Guidebook on Detection Technologies and Systems for Humanitarian Demining

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[7]  Anthony A. Faust,et al.  Development of a coded-aperture backscatter imager using the UC San Diego HEXIS detector , 2003, SPIE Defense + Commercial Sensing.

[8]  Peter Ngan,et al.  Handheld standoff mine detection system (HSTAMIDS) field evaluation in Thailand (Invited Paper) , 2005, SPIE Defense + Commercial Sensing.

[9]  Hichem Sahli,et al.  Detection of perturbations in thermal IR signatures: an inverse problem for buried land mine detection , 2003, SPIE Smart Structures and Materials + Nondestructive Evaluation and Health Monitoring.

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[11]  Stephen Crabbe,et al.  Results of field testing with the multisensor DEMAND and BIOSENS technologies in Croatia and Bosnia developed in the European Union's 5th framework program , 2004, SPIE Defense + Commercial Sensing.

[12]  F. Cremer Polarimetric infrared and sensor fusion for the detection of landmines , 2003 .

[13]  Motoyuki Sato,et al.  Imaging algorithm of a hand-held GPR MD sensor (ALIS) , 2005 .

[14]  Marcus Hebel,et al.  SLDV III: the next generation of acousto-optical landmine detection , 2005, SPIE Defense + Commercial Sensing.

[15]  Hichem Sahli,et al.  Stand-off thermal IR minefield survey: system concept and experimental results , 2005, SPIE Defense + Commercial Sensing.

[16]  J. R. Lockwood,et al.  Alternatives for landmine detection , 2003 .

[17]  Jun Ishikawa,et al.  Experimental design for test and evaluation of anti-personnel landmine detection based on vehicle-mounted GPR systems , 2005, SPIE Defense + Commercial Sensing.

[18]  Wim de Jong,et al.  Development and implementation of a camera system for faster area reduction , 2004, SPIE Defense + Commercial Sensing.

[19]  Peter Lutzmann,et al.  (Spectral) pattern recognition as a versatile tool towards automatic landmine detection: A new European approach , 2002 .

[20]  P. Womble,et al.  Pulsed fast/thermal neutron analysis: a technique for explosives detection. , 2001, Talanta.

[21]  James M. Sabatier,et al.  Field study using co-located landmine detection systems between laser Doppler vibrometer-based A/S coupling and GPSAR techniques , 2004, SPIE Defense + Commercial Sensing.

[22]  Yann Yvinec European Project of Remote Detection: SMART in a nutshell , 2004 .

[23]  Y. Yvinec A validated method to help area reduction in mine action with remote sensing data , 2005, ISPA 2005. Proceedings of the 4th International Symposium on Image and Signal Processing and Analysis, 2005..

[24]  J.G.M. Schavemaker,et al.  LOTUS field demonstration in Bosnia of an integrated, multi-sensor, mine-detection system for humanitarian de-mining , 2003 .

[25]  Motoyuki Sato,et al.  Pre-stack migration applied to GPR for landmine detection , 2004 .

[26]  Hichem Sahli,et al.  Semantic risk estimation of suspected minefields based on spatial relationships analysis of minefield indicators from multi-level remote sensing imagery , 2005, SPIE Defense + Commercial Sensing.

[27]  George Vourvopoulos,et al.  Detection of explosives with the PELAN system , 2001 .

[28]  Karl-Heinz Bers,et al.  Model-based mine verification with scanning laser Doppler vibrometry data , 2004, SPIE Defense + Commercial Sensing.

[29]  Motoyuki Sato,et al.  GPR using an array antenna for landmine detection , 2004 .

[30]  Motoyuki Sato,et al.  Estimation of ground surface topography and velocity model by SAR-GPR and its application to landmine detection , 2005, SPIE Defense + Commercial Sensing.

[31]  James M Sabatier,et al.  Nonlinear acoustic techniques for landmine detection. , 2004, The Journal of the Acoustical Society of America.

[32]  John E. McFee,et al.  Laboratory evaluation of the EIT technology capability to detect mines buried in an underwater sediment layer , 2004, SPIE Defense + Commercial Sensing.

[33]  Motoyuki Sato,et al.  Development of an array-antenna GPR system (SAR-GPR) , 2005, SPIE Defense + Commercial Sensing.

[34]  A. Bulletti,et al.  (Non-Linear) Acoustic Landmine Detection Study , 2004 .

[35]  Michael O'Neill,et al.  Multi-beam laser Doppler vibrometry for acoustic landmine detection using airborne and mechanically coupled vibration , 2005, SPIE Defense + Commercial Sensing.

[36]  Ning Xiang,et al.  An investigation of acoustic-to-seismic coupling to detect buried antitank landmines , 2001, IEEE Trans. Geosci. Remote. Sens..

[37]  Anthony A. Faust Detection of Explosive Devices using X-ray Backscatter Radiation , 2002, SPIE Optics + Photonics.