Flying Small Target Detection for Anti-UAV Based on a Gaussian Mixture Model in a Compressive Sensing Domain

Author:

Wang ChuanyunORCID,Wang TianORCID,Wang Ershen,Sun Enyan,Luo Zhen

Abstract

Addressing the problems of visual surveillance for anti-UAV, a new flying small target detection method is proposed based on Gaussian mixture background modeling in a compressive sensing domain and low-rank and sparse matrix decomposition of local image. First of all, images captured by stationary visual sensors are broken into patches and the candidate patches which perhaps contain targets are identified by using a Gaussian mixture background model in a compressive sensing domain. Subsequently, the candidate patches within a finite time period are separated into background images and target images by low-rank and sparse matrix decomposition. Finally, flying small target detection is achieved over separated target images by threshold segmentation. The experiment results using visible and infrared image sequences of flying UAV demonstrate that the proposed methods have effective detection performance and outperform the baseline methods in precision and recall evaluation.

Funder

National Natural Science Foundation of China

Liaoning Provincial Natural Science Foundation of China

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

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1. Lightweight air-to-air unmanned aerial vehicle target detection model;Scientific Reports;2024-01-31

2. A Small Target Detection Algorithm For Aerial Images;2023 IEEE International Conference on Mechatronics and Automation (ICMA);2023-08-06

3. Region-guided network with visual cues correction for infrared small target detection;The Visual Computer;2023-05-25

4. Development of a YOLO-KCF Coupling Algorithm for Miniature Fixed-Wing UAVs in Target Detection and Tracking;Unmanned Systems;2023-02-28

5. Vision-Based Anti-UAV Detection and Tracking;IEEE Transactions on Intelligent Transportation Systems;2022-12

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