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A Recognition Method Using Neighbor Dependence

机译:一种基于邻居依赖的识别方法

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摘要

Within the framework of an early paper1 which considers character recognition as a statistical decision problem, the detailed structure of a recognition system can be systematically derived from the functional form of probability distributions. A binary matrix representation of signal is used in this paper. A nearest-neighbor dependence method is obtained by going beyond the usual assumption of statistical independence. The recognition network consists of three levels????????a layer of AND gates, a set of linear summing networks in parallel, and a maximum selection circuit. Formulas for weights or recognition parameters are also derived, as logarithms of ratios of conditional probabilities. These formulas lead to a straightforward procedure of estimating weights from sample characters, which are then used in subsequent recognition. Simulation of the recognition method is performed on a digital computer. The program consists of two main operations-estimation of parameters from sample characters, and recognition using these estimated values. The experimental results indicate that the effect of neighbor dependence upon recognition performance is significant. On the basis of a rather small sample of 50 sets of hand-printed alphanumeric characters, the recognition performance of the nearest-neighbor method compares favorably with other recognition schemes.
机译:在将字符识别视为统计决策问题的早期论文1的框架内,可以从概率分布的功能形式系统地得出识别系统的详细结构。本文使用信号的二进制矩阵表示。通过超越通常的统计独立性假设,可以获得最近邻依赖方法。识别网络由三层组成:一层“与”门,一组并行的线性求和网络和一个最大选择电路。还可以得出权重或识别参数的公式,作为条件概率之比的对数。这些公式导致从样本字符估计权重的简单过程,然后将其用于后续识别。识别方法的模拟是在数字计算机上执行的。该程序包括两个主要操作:根据样本字符估算参数,并使用这些估算值进行识别。实验结果表明,邻居对识别性能的影响是显着的。基于50个手工打印的字母数字字符集的较小样本,最近邻方法的识别性能优于其他识别方案。

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