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Improving the performance of intelligent stock trading systems by using a high level representation for the inputs

机译:通过对输入使用高级表示来提高智能股票交易系统的性能

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Intelligent stock trading systems use soft computing techniques for forecasting the trend of the stock price. But the so-called noise in the market usually results in overtrading and loss of profit. In order to reduce the effect of noise on the trading decisions, high level representations can be used for the output of the trading systems. But the technical indicators which act as the inputs of the trading system, suffer from these short term irregularities as well. This paper suggests a high level representation for the technical indicators to match the level of information in the outputs. Digital low pass filters are carefully designed to remove the transient fluctuations of the technical indicators without losing too much information. Several experiments on different stocks in Tehran Stock Exchange shows a major improvement in the performance of the intelligent stock trading systems.
机译:智能股票交易系统使用软计算技术来预测股票价格的趋势。但是市场上所谓的噪音通常会导致交易过量和利润损失。为了减少噪声对交易决策的影响,可以将高级表示用于交易系统的输出。但是,作为交易系统输入的技术指标也遭受这些短期违规行为的困扰。本文建议对技术指标进行高水平的表述,以匹配产出中的信息水平。数字低通滤波器经过精心设计,可以消除技术指标的瞬态波动,而不会丢失太多信息。在德黑兰证券交易所对不同股票进行的几次实验表明,智能股票交易系统的性能有了重大改进。

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