25 2018-02-02 天津大学 Combine DOA/TOA oceans multi-path environment localization method in inhomogeneous medium
CN109490880B (en) * 2018-11-13 2020-01-17 中国科学院电子学研究所 Double-base satellite-borne interference SAR phase synchronization antenna multipath effect analysis method and system
CN113009584B (en) * 2021-02-06 2022-05-17 中国人民解放军国防科技大学 Ultra-wideband MIMO radar vital sign detection positioning method
CN113393509B (en) * 2021-08-16 2021-12-24 浙江光珀智能科技有限公司 Laser radar multipath compensation method

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN201221947Y (en) * 2008-06-17 2009-04-15 厦门瀛寰电子科技有限公司 New sea wave observation apparatus
CN102112892A (en) * 2007-05-29 2011-06-29 剑桥顾问 Radar system and method
CN102217349A (en) * 2008-11-20 2011-10-12 贝拉尔网络公司 System and method for frequency offsetting of information communicated in mimo based wireless networks
US8242949B2 (en) * 2010-06-30 2012-08-14 Delaurentis John M Multipath SAR imaging

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102112892A (en) * 2007-05-29 2011-06-29 剑桥顾问 Radar system and method
CN201221947Y (en) * 2008-06-17 2009-04-15 厦门瀛寰电子科技有限公司 New sea wave observation apparatus
CN102217349A (en) * 2008-11-20 2011-10-12 贝拉尔网络公司 System and method for frequency offsetting of information communicated in mimo based wireless networks
US8242949B2 (en) * 2010-06-30 2012-08-14 Delaurentis John M Multipath SAR imaging

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
SAR穿墙成像中墙体影响图像域补偿方法;金添等;《电子学报》;20120731;第40卷(第7期) *
金添等.SAR穿墙成像中墙体影响图像域补偿方法.《电子学报》.2012,第40卷(第7期),

Also Published As

Publication number Publication date
CN103135109A (en) 2013-06-05

Similar Documents

Publication Publication Date Title
CN103135109B (en) Ultra wide band radar imaging method based on multipath signals
CN103023586B (en) A kind of over-the-horizon radar ionospheric channel emulation mode
CN103353592B (en) Bistatic radar multichannel combination dimension reduction clutter suppression method based on MIMO
CN105259552A (en) Synthetic aperture radar imaging method and device based on non-linear frequency-modulated signals
CN103576152A (en) Sliding spotlight SAR (synthetic aperture radar) as well as implementing method and device thereof
CN103792535B (en) A kind of method utilizing SAR Satellite observation ionized layer TEC value
CN103777178B (en) A kind of synchronous error compensation method, equipment and system
CN105044693A (en) Microwave associated imaging radar amplitude-phase error correction method based on auxiliary array elements
CN102323581B (en) Imaging method for squint bunching synthetic aperture radar
CN109490881A (en) Interference SAR measurement of higher degree system and measurement method based on vortex electromagnetic wave
CN103885052B (en) A kind of polar echo separation method of wide cut complete polarization satellite-borne SAR
CN103048655A (en) Frequency-domain super-resolution micro-multipath height finding method of sky-wave beyond visual range radar
CN102809746B (en) MIMO technology-based high-resolution sector-scanning imaging method
CN103576153B (en) A kind of multiple azimuth beam synthetic aperture radar and its implementation and device
CN104502911A (en) Wall parameter estimation method of through-wall imaging radar
CN105005036A (en) Transmission loss compensation method used for short-range MIMO imaging
CN109239675A (en) A kind of distributed spaceborne radar LFM waveform determining method based on same bandwidth difference chirp rate
CN103630905A (en) Antenna array SAR polar coordinate overlapped sub-aperture imaging method
CN114019456A (en) Micro-nano satellite networking radar system for space target detection
CN106093926A (en) Dual-band frequency diversity array radar system and object localization method thereof
CN104407349A (en) Frequency domain imaging method for one-stationary bistatic low-frequency ultra-wide band SAR
CN103969641B (en) A kind of beam transmitting three-D imaging method
CN205861897U (en) Dual-band frequency diversity array radar system
CN103176182B (en) A kind of ultra-wideband imaging method and device focusing on enhancing
CN107271995A (en) The system sensitivity Optimization Design adjusted based on beam position

Legal Events

Date Code Title Description
C06 Publication
PB01 Publication
C10 Entry into substantive examination
SE01 Entry into force of request for substantive examination
C14 Grant of patent or utility model
GR01 Patent grant