Elastic Shape Analysis of Tree-like 3D Objects using Extended SRVF Representation
Guan Wang, Hamid Laga, Anuj Srivastava

TL;DR
This paper introduces a novel elastic shape analysis framework for 3D tree-like objects using an extended SRVF representation, enabling detailed comparison, matching, and statistical analysis of complex biological structures.
Contribution
It extends the SRVF to 3D tree-shaped objects and defines a new metric capturing elastic and topological variations, improving over existing methods.
Findings
Effective comparison and matching of neuron and botanical tree shapes.
Ability to compute statistical summaries like means and modes of shape populations.
Successful synthesis of new tree-shaped objects through probabilistic modeling.
Abstract
How can one analyze detailed 3D biological objects, such as neurons and botanical trees, that exhibit complex geometrical and topological variation? In this paper, we develop a novel mathematical framework for representing, comparing, and computing geodesic deformations between the shapes of such tree-like 3D objects. A hierarchical organization of subtrees characterizes these objects -- each subtree has the main branch with some side branches attached -- and one needs to match these structures across objects for meaningful comparisons. We propose a novel representation that extends the Square-Root Velocity Function (SRVF), initially developed for Euclidean curves, to tree-shaped 3D objects. We then define a new metric that quantifies the bending, stretching, and branch sliding needed to deform one tree-shaped object into the other. Compared to the current metrics, such as the Quotient…
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Taxonomy
TopicsMorphological variations and asymmetry · Tree Root and Stability Studies · Leaf Properties and Growth Measurement
