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A Real-Time Gabor Primal Sketch for Visual Attention

机译:用于视觉注意的实时Gabor基本草图

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摘要

We describe a fast algorithm for Gabor filtering, specially designed for multi-scale image representations. Our proposal is based on three facts: first, Gabor functions can be decomposed in gaussian convolutions and complex multiplications which allows the replacement of Gabor filters by more efficient gaussian filters; second, isotropic gaussian filtering is implemented by separable 1D horizontal/vertical convolutions and permits a fast implementation of the non-separable zero-mean Gabor kernel; third, short FIR filters and the a trous algorithm are utilized to build a recursive multi-scale decomposition, which saves important computational resources. Our proposal reduces to about one half the number of operations with respect to state-of-the-art approaches.
机译:我们描述了一种专为多尺度图像表示而设计的Gabor滤波快速算法。我们的建议基于以下三个事实:首先,Gabor函数可以分解为高斯卷积和复数乘法,从而可以用更高效的高斯滤波器代替Gabor滤波器;第二,各向同性的高斯滤波是通过可分离的一维水平/垂直卷积实现的,并允许快速实现不可分离的零均值Gabor核。第三,利用短FIR滤波器和trous算法进行递归多尺度分解,节省了重要的计算资源。我们的建议将最先进方法的操作数量减少到一半左右。

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