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Benchmark for Surface Region Correspondence (BSRC)

This repo hosts the surface region correspondence evaluation dataset consisting of mulitple surface region ground truths for 3 object categories - Chair, Car and Plane.

Each object category has 10 objects with each object having 8 different ground truth surface regions. Providing 90 pairwise correspondence estimation possibility per category, with 8 region correspondences estimations in each pair.

Sample images of surface region ground truths below:

Chair Car Plane
chair_regions car_regions plane_regions

NOTE1: This dataset is in association with a work titled "NRDF - Neural Region Descriptor Fields as Implicit ROI Representation for Robotic 3D Surface Processing" and is in IROS 2024 conference submission. After acceptance - Code and pretrained models for NRDF will be uploaded here -> https://github.com/Profactor/Neural-Region-Descriptor-Fields

NOTE2: This is a growing dataset and more objects categories and corresponding surface regions will be added gradually.