Explicit Diversification Beneift for Dependent Risks

M. Dacorogna, Laila Elbahtouri, M. Kratz
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引用次数: 1

Abstract

We propose a new approach to analyse the effect of diversification on a portfolio of risks. By means of mixing techniques, we provide an explicit formula for the probability density function of the portfolio. These techniques allow to compute analytically risk measures as VaR or TVaR, and consequently the associated diversification benefit. The explicit formulas constitute ideal tools to analyse the properties of risk measures and diversification benefit. We use standard models, which are popular in the reinsurance industry, Archimedean survival copulas and heavy tailed marginals. We explore numerically their behavior and compare them to the aggregation of independent random variables, as well as of linearly dependent ones. Moreover, the numerical convergence of Monte Carlo simulations of various quantities is tested against the analytical result. The speed of convergence appears to depend on the fatness of the tail; the higher the tail index, the faster the convergence.
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依赖风险的显式分散收益
我们提出了一种新的方法来分析多元化对风险组合的影响。利用混合技术,给出了投资组合的概率密度函数的显式公式。这些技术允许分析性地计算风险度量,如VaR或TVaR,从而获得相关的多样化收益。这些显式公式是分析风险度量和分散收益特性的理想工具。我们使用在再保险行业流行的标准模型、阿基米德生存copulas和重尾边际。我们在数值上探索它们的行为,并将它们与独立随机变量的集合以及线性相关变量的集合进行比较。此外,根据分析结果验证了不同数量蒙特卡罗模拟的数值收敛性。收敛的速度似乎取决于尾巴的粗壮程度;尾指数越高,收敛速度越快。
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