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Compression of infrared imagery sequences containing a slow-moving point target

机译:压缩包含慢点目标的红外图像序列

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摘要

Infrared imagery sequences are used for detecting moving targets in the presence of evolving cloud clutter or background noise. This research concentrates on slow-moving point targets that are less than one pixel in size, such as aircraft at long ranges from a sensor. The infrared (IR) imagery sequences that are captured by ground sensors contain an enormous amount of data. Since transmitting this data to a base unit or storing it consumes considerable time and resources, a compression method that maintains the point target detection capabilities is desired. For this purpose, we developed two temporal compression methods that preserve the temporal profile properties of the point target. We evaluated the proposed compression methods using a signal-to-noise-ratio (SNR)-based measure for point target detection and showed that the compression may improve the SNR results compared to the IR sequence prior to compression.
机译:红外图像序列用于在不断发展的云杂波或背景噪声的情况下检测运动目标。这项研究集中于大小小于一个像素的慢动点目标,例如飞机从传感器远距离飞行。地面传感器捕获的红外(IR)图像序列包含大量数据。由于将该数据发送到基本单元或存储它会消耗大量时间和资源,因此需要一种维持点目标检测能力的压缩方法。为此,我们开发了两种时间压缩方法,可以保留点目标的时间轮廓属性。我们评估了使用基于信噪比(SNR)的度量进行点目标检测的压缩方法,并表明与压缩之前的IR序列相比,压缩可以改善SNR结果。

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