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A distributed psycho-visually motivated Canny edge detector

机译:分布式心理视觉动机的Canny边缘检测器

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This paper proposes a distributed Canny edge detection algorithm which can be mapped onto multi-core architectures for high throughput applications. In contrast to the conventional Canny edge detection algorithm which makes use of the global image gradient histogram to determine the threshold for edge detection, the proposed algorithm adaptively computes the edge detection threshold based on the local distribution of the gradients in the considered image block. The efficacy of the distributed Canny in detecting psycho-visually important edges is validated using a visual sharpness metric. The proposed distributed Canny edge detection algorithm has the capacity to scale up the throughput adaptively, based on the number of computing engines. The algorithm achieves about 72 times speed up for a 16-core architecture, without any change in performance. Furthermore, the internal memory requirements are significantly reduced especially for smaller block sizes. For instance, if a 512×512 image is processed in 64×64 blocks using the proposed scheme, the memory is reduced by a factor of 70 as compared to the original Canny edge detector.
机译:本文提出了一种分布式Canny边缘检测算法,该算法可以映射到高吞吐量应用的多核体系结构上。与利用全局图像梯度直方图确定边缘检测阈值的常规Canny边缘检测算法相比,该算法基于所考虑图像块中梯度的局部分布来自适应计算边缘检测阈值。使用视觉清晰度度量标准可以验证分布式Canny在检测心理视觉重要边缘方面的功效。所提出的分布式Canny边缘检测算法具有根据计算引擎的数量自适应地扩展吞吐量的能力。对于16核体系结构,该算法的速度提高了约72倍,而性能没有任何变化。此外,内部存储器的需求大大减少,尤其是对于较小的块大小。例如,如果使用建议的方案以64×64块处理512×512图像,则与原始Canny边缘检测器相比,内存减少了70倍。

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