Explicit and Implicit Representations in AI-based 3D Reconstruction for Radiology: A Systematic Review
April 15, 2025 ยท Declared Dead ยท + Add venue
Repo contents: LICENSE, README.md
Authors
Yuezhe Yang, Boyu Yang, Yaqian Wang, Yang He, Xingbo Dong, Zhe Jin
arXiv ID
2504.11349
Category
cs.CV: Computer Vision
Cross-listed
cs.AI,
cs.GR
Citations
0
Repository
https://github.com/Bean-Young/AI4Radiology
โญ 21
Last Checked
1 month ago
Abstract
The demand for high-quality medical imaging in clinical practice and assisted diagnosis has made 3D reconstruction in radiological imaging a key research focus. Artificial intelligence (AI) has emerged as a promising approach to enhancing reconstruction accuracy while reducing acquisition and processing time, thereby minimizing patient radiation exposure and discomfort and ultimately benefiting clinical diagnosis. This review explores state-of-the-art AI-based 3D reconstruction algorithms in radiological imaging, categorizing them into explicit and implicit approaches based on their underlying principles. Explicit methods include point-based, volume-based, and Gaussian representations, while implicit methods encompass implicit prior embedding and neural radiance fields. Additionally, we examine commonly used evaluation metrics and benchmark datasets. Finally, we discuss the current state of development, key challenges, and future research directions in this evolving field. Our project available on: https://github.com/Bean-Young/AI4Radiology.
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