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Outer approximating coherent lower probabilities with belief functions

机译:带置信函数的外部近似相干较低概率

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From an epistemic point of view, coherent lower probabilities allow us to model the imprecise information about a partially unknown probability. However, there are some issues that hinder their use in practice. Since belief functions are easier to deal with, we propose to approximate the coherent lower probability by a belief function that is at the same time as close as possible to the initial coherent lower probability while not including additional information. We show that this problem can be tackled by means of linear programming, and investigate the features of the set of optimal solutions. Moreover, we emphasize the differences with the outer approximations by 2-monotone lower probabilities. We also study the problem for two particular cases of belief functions that are computationally easier to handle: necessity measures and probability boxes. (C) 2019 Elsevier Inc. All rights reserved.
机译:从认识论的角度来看,相干的较低概率使我们可以对有关部分未知概率的不精确信息进行建模。但是,有些问题阻碍了它们在实践中的使用。由于置信函数更易于处理,因此我们建议通过置信函数对相干较低概率进行近似,该置信函数应尽可能接近初始相干较低概率,同时不包括其他信息。我们证明了可以通过线性规划解决该问题,并研究了最优解集的特征。此外,我们通过2单调较低的概率强调了与外部近似的差异。我们还研究了在计算上更易于处理的两种特定情况下的信念函数的问题:必要性度量和概率框。 (C)2019 Elsevier Inc.保留所有权利。

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