Ground Penetrating Radar for Buried Landmine and IED Detection

被引:36
|
作者
Daniels, David J. [1 ]
机构
[1] ERA Technol, Surrey KT22 7SA, England
来源
UNEXPLODED ORDNANCE DETECTION AND MITIGATION | 2009年
关键词
Landmine detection; radar; ground penetrating radar;
D O I
10.1007/978-1-4020-9253-4_4
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Detection of landmines using electromagnetic induction (EMI) techniques is well established and a range of metal detectors is commercially available. Recent developments using dual sensor technology combining EMI and ground penetrating radar (GPR) have enabled improved discrimination against small metal fragments to be demonstrated in live minefields. Reductions of up to 7:1 compared with the standard metal detector have been achieved in the field by hand held systems such as the UK-German MINEHOUND/VMR2 system and the US AN/PSS-14 (formerly HSTAMIDS: Handheld Standoff Mine Detection System). Stand off vehicle based radar systems are now being trialled in realistic conditions. Airborne systems have also been trialled, but as yet have some way to go to deliver useful performance. These three distinct modes of operation pose fundamentally different challenges in terms of the physics of propagation and the radar system design and will be discussed. End user expectations in terms of performance are challenging and at present only the hand held detectors are approaching these needs. This chapter reviews the high-level performance requirements from an OA perspective in order to set the performance envelopes of the radar designs. We also address the fundamental challenges in terms of propagation, proximity to the ground surface; ground topography and signal to noise and signal to clutter bandwidth of operation with reference to both close in and stand off landmine and IED detection. A review of the performance of GPR systems at the higher TRL levels is provided. A key issue in comparing the published results of controlled trials relates to statistics of the depth of cover, the soil propagation characteristics, and the type of landmine, the sample size, the physical placement of the landmine as well as the characteristics of the clutter. This chapter will also highlight the future engineering challenges to achieve not only detection but recognition and identification using GPR.
引用
收藏
页码:89 / 111
页数:23
相关论文
共 50 条
  • [41] Improving Buried Threat Detection in Ground-Penetrating Radar with Transfer Learning and Metadata Analysis
    Colwell, Kenneth A.
    Torrione, Peter A.
    Morton, Kenneth D., Jr.
    Collins, Leslie M.
    DETECTION AND SENSING OF MINES, EXPLOSIVE OBJECTS, AND OBSCURED TARGETS XX, 2015, 9454
  • [42] Physics-based Deformations of Ground Penetrating Radar Signals to Improve the Detection of Buried Explosives
    Sakaguchi, Rayn T.
    Morton, Kenneth D., Jr.
    Collins, Leslie M.
    Torrione, Peter A.
    DETECTION AND SENSING OF MINES, EXPLOSIVE OBJECTS, AND OBSCURED TARGETS XIX, 2014, 9072
  • [43] A Comparison of Bistatic and Multistatic Handheld Ground Penetrating Radar (GPR) Antenna Performance for Landmine Detection
    Sule, Suki D.
    Paulson, Kevin S.
    2017 IEEE RADAR CONFERENCE (RADARCONF), 2017, : 1211 - 1215
  • [44] Histograms of Dominant Orientations for Anti-Personnel Landmine Detection Using Ground Penetrating Radar
    Temlioglu, Eyyup
    Erer, Isin
    Kumlu, Deniz
    2017 4TH INTERNATIONAL CONFERENCE ON ELECTRICAL AND ELECTRONIC ENGINEERING (ICEEE 2017), 2017, : 329 - 332
  • [45] Novel Algorithm for Landmine Detection using C-scan Ground Penetrating Radar Signals
    Jing, Hongyuan
    Vladimirova, Tanya
    2017 SEVENTH INTERNATIONAL CONFERENCE ON EMERGING SECURITY TECHNOLOGIES (EST), 2017, : 67 - 72
  • [46] A Least Squares Approach to Buried Object Detection Using Ground Penetrating Radar
    Yoldemir, Ahmet Burak
    Sezgin, Mehmet
    IEEE SENSORS JOURNAL, 2011, 11 (06) : 1337 - 1341
  • [47] HISTOGRAM OF GRADIENT FEATURES FOR BURIED THREAT DETECTION IN GROUND PENETRATING RADAR DATA
    Torrione, Peter
    Morton, Kenneth D.
    Sakaguchi, Rayn
    Collins, Leslie M.
    2012 IEEE INTERNATIONAL GEOSCIENCE AND REMOTE SENSING SYMPOSIUM (IGARSS), 2012, : 3182 - 3185
  • [48] Buried Target Detection with Ground Penetrating Radar Using Deep Learning Method
    Aydin, Enver
    Yuksel, Seniha Esen
    2017 25TH SIGNAL PROCESSING AND COMMUNICATIONS APPLICATIONS CONFERENCE (SIU), 2017,
  • [49] Buried pipe detection by ground penetrating radar using the discrete wavelet transform
    Ni, Sheng-Huoo
    Huang, Yan-Hong
    Lo, Kuo-Feng
    Lin, Da-Ci
    COMPUTERS AND GEOTECHNICS, 2010, 37 (04) : 440 - 448
  • [50] Landmine detection using fuzzy clustering in DARPA backgrounds data collected with the geo-centers ground penetrating radar
    Gader, PD
    Keller, JM
    Liu, HW
    DETECTION AND REMEDIATION TECHNOLOGIES FOR MINES AND MINELIKE TARGETS III, PTS 1 AND 2, 1998, 3392 : 1139 - 1149