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Cosmic web-type classification using decision theory

机译:基于决策理论的宇宙网型分类

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Aims. We propose a decision criterion for segmenting the cosmic web into different structure types (voids, sheets, filaments, and clusters) on the basis of their respective probabilities and the strength of data constraints. Methods. Our approach is inspired by an analysis of games of chance where the gambler only plays if a positive expected net gain can be achieved based on some degree of privileged information. Results. The result is a general solution for classification problems in the face of uncertainty, including the option of not committing to a class for a candidate object. As an illustration, we produce high-resolution maps of web-type constituents in the nearby Universe as probed by the Sloan Digital Sky Survey main galaxy sample. Other possible applications include the selection and labelling of objects in catalogues derived from astronomical survey data.
机译:目的我们根据其各自的概率和数据约束的强度,提出了将宇宙网划分为不同结构类型(空隙,薄片,细丝和簇)的决策标准。方法。我们的方法是通过对机会博弈的分析启发而来的,在这种博弈中,只有基于一定程度的特权信息才能获得预期的正净收益时,赌徒才能参与。结果。结果是面对不确定性时分类问题的一般解决方案,包括不选择候选对象类的选项。作为说明,我们制作了斯隆数字天空调查主要星系样本所探测到的附近宇宙中网络类型成分的高分辨率地图。其他可能的应用包括从天文调查数据派生出的目录中对象的选择和标记。

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