Feature Extraction on Binary Patterns

G. Nagy
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引用次数: 29

Abstract

The objects and methods of automatic feature extraction on binary patterns are briefly reviewed. An intuitive interpretation for geometric features is suggested whereby such a feature is conceived of as a cluster of component vectors in pattern space. A modified version of the Isodata or K-means clustering algorithm is applied to a set of patterns originally proposed by Block, Nilsson, and Duda, and to another artificial alphabet. Results are given in terms of a figure-of-merit which measures the deviation between the original patterns and the patterns reconstructed from the automatically derived feature set.
二值模式的特征提取
简要介绍了二值模式自动特征提取的目标和方法。对几何特征提出了一种直观的解释,即这种特征被认为是模式空间中的一组分量向量。Isodata或K-means聚类算法的修改版本应用于最初由Block、Nilsson和Duda提出的一组模式,以及另一个人工字母表。结果给出了一个指标,衡量原始模式和从自动衍生的特征集重建的模式之间的偏差。
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