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When quantitative trading meets machine learning: A pilot survey

  • Beihang University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Quantitative trading strategies are designed to look for relationships between data about an underlying security and its future price and then to generate alpha on a trading desk. Recent years have witnessed the increasing attention from both academic and corporate sectors on enhancing quantitative trading by machine learning techniques due to their excellent predictive powers, with a few successful stories from the markets further boosting optimism for this method of analysis. In this paper, we aim to conduct a comprehensive survey on the pilot study of applying machine learning for quantitative trading. We will review some earlier studies of using NNs and SVMs for stock price prediction. We will also touch some recent studies on designing online learning algorithms based on characteristics of financial time series, e.g., mean reversion of stock price. Another application of machine learning in quantitative trading is called meta-learning algorithm which considers how to assign weights to strategies. We will finally summarize the above research by pointing out promising machine learning techniques for different categories of trading strategies. We will also discuss slightly the potentials of machine learning techniques in helping generate strategies that do not only base on financial market data, like behavioral strategy, event-driven and untraditional index strategy.

源语言英语
主期刊名2016 13th International Conference on Service Systems and Service Management, ICSSSM 2016
编辑Jian Chen, Xiaoqiang Cai, Changchun Zhou, Kaida Qin, Baojian Yang
出版商Institute of Electrical and Electronics Engineers Inc.
ISBN(电子版)9781509028429
DOI
出版状态已出版 - 9 8月 2016
活动13th International Conference on Service Systems and Service Management, ICSSSM 2016 - Kunming, 中国
期限: 24 6月 201626 6月 2016

丛书

姓名2016 13th International Conference on Service Systems and Service Management, ICSSSM 2016

会议

会议13th International Conference on Service Systems and Service Management, ICSSSM 2016
国家/地区中国
Kunming
时期24/06/1626/06/16

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