DETECTION OF SEA SURFACE SMALL TARGETS IN INFRARED IMAGES BASED ON MULTILEVEL FILTER AND MINIMUM RISK BAYES TEST

Author:

MOON Y.-S.1,ZHANG TIANXU2,ZUO ZHENGRONG2,ZUO ZHEN2

Affiliation:

1. Department of Computer Science and Engineering, The Chinese University of Hong Kong, Hong Kong, P.R. China

2. Institute for Pattern Recognition and Artificial Intelligence, Huazhong University of Science and Technology, State Key Lab. for Image Processing and Intelligent Control, Wuhan 43007, P.R. China

Abstract

This paper discusses the research in small target detection in infrared images with heavy clutter background. For most infrared images, ship objects are rather dim in the relative dark sea surface background. The existence of scan line disturbance and noise also increases the difficulty in proper detection. Dim objects must be distinguished from a dark background. On the other hand, the small targets must also be distinguished from clutters. Through analysis of the targets and background, we build characteristic models of small ship objects, noise and sea backgrounds respectively, and indicate their differences in spatial and frequency domains among them. Based on the principles of signal processing, pattern recognition and artificial intelligence, we propose a combined algorithm for detecting sea surface small targets. In this algorithm, components of background and noise are first suppressed by a multilevel filter designed accordingly, meanwhile enhancing the target ones of interest. The pixels of the candidate targets are then discriminated by minimum risk Bayes test. Finally, according to a priori knowledge about the targets such as the ranges of their sizes, the targets of interest can be detected. In particular, the related probability distributions used by statistic decision are obtained by offline learning of typical training samples. Experiments show that the algorithm is excellent for such kinds of target detection and is robust to noise.

Publisher

World Scientific Pub Co Pte Lt

Subject

Artificial Intelligence,Computer Vision and Pattern Recognition,Software

Reference6 articles.

Cited by 26 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Study on marine targets detection covered in glint;Sixth Symposium on Novel Optoelectronic Detection Technology and Applications;2020-04-17

2. A tracking method to stabilize a target in the region of inherent noise in an image;MIPPR 2019: Automatic Target Recognition and Navigation;2020-02-14

3. A small dim targets detection method with dark-spots interference based on infrared images;MIPPR 2019: Automatic Target Recognition and Navigation;2020-02-14

4. Infrared Small Target Detection with Total Variation and Reweighted ℓ1 Regularization;Mathematical Problems in Engineering;2020-01-27

5. Real-time mid-infrared polarization imaging system design for marine targets detection;J INFRARED MILLIM W;2018

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