大数据主题投资:私募股权案例

IF 3.4 3区 经济学 Q1 BUSINESS, FINANCE
Ludovic Phalippou
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引用次数: 0

摘要

我们使用自然语言处理技术,根据新闻文章同时包含公司名称和术语的频率对公司进行评分。然后创建索引,并可以以高频率无缝更新索引。权重设置为对该主题的相对暴露的函数。我们增加了流动性限制,以确保交易成本最小化。尽管算法没有对收益和相关性进行优化,但该上市私募基金指数与常用的私募基金市场指数高度相关,与Burgiss杠杆收购基金指数相关性接近90%。此外,我们的指数与非交易杠杆收购(LBO)基金指数具有相似的回报。我们的方法可以推广到许多其他投资主题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thematic Investing with Big Data: The Case of Private Equity
Using natural language processing, we score companies based on the frequency with which news articles contain both their names and terms private equity and leveraged buy-out. An index is then created and can be updated seamlessly at high frequency. The weights are set as a function of the relative exposure to this theme. We add liquidity constraints to ensure minimal transaction costs. Even though the algorithm does not optimize on either return or correlation, this listed private equity index is highly correlated to commonly used private equity fund market indices: nearly 90% correlation with Burgiss LBO fund index. In addition, our index has similar returns as non-tradable Leveraged Buy-Outs (LBO) fund indices. Our approach can be generalized to many other investment themes.
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来源期刊
Financial Analysts Journal
Financial Analysts Journal BUSINESS, FINANCE-
CiteScore
5.40
自引率
7.10%
发文量
31
期刊介绍: The Financial Analysts Journal aims to be the leading practitioner journal in the investment management community by advancing the knowledge and understanding of the practice of investment management through the publication of rigorous, peer-reviewed, practitioner-relevant research from leading academics and practitioners.
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