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OFF-LINE CURSIVE SCRIPT RECOGNITION BASED ON CONTINUOUS DENSITY HMM

机译:基于连续密度HMM的离线法学脚本识别

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A system for off-line cursive script recognition is presented. A new normalization technique (based on statistical methods) to compensate for the variability of writing style is described. The key problem of segmentation is avoided by applying a sliding window on the handwritten words. A feature vector is extracted from each frame isolated by the window. The feature vectors are used as observations in letter-oriented continuous density HMMs that perform the recognition. Feature extraction and modeling techniques are illustrated. In order to allow the comparison of the results, the system has been trained and tested using the same data and experimental conditions as in other published works. Performances comparable to those of more complex systems have been achieved.
机译:提出了一种用于离线法学脚本识别的系统。描述了一种新的归一化技术(基于统计方法)来补偿写入风格的变化。通过在手写单词上应用滑动窗口来避免分割的关键问题。从窗口隔离的每个帧中提取特征向量。特征向量用作以字母为导向的连续密度HMMS的观察,执行识别。示出了特征提取和建模技术。为了允许比较结果,系统已经使用与其他公开作品中的相同数据和实验条件进行了培训和测试。已经实现了与更复杂系统相当的性能。

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