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《Evolving And Clustering Fuzzy Decision Tree For Financial Time Series Data Forecasting》.pdf

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ARTICLE IN PRESS Expert Systems with Applications xxx (2008) xxx–xxx Contents lists available at ScienceDirect Expert Systems with Applications journal homepag e: /locate/eswa Evolving and clustering fuzzy decision tree for financial time series data forecasting Robert K. Lai a, Chin-Yuan Fan b, Wei-Hsiu Huang b, Pei-Chann Chang c,* a Department of Computer Science and Engineering, Yuan Ze University, Taoyuan 32026, Taiwan, ROC b Department of Industries Management, Yuan Ze University, Taoyuan 32026, Taiwan, ROC c Department of Information Management,Yuan Ze University, Taoyuan 32026, Taiwan, ROC a r t i c l e i n f o a b s t r a c t Article history: Stock price predictions have always been a subject of interest for investors and professional analysts. Available online xxxx Nevertheless, determining the best time to buy or sell a stock remains very difficult because there are many factors that may influence the stock prices. This paper establishes a novel financial time series-fore- Keywords: casting model by evolving and clustering fuzzy decision tree for stocks in Taiwan Stock Exchange Corpo- Fuzzy theory ration (TSEC). This forecasting model integrates a data clustering technique, a fuzzy decision tree (FDT), Decision tree and genetic algorithms (GA) to construct a decision-making system based on historical data and technical Step-wise regression
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