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Visual attention based model for target detection in high resolution remote sensing images

机译:基于视觉关注的高分辨率遥感图像目标检测模型

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The difficulty and limitation of small target detection methods for high-resolution remote sensing data have been a recent research hot spot. At present, it has much realistic significance to rapidly detect targets in high resolution remote sensing images, especially within limited computation resources. Employing relative achievements of visual attention in perception psychology and neurosciences, this paper endeavors to construct an attention model for target detection and make use of the advantages of fast and accurate small target detection under complex varied nature environment. The proposed model consists of the processing of bottom-up visual information extraction and top-down visual attention guiding. The construction and calculate method is presented in paper. The novel framework breaks down the complex problem of scene analysis and improves the computation efficiency by selective attention. The experimental results over aircraft detection in Quick-bird satellite images show that the proposed model is well-behaved on high resolution remote sensing images.
机译:高分辨率遥感数据小目标检测方法的难度和限制是最近的研究热点。目前,在高分辨率遥感图像中快速检测目标具有大量现实意义,尤其是在有限的计算资源范围内。采用感知心理学和神经科学的相对成果,本文努力构建目标检测的注意模型,并利用复杂多种自然环境下快速准确的小目标检测的优点。所提出的模型包括处理自下而上的视觉信息提取和自上而下的视觉引导。纸张中提出了施工和计算方法。小说框架打破了场景分析的复杂问题,通过选择性关注来提高计算效率。在速鸟卫星图像中对飞机检测的实验结果表明,所提出的模型在高分辨率遥感图像上表现得很好。

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