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New results and measurements related to some tasks in object-oriented dynamic image coding using CNN universal chips

机译:与使用CNN通用芯片进行的面向对象动态图像编码中的某些任务相关的新结果和测量结果

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Cellular neuralonlinear networks (CNN) are considered for efficient implementation of the most computationally intensive steps of dynamic image coding. Several analogic CNN algorithms are presented for the generation of binary image masks and image decomposition. Measurement results for the first CNN universal chips executing an analogic algorithm for a reconstruction operator are also presented. Based on measured execution times, the viability of the CNN implementation of efficient but computationally expensive compression algorithms such as dynamic image coding is assessed.
机译:为了有效地执行动态图像编码中计算量最大的步骤,可以考虑使用细胞神经/非线性网络(CNN)。提出了几种类似的CNN算法,用于生成二进制图像掩模和图像分解。还介绍了针对重构算子执行模拟算法的第一批CNN通用芯片的测量结果。基于测得的执行时间,可以评估CNN实施高效但计算昂贵的压缩算法(例如动态图像编码)的可行性。

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