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Fourier-Information Duality in the Identity Management Problem

机译:傅里叶信息在身份管理问题中的二元性

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We compare two recently proposed approaches for representing probability distributions over the space of permutations in the context of multi-target tracking. We show that these two representations, the Fourier approximation and the information form approximation can both be viewed as low dimensional projections of a true distribution, but with respect to different metrics. We identify the strengths and weaknesses of each approximation, and propose an algorithm for converting between the two forms, allowing for a hybrid approach that draws on the strengths of both representations. We show experimental evidence that there are situations where hybrid algorithms are favorable.
机译:我们比较了两种最近提出的方法来代表在多目标跟踪的上下文中的排列空间上的概率分布方法。我们示出这两个表示,傅里叶近似和信息形式近似都可以被视为真正分布的低维投影,而是相对于不同的度量。我们识别每个近似的强度和弱点,并提出了一种用于在两种形式之间转换的算法,允许一种借鉴两个表示的强度的混合方法。我们显示实验证据,即有杂交算法有利的情况。

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