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Analysis of stock market manipulations using knowledge discovery techniques applied to intraday trade prices

机译:使用知识发现技术对盘中交易价格进行的股市操纵分析

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摘要

This paper addresses challenges relating to applying data mining techniques to detect stock price manipulations and extends previous results by incorporating the analysis of intraday trade prices in addition to closing prices for the investigation of trade-based manipulations. In particular, this work extends previous results on the topic by analysing empirical evidence in normal and manipulated hourly data and the particular characteristics of intraday trades within suspicious hours. Furthermore, the analytical models described in this paper reinforce the results of previous market manipulation studies that are based on traditional statistical and econometrical methods providing an alternative portfolio of methods and techniques originating from the data mining and knowledge discovery areas. With the application of the analytical approach described in this paper, it is possible to identify new fraud manipulation pattern characteristics encoded as decision trees which can be readily employed in fraud detection systems. The paper also proposes a number of policy recommendations towards increasing the effectiveness of the operational processes executed by stock exchange fraud departments and regulatory authorities.
机译:本文解决了与应用数据挖掘技术来检测股票价格操纵有关的挑战,并通过结合日内交易价格分析以及调查基于交易的操纵的收盘价来扩展先前的结果。特别地,这项工作通过分析正常和可操纵的小时数据中的经验证据以及可疑时段内日内交易的特殊特征,扩展了该主题的先前结果。此外,本文描述的分析模型加强了基于传统统计和计量经济学方法的先前市场操纵研究的结果,这些研究提供了来自数据挖掘和知识发现领域的替代方法和技术组合。利用本文描述的分析方法,可以识别编码为决策树的新欺诈操作模式特征,这些特征可以很容易地在欺诈检测系统中使用。本文还提出了一些政策建议,以提高由证券交易所欺诈部门和监管机构执行的操作流程的有效性。

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