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Streaming Algorithm for Euler Characteristic Curves of Multidimensional Images

机译:多维欧拉特征曲线的流算法

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We present an efficient algorithm to compute Euler characteristic curves of gray scale images of arbitrary dimension. In various applications the Euler characteristic curve is used as a descriptor of an image. Our algorithm is the first streaming algorithm for Euler characteristic curves. The usage of streaming removes the necessity to store the entire image in RAM. Experiments show that our implementation handles terabyte scale images on commodity hardware. Due to lock-free parallelism, it scales well with the number of processor cores. Additionally, we put the concept of the Euler characteristic curve in the wider context of computational topology. In particular, we explain the connection with persistence diagrams.
机译:我们提出了一种有效的算法来计算任意尺寸的灰度图像的欧拉特征曲线。在各种应用中,欧拉特性曲线被用作图像的描述符。我们的算法是欧拉特征曲线的第一个流算法。流的使用消除了将整个图像存储在RAM中的必要性。实验表明,我们的实现可在商用硬件上处理TB级的图像。由于无锁并行性,它可以随着处理器内核数量的扩展而很好地扩展。此外,我们将欧拉特性曲线的概念放在更广泛的计算拓扑中。特别是,我们解释了与持久性图的联系。

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