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Performance evaluation of 2-D adaptive prediction filters for detection of small objects in image data

机译:二维自适应预测滤波器在图像数据中检测小物体的性能评估

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This work studies the performance of dimensional least mean square (TDLMS) adaptive filters as prewhitening filters for the detection of small objects in image data. The object of interest is assumed to have a very small spatial spread and is obscured by correlated clutter of much larger spatial extent. The correlated clutter is predicted and subtracted from the input signal, leaving components of the spatially small signal in the residual output. The receiver operating characteristics of a detection system augmented by a TDLMS prewhitening filter are plotted using Monte-Carlo techniques. It is shown that such a detector has better operating characteristics than a conventional matched filter in the presence of correlated clutter. For very low signal-to-background ratios, TDLMS-based detection systems show a considerable reduction in the number of false alarms. The output energy in both the residual and prediction channels of such filters is shown to be dependent on the correlation length of the various components in the input signal. False alarm reduction and detection gains obtained by using this detection scheme on thermal infrared sensor data with known object positions is presented.
机译:这项工作研究了尺寸最小均方(TDLMS)自适应滤波器作为预白化滤波器的性能,用于检测图像数据中的小物体。假定感兴趣的对象具有很小的空间扩展,并且被更大的空间范围的相关杂波遮盖了。预测相关的杂波并从输入信号中减去该杂波,从而在残留输出中保留空间较小信号的分量。使用蒙特卡洛技术绘制了由TDLMS预白化滤波器增强的检测系统的接收机工作特性。结果表明,在存在相关杂波的情况下,这种检测器具有比常规匹配滤波器更好的工作特性。对于非常低的信噪比,基于TDLMS的检测系统可大大减少误报的数量。这种滤波器的残余和预测通道中的输出能量都显示为取决于输入信号中各个分量的相关长度。提出了通过使用这种检测方案对已知对象位置的热红外传感器数据获得的虚假警报减少和检测增益。

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