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A Sheaf and Topology Approach to Detecting Local Merging Relations in Digital Images

机译:一种捆和拓扑方法来检测数字图像中的局部合并关系

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This paper concerns a theoretical approach that combines topological data analysis (TDA) and sheaf theory. Topological data analysis, a rising field in mathematics and computer science, concerns the shape of the data and has been proven effective in many scientific disciplines. Sheaf theory, a mathematics subject in algebraic geometry, provides a framework for describing the local consistency in geometric objects. Persistent homology (PH) is one of the main driving forces in TDA, and the idea is to track changes in geometric objects at different scales. The persistence diagram (PD) summarizes the information of PH in the form of a multi-set. While PD provides useful information about the underlying objects, it lacks fine relations about the local consistency of specific pairs of generators in PD, such as the merging relation between two connected components in the PH. The sheaf structure provides a novel point of view for describing the merging relation of local objects in PH. It is the goal of this paper to establish a theoretic framework that utilizes the sheaf theory to uncover finer information from the PH. We also show that the proposed theory can be applied to identify the merging relations of local objects in digital images.
机译:本文涉及一种与拓扑数据分析(TDA)和捆理论结合的理论方法。拓扑数据分析,数学和计算机科学中的一个上升领域,涉及数据的形状,并且在许多科学学科中被证明是有效的。捆理论是代数几何中的数学主题,提供了一种描述几何对象中的局部一致性的框架。持续同源性(pH)是TDA中的主要驱动力之一,并且该思想是跟踪不同尺度的几何物体的变化。持久性图(PD)以多集的形式总结了pH的信息。虽然PD提供有关底层对象的有用信息,但它缺乏关于PD中特定发电机对的局部一致性的良好关系,例如PH中的两个连接组件之间的合并关系。捆结构提供了一种新颖的来描述局部对象在pH中的合并关系的观点。本文的目标是建立一种理论框架,该框架利用捆理论从pH中发现更精细的信息。我们还表明,所提出的理论可以应用于确定数字图像中局部对象的合并关系。

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