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Adaptation of an address reading system to local mail streams

机译:使地址读取系统适应本地邮件流

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A scheme for handwriting adaptation for post offices is described to improve recognition performance of German addresses. The recognition system is based on a tied-mixture hidden Markov model, whose parameters are updated using the expectation maximization technique, the maximum likelihood linear regression algorithm and a new discriminative adaptation technique, the scaled likelihood linear regression. Contrary to the usual approach of adapting a writer-independent system to a specific writer we propose to adapt the system to the writer-independent data of a specific post office. The resulting system for each post office yields up to 16% lower word recognition errors.
机译:描述了用于邮局的手写适应计划,以提高德语地址的识别性能。识别系统基于绑定的混合隐马尔可夫模型,其参数使用期望的最大化技术,最大似然线性回归算法和新的鉴别性适应技术,缩放似然线性回归。违背将作者独立系统适应特定作家的常见方法,我们建议将系统调整到特定邮局的作者无关数据。每个邮局所产生的系统产生高达16%的单词识别误差。

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