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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >A robust method for coarse classifier construction from a large number of basic recognizers for on-line handwritten Chinese/Japanese character recognition
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A robust method for coarse classifier construction from a large number of basic recognizers for on-line handwritten Chinese/Japanese character recognition

机译:一种从大量基本识别器构造粗分类器的可靠方法,用于在线手写中日文字识别

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摘要

In this paper, a systematic method is described that constructs an efficient and a robust coarse classifier from a large number of basic recognizers obtained by different parameters of feature extraction, different discriminant methods or functions, etc. The architecture of the coarse classification is a sequential cascade of basic recognizers that reduces the candidates after each basic recognizer. A genetic algorithm determines the best cascade with the best speed and highest performance. The method was applied for on-line handwritten Chinese and Japanese character recognitions. We produced hundreds of basic recognizers with different classification costs and different classification accuracies by changing parameters of feature extraction and discriminant functions. From these basic recognizers, we obtained a rather simple two-stage cascade, resulting in the whole recognition time being reduced largely while maintaining classification and recognition rates.
机译:本文描述了一种系统的方法,该方法从大量的基本识别器中构造出有效且鲁棒的粗分类器,这些基本识别器是通过特征提取的不同参数,不同的判别方法或函数等获得的。粗分类的体系结构是顺序的基本识别器的级联,可在每个基本识别器之后减少候选数。遗传算法确定具有最佳速度和最高性能的最佳级联。该方法已应用于在线手写中文和日语字符识别。通过更改特征提取和判别函数的参数,我们生产了数百种具有不同分类成本和不同分类精度的基本识别器。从这些基本识别器中,我们获得了一个相当简单的两级级联,从而在保持分类和识别率的同时,大大减少了整个识别时间。

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