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Affine-invariant gray-scale character recognition using GAT correlation

机译:基于GAT相关的仿射不变灰度字符识别

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This paper describes a new technique of gray-scale character recognition that offers both noise-tolerance and affine-invariance. The key ideas are twofold. First is the use of normalized cross-correlation to realize noise-tolerance. Second is the application of global affine transformation (GAT) to the input image so as to achieve affine-invariant correlation with the target image. In particular, optimal GAT is efficiently determined by the successive iteration method. We demonstrate the high matching ability of the proposed method using gray-scale images of numerals subjected to random Gaussian noise and a wide range of affine transformation. The achieved recognition rate of 92.1% against rotation within 30 degrees, scale change within 30%, and translation within 20% of the character width is sufficiently high compared to the 42.0% offered by simple correlation.
机译:本文介绍了一种新的灰度字符识别技术,提供噪声容忍和仿佛不变性。关键的想法是双重的。首先是使用归一化的互相关来实现噪声容差。其次是将全局仿射变换(GAT)应用于输入图像,以实现与目标图像的仿射不变相关性。特别地,通过连续的迭代方法有效地确定最佳GAT。我们展示了所提出的方法的高匹配能力,使用灰度图像经受随机高斯噪声的灰度图像和各种仿射变换。在30%以内的旋转内实现的识别率为92.1%,在30%以内的尺度变化,并且在字符宽度的20%内的翻译与简单相关的42.0%相比,在特征宽度的20%以内。

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