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2CoBel: A scalable belief function representation for 2D discernment frames

机译:2CoBel:2D识别帧的可伸缩置信函数表示

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This paper introduces an innovative approach for handling 2D compound hypotheses within the Belief Function framework. We propose a polygon-based generic representation which relies on polygon clipping operators, as well as on a topological ordering of the focal elements within a directed acyclic graph encoding their interconnections. This approach allows us to make the computational cost for the hypothesis representation independent of the cardinality of the discernment frame. For belief combination, canonical decomposition and decision making, we propose efficient algorithms which rely on hashes for fast lookup, and which benefit from the proposed graph representation. An implementation of the functionalities proposed in this paper is provided as an open source library. In addition to an illustrative synthetic example, quantitative experimental results on a pedestrian localization problem are reported. The experiments show that the solution is accurate and that it fully benefits from the scalability of the 2D search space granularity provided by our representation. (C) 2018 Elsevier Inc. All rights reserved.
机译:本文介绍了一种在Belief Function框架内处理2D复合假设的创新方法。我们提出了一种基于多边形的通用表示形式,该表示形式依赖于多边形裁剪运算符以及聚焦元素在对其互连进行编码的有向无环图中的拓扑顺序。这种方法使我们能够使假设表示的计算成本独立于识别框架的基数。对于置信度组合,规范分解和决策制定,我们提出了一种高效的算法,该算法依赖于哈希值进行快速查找,并且受益于所提出的图形表示。本文提出的功能的实现是作为开源库提供的。除了说明性的合成示例外,还报告了有关行人定位问题的定量实验结果。实验表明,该解决方案是准确的,并且完全受益于我们提供的2D搜索空间粒度的可伸缩性。 (C)2018 Elsevier Inc.保留所有权利。

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