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Methods and Processors for Image Recognition in a Linear and Quadratic Hamming Space

机译:用于线性和二次汉字空间中的图像识别的方法和处理器

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Image recognition is one of the challenges facing various industries. Image recognition methods based on Euclidean and Hamming distance estimates are the most algorithmically simple and efficient. The paper proposes methods for recognition of analog and digital signals due to the linear and quadratic Euclidean distances in the Hamming space, which are characterized by simplified algorithms and reduced computational complexity. Special-purpose processors for image recognition are designed on the basis of the Hamming distance estimates and structurally optimized components.
机译:图像识别是各行业面临的挑战之一。基于欧几里德和汉明距离估计的图像识别方法是最算法的简单且有效。本文提出了由于汉明空间中的线性和二次欧几里德距离而识别模拟和数字信号的方法,其特征在于简化的算法和降低的计算复杂性。用于图像识别的特殊用途处理器是根据汉明距离估计和结构优化的组件设计的。

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