Hankuk University of Foreign Studies (HUFS) Researchers Describe New Findings in Machine Learning (Improving insurers’ loss reserve error prediction: Adopting combined unsupervised-supervised machine learning techniques in risk management): Machine Learning - Insurance News | InsuranceNewsNet

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November 8, 2022 Newswires
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Hankuk University of Foreign Studies (HUFS) Researchers Describe New Findings in Machine Learning (Improving insurers’ loss reserve error prediction: Adopting combined unsupervised-supervised machine learning techniques in risk management): Machine Learning

Insurance Daily News

2022 NOV 08 (NewsRx) -- By a News Reporter-Staff News Editor at Insurance Daily News -- Researchers detail new data in artificial intelligence. According to news reporting from Hankuk University of Foreign Studies (HUFS) by NewsRx journalists, research stated, “Emerging literature focuses on insurers’ earnings management using estimated liability for unpaid claims, known as loss reserve.”

The news editors obtained a quote from the research from Hankuk University of Foreign Studies (HUFS): “An insurance company generally uses the traditional estimation methods with linear estimation to measure loss reserve error, but those methods are often criticized for several statistical shortcomings, such as estimation technique, correlated contributing variables, ignorance of the interactions, and higher-order terms. To overcome such shortcomings, this paper proposes an unsupervised-supervised machine learning approach, hierarchical clustering, and artificial neural network (ANN) by adopting a combined unsupervised-supervised method, cluster analysis (i.e., unsupervised), and various supervised machine learning algorithms such as Boostings, Support Vector Machine (SVM) and RReliefF. We show evidence that each cluster has its own foundation variables to predict and Boosting and ANN estimation provide a more efficient framework to improve insurers’ reserve error. Also, the different value and order of RReliefF between Boosting and OLS show the under-or over-estimated predictor, and each year’s influential variables are found to be consistent over time, which indicates that the firm’s previous year’s loss reserve model can predict the future loss reserve error.”

According to the news editors, the research concluded: “This paper contributes to the existing literature by suggesting a more robust, consistent, and efficient prediction method (i.e., unsupervised-supervised combination method) to improve insurers’ loss reserve error prediction.”

For more information on this research see: Improving insurers’ loss reserve error prediction: Adopting combined unsupervised-supervised machine learning techniques in risk management. Journal of Finance and Data Science, 2022,8():233-254. (Journal of Finance and Data Science - http://www.keaipublishing.com/en/journals/the-journal-of-finance-and-data-scie). The publisher for Journal of Finance and Data Science is KeAi Communications Co., Ltd.

A free version of this journal article is available at https://doi.org/10.1016/j.jfds.2022.09.003.

Our news journalists report that additional information may be obtained by contacting In Jung Song, Department of Finance, Hankuk University of Foreign Studies (HUFS), South Korea. Additional authors for this research include Wookjae Heo.

(Our reports deliver fact-based news of research and discoveries from around the world.)

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