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Combining online and offline recognizers in a handwriting recognition system

机译:在手写识别系统中结合在线和离线识别器

摘要

Described is a technology by which online recognition of handwritten input data is combined with offline recognition and processing to obtain a combined recognition result. In general, the combination improves overall recognition accuracy. In one aspect, online and offline recognition is separately performed to obtain online and offline character-level recognition scores for candidates (hypotheses). A statistical analysis-based combination algorithm, an AdaBoost algorithm, and/or a neural network-based combination may determine a combination function to combine the scores to produce a result set of one or more results. Online and offline radical-level recognition may be performed. For example, a HMM recognizer may generate online radical scores used to build a radical graph, which is then rescored using the offline radical recognition scores. Paths in the rescored graph are then searched to provide the combined recognition result, e.g., corresponding to the path with the highest score.
机译:描述了一种技术,通过该技术将手写输入数据的在线识别与离线识别和处理相结合以获得组合的识别结果。通常,该组合提高了整体识别精度。一方面,分别执行在线和离线识别以获取候选的在线和离线字符级识别分数(假设)。基于统计分析的组合算法,AdaBoost算法和/或基于神经网络的组合可以确定组合功能以组合得分以产生一个或多个结果的结果集。可以执行在线和离线基本级别识别。例如,HMM识别器可以生成用于构建部首图的在线部首分数,然后使用离线部首基识别分数对其进行重新评分。然后搜索重新计分的图中的路径以提供组合的识别结果,例如,对应于具有最高得分的路径。

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