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模糊系统的逼近精度和规则关系研究
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作者 关学忠 韩彩霞 韩振洲 《控制工程》 CSCD 2005年第S1期93-96,共4页
从模糊系统的逼近精度角度来研究模糊系统的杂程度、逼近精度、控制规则数目之间的关系。通过修改逼近精度的边界而减少了控制规则,近而达到了简化系统复杂程度的目的。通过实例分析可以看出,所设计的模糊系统既达到了所要求的精度,同... 从模糊系统的逼近精度角度来研究模糊系统的杂程度、逼近精度、控制规则数目之间的关系。通过修改逼近精度的边界而减少了控制规则,近而达到了简化系统复杂程度的目的。通过实例分析可以看出,所设计的模糊系统既达到了所要求的精度,同时又使规则数目大大地减少了。 展开更多
关键词 模糊系统 逼近器 逼近精度 规则数目
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ROBUST TRADING RULE SELECTION AND FORECASTING ACCURACY
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作者 SCHMIDBAUER Harald ROSCH Angi +1 位作者 SEZER Tolga TUNALIOGLU Vehbi Sinan 《Journal of Systems Science & Complexity》 SCIE EI CSCD 2014年第1期169-180,共12页
Trading rules performing well on a given data set seldom lead to promising out-of-sample results, a problem which is a consequence of the in-sample data snooping bias. Efforts to justify the selection of trading rules... Trading rules performing well on a given data set seldom lead to promising out-of-sample results, a problem which is a consequence of the in-sample data snooping bias. Efforts to justify the selection of trading rules by assessing the out-of-sample performance will not really remedy this predica- ment either, because they are prone to be trapped in what is known as the out-of-sample data-snooping bias. Our approach to curb the data-snooping bias consists of constructing a framework for trading rule selection using a-priori robustness strategies, where robustness is gauged on the basis of time- series bootstrap and multi-objective criteria. This approach focuses thus on building robustness into the process of trading rule selection at an early stage, rather than on an ex-post assessment of trading rule fitness. Intra-day FX market data constitute the empirical basis of the proposed investigations. Trading rules are selected from a wide universe created by evolutionary computation tools. The authors show evidence of the benefit of this approach in terms of indirect forecasting accuracy when investing in FX markets. 展开更多
关键词 A-priori robustness data-snooping bias efficient market hypothesis evolutionary com-putation intra-day FX markets time-series bootstrap trading rule selection.
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