首页> 外文期刊>International Journal of Pattern Recognition and Artificial Intelligence >EMPIRICAL DESIGN OF A MULTI-CLASSIFIER THRESHOLDING/CONTROL STRATEGY FOR RECOGNITION OF HANDWRITTEN STREET NAMES
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EMPIRICAL DESIGN OF A MULTI-CLASSIFIER THRESHOLDING/CONTROL STRATEGY FOR RECOGNITION OF HANDWRITTEN STREET NAMES

机译:手写街道名称识别的多分类阈值/控制策略的实证设计

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摘要

A central task in the interpretation of handwritten US postal addresses is the off-line recognition of the street name. A lexicon of candidate street names may be extracted from a database of postal delivery points (DPF) by first locating and recognizing numeric fields such as the ZIP code and street number. The off-line handwritten word recognition (HWR) task is made difficult by the unconstrained, omni-scriptor nature of the input, and incomplete lexicons resulting from errors in processing numeric fields and intrinsic deficiencies in the DPF. In this paper, we describe an empirical approach to the design of a multi-classifier HWR Thresholding/Control module which forms part of a real-time handwritten address interpretation (HWAI) system. The decisions of two word classifiers are combined in a hierarchical manner to improve recognition and error-rejection performance, while meeting real-time requirements. The design employs logistic regression and agreement for evidence combination, and lexicon reduction for improved throughput as well as performance. The paper concludes with experimental results and directions for future research.
机译:手写美国邮政地址的解释的中心任务是街道名称的离线识别。通过首先定位和识别诸如邮政编码和街道编号之类的数字字段,可以从邮政交货点(DPF)数据库中提取候选街道名称的词典。输入的无限制,全脚本性质以及由于处理数字字段中的错误和DPF中的固有缺陷而导致的不完整词典,使得离线手写单词识别(HWR)任务变得困难。在本文中,我们描述了一种设计多分类器HWR阈值/控制模块的经验方法,该模块构成了实时手写地址解释(HWAI)系统的一部分。两个单词分类器的决策以分层方式组合在一起,以提高识别和错误排除性能,同时满足实时要求。该设计采用逻辑回归和协议进行证据合并,并采用词典缩减功能来提高吞吐量和性能。本文最后给出了实验结果和未来研究的方向。

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