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Robust portfolio asset allocation and risk measures

机译:稳健的资产组合资产配置和风险衡量

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摘要

Many financial optimization problems involve future values of security prices, interest rates and exchange rates which are not known in advance, but can only be forecast or estimated. Several methodologies have therefore, been proposed to handle the uncertainty in financial optimization problems. One such methodology is Robust Statistics, which addresses the problem of making estimates of the uncertain parameters that are insensitive to small variations. A different way to achieve robustness is provided by Robust Optimization which, given optimization problems with uncertain parameters, looks for solutions that will achieve good objective function values for the realization of these parameters in given uncertainty sets. Robust Optimization thus offers a vehicle to incorporate an estimation of uncertain parameters into the decision making process. This is true, for example, in portfolio asset allocation. Starting with the robust counterparts of the classical mean-variance and minimum-variance portfolio optimization problems, in this paper we review several mathematical models, and related algorithmic approaches, that have recently been proposed to address uncertainty in portfolio asset allocation, focusing on Robust Optimization methodology. We also give an overview of some of the computational results that have been obtained with the described approaches. In addition we analyse the relationship between the concepts of robustness and convex risk measures.
机译:许多财务优化问题涉及证券价格,利率和汇率的未来价值,这些价值事先不知道,但只能预测或估计。因此,已经提出了几种方法来处理金融优化问题中的不确定性。一种这样的方法是稳健统计,它解决了对对小变化不敏感的不确定参数进行估计的问题。鲁棒性优化提供了一种实现鲁棒性的不同方法,该方法在给定具有不确定参数的优化问题的情况下,寻找能够在给定不确定性集中实现这些参数的良好目标函数值的解决方案。因此,稳健优化提供了一种将不确定参数估计值纳入决策过程的工具。例如,在投资组合资产分配中就是如此。从经典均值方差和最小方差投资组合优化问题的鲁棒对应物开始,本文回顾了最近为解决投资组合资产分配中的不确定性而提出的几种数学模型和相关算法,着重于鲁棒优化方法。我们还概述了使用上述方法获得的一些计算结果。此外,我们分析了稳健性概念和凸风险度量之间的关系。

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