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APPLICATION OF REGRESSION ANALYSIS IN PREDICTING INSURANCE CLAIMS

Format: MS WORD  |  Chapter: 1-5  |  Pages: 65  |  12 Users found this project useful  |  Price NGN5,000

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Application of Regression Analysis in Predicting Insurance Claims

 

Abstract

Regression analysis is an important statistical technique used to examine relationships between variables and make predictions based on available data. In the insurance industry, the ability to predict future claims is essential for effective risk assessment, premium determination, financial planning, and claims management. Insurance claims may be influenced by factors such as policy characteristics, claim history, exposure levels, and other relevant risk factors. However, inaccurate prediction of claims can affect insurers’ financial decisions and risk management practices. This study therefore examines the application of regression analysis in predicting insurance claims. Regression analysis provides a systematic approach for identifying the relationship between a dependent variable and one or more independent variables. In insurance applications, historical claims data can be analysed to determine how selected explanatory variables are associated with claim outcomes. Simple regression may be applied where prediction is based on a single explanatory variable, while multiple regression can incorporate several relevant predictors. The application of these techniques can enable insurers to develop predictive models that provide useful estimates for future claims and support evidence-based decision-making. Insurance claims prediction involves estimating the likely frequency or amount of claims using relevant historical and policy-related information. Effective prediction can help insurance companies improve risk classification, anticipate potential claim liabilities, allocate resources, and strengthen financial planning. Regression analysis can contribute to this process by quantifying relationships between claims and selected explanatory variables and by providing estimates that can be evaluated for predictive usefulness. Appropriate model specification, data quality, and statistical assumptions are therefore important considerations when applying regression analysis to insurance claims prediction. The study will adopt an appropriate quantitative research design based on secondary insurance claims data. Relevant historical claims records will be obtained from an appropriate insurance dataset and prepared for statistical analysis. Descriptive statistical techniques will first be used to examine the characteristics of the variables, after which regression analysis will be applied to determine the relationship between selected explanatory variables and insurance claims. Model parameters, goodness-of-fit measures, statistical significance, and prediction errors will be examined to assess the suitability of the regression model for claims prediction. The study is expected to establish that regression analysis can provide useful predictive estimates of insurance claims when relevant variables and suitable historical data are incorporated into the model. It is expected that selected explanatory variables will demonstrate measurable relationships with insurance claims and that the resulting regression model will provide a reasonable basis for estimating future claims. The findings may also indicate that model performance depends on the quality of the available data, appropriate variable selection, and adherence to relevant regression assumptions. The study will conclude that regression analysis can serve as a valuable statistical tool for insurance claims prediction and actuarial decision-making. It will recommend that insurance companies strengthen the collection and management of claims data and apply appropriate regression techniques when developing predictive models. Regular evaluation and validation of prediction models should also be encouraged to ensure that estimates remain useful as claims patterns and insurance risk characteristics change. Effective application of regression analysis can support improved claims management, risk assessment, financial planning, and evidence-based insurance decisions.

Keywords: Regression Analysis, Insurance Claims, Claims Prediction, Predictive Modelling, Insurance Risk, Actuarial Science, Statistical Modelling, Claims Management, Risk Assessment, Insurance Data, Regression Model, Forecasting, Predictive Analysis, Statistical Analysis, Insurance Decision-Making

 

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