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[ACCV 2024 (Oral)] Official Implementation of "RayEmb: Arbitrary Landmark Detection in X-Ray Images Using Ray Embedding Subspace", Pragyan Shrestha, Chun Xie, Yuichi Yoshii, Itaru Kitahara

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RayEmb

This repository contains the code for the paper "RayEmb: Arbitrary Landmark Detection in X-Ray Images Using Ray Embedding Subspace," accepted as an oral presentation at ACCV 2024.

Overview

RayEmb introduces a novel approach for detecting arbitrary landmarks in X-ray images using ray embedding subspace. Our approach represents 3D points as distinct subspaces, formed by feature vectors (referred to as ray embeddings) corresponding to intersecting rays. Establishing 2D-3D correspondences then becomes a task of finding ray embeddings that are close to a given subspace, essentially performing an intersection test.

Features

  • Synthetic image generation
  • Rayemb model training and inference
  • CLI based usage

Status

The code and documentation are currently being prepared for release. Please stay tuned for updates.

Coming Soon

  • Installation instructions
  • Example usage
  • Pretrained models
  • Visualization scripts

Contact

For any questions or collaboration inquiries, please contact [email protected].


Stay tuned for more updates!

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[ACCV 2024 (Oral)] Official Implementation of "RayEmb: Arbitrary Landmark Detection in X-Ray Images Using Ray Embedding Subspace", Pragyan Shrestha, Chun Xie, Yuichi Yoshii, Itaru Kitahara

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