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Titlebook: Mathematical and Statistical Methods for Actuarial Sciences and Finance; MAF2024 Marco Corazza,Frédéric Gannon,Vincent Touzé Conference pro

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楼主: vitamin-D
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Diana Barro,Antonella Basso,Stefania Funari,Guglielmo Alessandro Visentinimport substitution, entrepreneurship and business creation, science and technology development, and fiscal policies.  The resulting analysis, in a comparative perspective, provides a framework for future research as well as for business practice and policymaking..
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Alessia Benevento,Fabrizio Durante,Daniela Gallo,Aurora Gattoimport substitution, entrepreneurship and business creation, science and technology development, and fiscal policies.  The resulting analysis, in a comparative perspective, provides a framework for future research as well as for business practice and policymaking..
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Mathematical and Statistical Methods for Actuarial Sciences and FinanceMAF2024
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,Machine Learning for ESG Rating Classification: An Integrated Replicable Model with Financial and Spply a Machine Learning (ML) model. Using a Random Forest (RF) classification model, we estimate the ESG rating class at time . with unprecedented accuracy. This agile and parsimonious model can provide valuable information to sustainable investors for making strategic investment decisions.
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,The Environmental Score and the Financial Statement: A Machine Learning Analysis for Four European ection of European listed firms, our investigation aims to reveal potential relationships between corporate financial variables and the E score. To unravel complex, non-linear relationships within one of the most environmentally conscious markets, namely the European market, we employ advanced techn
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