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Financial Market Trading System With a Hierarchical Coevolutionary Fuzzy Predictive Model

机译:具有等级共同划合模糊预测模型的金融市场交易系统

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Financial market prediction and trading presents a challenging task that attracts great interest from researchers and investors because success may result in substantial rewards. This paper describes the application of a hierarchical coevolutionary fuzzy system called HiCEFS for predicting financial time series. A novel financial trading system using HiCEFS as a predictive model and employing a prudent trading strategy based on the price percentage oscillator (PPO) is proposed. In order to construct an accurate predictive model, a form of generic membership function named Irregular Shaped Membership Function (ISMF) is employed and a hierarchical coevolutionary genetic algorithm (HCGA) is adopted to automatically derive the ISMFs for each input feature in HiCEFS. With the accurate prediction from HiCEFS and the prudent trading strategy, the proposed system outperforms the simple buy-and-hold strategy, the trading system without prediction and the trading system with other predictive models (EFuNN, DENFIS and RSPOP) on real-world financial data.
机译:金融市场预测和交易提出了一个充满挑战的任务,吸引了研究人员和投资者的巨大兴趣,因为成功可能会导致大量奖励。本文介绍了一个分层共同面积模糊系统的应用,称为HICEFS预测财务时间序列。提出了一种新的金融交易系统,使用闭幕式作为预测模型,并采用基于价格百分比振荡器(PPO)的审慎交易策略。为了构建精确的预测模型,采用了一种名为不规则形状的隶属函数(ISMF)的通用隶属函数的形式,采用分层共切遗传算法(HCGA)来自动导出HICEF中的每个输入功能的ISMF。凭借从闭经电布和审慎交易策略的准确预测,拟议的系统优于简单的购买和持有策略,该战略,无需预测和其他预测模型(EFUNN,DENFIS和RSPOP)的交易系统就现实世界金融数据。

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