An improved learning scheme for the moving window classifier

Sanaul Hoque, M. Fairhurst
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引用次数: 3

Abstract

The moving window classifier (MWC) is a simple and efficient classifier structure which, although shown to be capable of promising performance in a variety of tasks such as face recognition, its common application is a tool in text recognition. Various measures have been proposed to improve the MWC classification speed and to reduce memory space requirement. This paper introduces techniques for improving the MWC classification accuracy without losing any of gains previously achieved. These performance enhancement schemes are readily applicable to a range of related classifiers and hence provide a generalized method for enhancement in a variety of tasks.
一种改进的移动窗口分类器学习方案
移动窗口分类器(MWC)是一种简单高效的分类器结构,虽然在人脸识别等各种任务中显示出良好的性能,但其常见的应用是文本识别的工具。为了提高MWC分类速度和减少对存储空间的需求,提出了各种措施。本文介绍了提高MWC分类精度的技术,同时又不损失以往取得的任何成果。这些性能增强方案很容易适用于一系列相关的分类器,因此为各种任务的增强提供了一种通用的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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