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一种基于信息增益与费用评价函数的特征选择准则
引用本文:王亚东,郭茂祖,钱国良. 一种基于信息增益与费用评价函数的特征选择准则[J]. 计算机研究与发展, 1999, 36(7): 788-793
作者姓名:王亚东  郭茂祖  钱国良
作者单位:哈尔滨工业大学计算机科学与工程系
基金项目:国家自然科学基金,哈工大校管基金
摘    要:特征选择问题是机器学习和模式识别中的一个重要问题,然而,在实际应用中,由于没有将特征选择与特征提取过程统一考虑,只注重特征本身的分类性能,没有考虑特征提取的费用问题,导致识别系统的效率较低,文中从实际应用角度,提出一种新的特征选择准则,将分类性能与特征的提取费用统一考虑,利用信息增益与特征提取费用综合评价函数作为特征选择准则,并给出了启发式算法ECFS〈将算法应用于实际领域的学习问题并与决策树算

关 键 词:信息增益 费用 特征选择 机器学习 模式识别

A FEATURE SELECTIONCRITERION BASED ON INFORMATION GAIN AND COST EVALUATION FUNCTION
WANG Ya-DongGUO Mao-ZuQIAN Guo-Liang. A FEATURE SELECTIONCRITERION BASED ON INFORMATION GAIN AND COST EVALUATION FUNCTION[J]. Journal of Computer Research and Development, 1999, 36(7): 788-793
Authors:WANG Ya-DongGUO Mao-ZuQIAN Guo-Liang
Affiliation:WANG Ya-Dong;(Department of Computer Science and Engineering, Harbin Institute of Technology, Harbin150001);GUO Mao-Zu;(Department of Computer Science and Engineering, Harbin Institute of Technology, Harbin150001);QIAN Guo-Liang;(Department of Computer Science and Engineering, Harbin Institute of Technology, Harbin150001)
Abstract:Feature selection is an important problem in the fields of machine learning and pattern recognition. However, in real world domains, the fact that feature selection and feature extraction are not considered together in existing heuristic algorithms leads to the lower efficiency of application system. In this paper, a new feature selection criterion is presented which considers feature selection and feature extraction together. A heuristic algorithm based on information gain and cost of feature extraction evaluation function, ECFS is also given. It is applied to the learning problem in real world domain and is compared with ID3 and BP algorithms. The experimental results show that under the condition of ensuring the recognition rate, ECFS can reduce a lot of cost of feature extraction and improve recognition speed greatly.
Keywords:information gain   cost   feature selection   decision tree  
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