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A system and method for automatic handwriting recognition by means of a writer-independent chirographic label alphabet

机译:通过与作者无关的手书标签字母自动识别手写的系统和方法

摘要

An automatic handwriting recognition system wherein each written (chirographic) manifestation of each character is represented by a statistical model (called a hidden Markov model). The system implements a method which entails sampling a pool of independent writers and deriving a hidden Markov model for each particular character (allograph) which is independent of a particular writer. The HMMs are used to derive a chirographic label alphabet which is independent of each writer. This is accomplished during what is described as the training phase of the system. The alphabet is constructed using supervised techniques. That is, the alphabet is constructed using information learned in the training phase to adjust the result according to a statistical algorithm (such as a Viterbi alignment) to arrive at a cost efficient recognition tool. Once such an alphabet is constructed a new set of HMMs can be defined which more accurately reflects parameter typing across writers. The system recognizes handwriting by applying an efficient hierarchical decoding strategy which employs a fast match and a detailed match function, thereby making the recognition cost effective.
机译:一种自动手写识别系统,其中每个字符的每个书面(手迹)表现形式都由统计模型(称为隐马尔可夫模型)表示。该系统实现了一种方法,该方法需要对独立作者池进行采样,并为独立于特定作者的每个特定角色(同位字母)推导隐藏的马尔可夫模型。 HMM用于导出独立于每个书写者的手印标签字母。这是在系统的培训阶段完成的。字母是使用监督技术构建的。即,使用在训练阶段学到的信息来构造字母表,以根据统计算法(例如维特比(Viterbi)对齐)调整结果,从而获得具有成本效益的识别工具。一旦构建了这样的字母,就可以定义一组新的HMM,这些HMM可以更准确地反映跨编写器的参数类型。该系统通过应用高效的分层解码策略来识别手写,该策略采用快速匹配和详细匹配功能,从而使识别具有成本效益。

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