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Improving Trading Systems Using the RSI Financial Indicator and Neural Networks

机译:使用RSI财务指标和神经网络改善交易系统

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Trading and Stock Behavioral Analysis Systems require efficient Artificial Intelligence techniques for analyzing Large Financial Datasets (LFD) and have become in the current economic landscape a significant challenge for multi-disciplinary research. Particularly, Trading-oriented Decision Support Systems based on the Chartist or Technical Analysis Relative Strength Indicator (RSI) have been published and used worldwide. However, its combination with Neural Networks as a branch of computational intelligence which can outperform previous results remain a relevant approach which has not deserved enough attention. In this paper, we present the Chartist Analysis Platform for Trading (CAST, in short) platform, a proof-of-concept architecture and implementation of a Trading Decision Support System based on the RSI and Feed-Forward Neural Networks (FFNN). CAST provides a set of relatively more accurate financial decisions yielded by the combination of Artificial Intelligence techniques to the RSI calculation and a more precise and improved upshot obtained from feed-forward algorithms application to stock value datasets.
机译:交易和股票行为分析系统需要高效的人工智能技术来分析大型金融数据集(LFD),并且已成为当前经济形势下跨学科研究的重大挑战。特别是,已经在全球范围内发布并使用了基于宪章或技术分析相对强度指标(RSI)的面向交易的决策支持系统。但是,它与神经网络的结合作为计算智能的一个分支,其性能可能胜过先前的结果,仍然是一种相关的方法,因此没有引起足够的重视。在本文中,我们介绍了基于Chartist的交易分析平台(CAST)平台,概念证明架构以及基于RSI和前馈神经网络(FFNN)的交易决策支持系统的实现。 CAST提供了一组相对更准确的财务决策,这些决策是通过将人工智能技术用于RSI计算以及从前馈算法应用于股票价值数据集获得的更精确和改进的结果而得出的。

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