DocumentCode :
1369515
Title :
High-Resolution 3-D Imaging Algorithm With an Envelope of Modified Spheres for UWB Through-the-Wall Radars
Author :
Kidera, Shouhei ; Sakamoto, Takuya ; Sato, Toru
Author_Institution :
Dept. of Electron. Eng., Univ. of Electro-Commun., Chofu, Japan
Volume :
57
Issue :
11
fYear :
2009
Firstpage :
3520
Lastpage :
3529
Abstract :
Through-the-wall imaging techniques with ultrawideband (UWB) radars are promising candidates for non-destructive testing and reliable human detection, especially in disaster areas, where victims are buried under collapsed walls. These applications require high-resolution target imaging to identify the object shape, such as a human body. We have already proposed a high-quality 3-dimensional (3-D) imaging algorithm in the form of envelope that is aimed at near field sensing for non-contact measurement or target identification for robots. Envelope achieves real-time accurate 3-D imaging with group mapping from multiple observed ranges to target points, and offers a reliable image even in noisy situations. However, this method does not maintain its quality for through-the-wall imaging because an observed range shift due to wall penetration causes a serious distortion in the image. This paper presents a high-resolution 3-D imaging algorithm by modifying the original envelope, and which gives a more accurate object shape behind a wall. Furthermore, to enhance the resolution of the estimated images, this method is combined with a direct waveform compensation method, known as spectrum offset correction. Numerical simulations and an experiment verify that our proposed method achieves high-resolution 3-D imaging for through-the-wall radar applications.
Keywords :
disasters; distortion; image enhancement; image resolution; object detection; radar detection; radar imaging; ultra wideband radar; UWB through-the-wall radar; direct waveform compensation method; disaster area; envelope technique; high-resolution 3-D imaging algorithm; image distortion; image enhancement; noncontact measurement; nondestructive testing; object shape detection; reliable human detection; spectrum offset correction; ultrawideband radar; wall penetration; High-resolution imaging; Humans; Multi-stage noise shaping; Nondestructive testing; Radar detection; Radar imaging; Robot sensing systems; Shape; Ultra wideband radar; Ultra wideband technology; Direct waveform compensation; envelope of modified spheres; high-resolution 3-D imaging; through-the-wall radar; ultrawideband (UWB) pulse radar;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.2009.2032337
Filename :
5238624
Link To Document :
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