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A feature for character recognition based on directional distance distributions

机译:基于方向距离分布的字符识别功能

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The performance of a character recognition system depends heavily on what features are being used. Though many kinds of features have been developed and their test performances on a standard database have been reported, there is still room to improve the recognition rate by developing an improved feature. The authors propose a new feature based on DDD (directional distance distribution) information. This new concept regards the input pattern array as being circular. It also contains very rich information by encoding in one representation both the white/black distribution and the directional distance distribution. A test performed on the CENPARMI handwritten numeral database showed a promising result of 97.3% recognition with a neural network classifier using the DDD feature.
机译:字符识别系统的性能在很大程度上取决于所使用的功能。尽管已经开发了多种功能,并且已经报告了它们在标准数据库上的测试性能,但是通过开发改进的功能,仍有提高识别率的空间。作者提出了一种基于DDD(方向距离分布)信息的新功能。这个新概念将输入模式数组视为圆形。通过以白色/黑色分布和方向距离分布的一种表示形式进行编码,它还包含非常丰富的信息。在CENPARMI手写数字数据库上进行的测试显示,使用DDD功能的神经网络分类器可识别97.3%的结果。

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