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Application of nonlinearity to wavelet-transformed images to improve correlation filter performance

机译:非线性在小波变换图像中的应用,以提高相关滤波器的性能

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摘要

A useful filter for pattern recognition must strike a compromise between the conflicting requirements of in-class distortion tolerance and out-of-class discrimination. Such a filter will be bandpass in nature, the high-frequency response being attenuated to provide less sensitivity to in-class variations, while the low frequencies must be removed, since they compromise the discrimination ability of the filter. A convenient bandpass is the difference of Gaussian (DOG) function, which provides a close approximation to the Laplacian of Gaussian. We describe the effect of a preprocessing operation applied to a DOG filtered image. This operation is shown to result in greater tolerance to in-class variation while maintaining an excellent discrimination ability. Additionally, the introduction of nonlinearity is shown to provide greater robustness in the filter response to noise and background clutter in the input scene. #1997 Optical Society of America
机译:用于模式识别的有用过滤器必须在类内失真容限和类外歧视的冲突要求之间达成折衷。这样的滤波器本质上将是带通的,高频响应被衰减以提供对类内变化的较小灵敏度,而必须去除低频,因为它们损害了滤波器的辨别能力。方便的带通是高斯(DOG)函数的差,它与高斯的拉普拉斯算子非常接近。我们描述了应用于DOG滤波图像的预处理操作的效果。该操作显示出对同级变化的更大容忍度,同时保持了出色的辨别能力。此外,显示了非线性的引入,可以在滤波器对输入场景中的噪声和背景杂波的响应中提供更高的鲁棒性。 #1997美国眼镜学会

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