MedNeRF: Medical Neural Radiance Fields for Reconstructing 3D-aware CT-Projections from a Single X-ray

被引:45
作者
Corona-Figueroa, Abril [1 ]
Frawley, Jonathan [1 ]
Bond-Taylor, Sam [1 ]
Bethapudi, Sarath [2 ]
Shum, Hubert P. H. [1 ]
Willcocks, Chris G. [1 ]
机构
[1] Univ Durham, Comp Sci Dept, Durham DH1 3LE, England
[2] Cty Durham & Darlington NHS Fdn Trust, Durham DL3 6HX, England
来源
2022 44TH ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE & BIOLOGY SOCIETY, EMBC | 2022年
关键词
IMAGE;
D O I
10.1109/EMBC48229.2022.9871757
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Computed tomography (CT) is an effective medical imaging modality, widely used in the field of clinical medicine for the diagnosis of various pathologies. Advances in Multidetector CT imaging technology have enabled additional functionalities, including generation of thin slice multiplanar cross-sectional body imaging and 3D reconstructions. However, this involves patients being exposed to a considerable dose of ionising radiation. Excessive ionising radiation can lead to deterministic and harmful effects on the body. This paper proposes a Deep Learning model that learns to reconstruct CT projections from a few or even a single-view X-ray. This is based on a novel architecture that builds from neural radiance fields, which learns a continuous representation of CT scans by disentangling the shape and volumetric depth of surface and internal anatomical structures from 2D images. Our model is trained on chest and knee datasets, and we demonstrate qualitative and quantitative high-fidelity renderings and compare our approach to other recent radiance field-based methods. Our code and link to our datasets are available at https://github.com/abrilcf/mednerf
引用
收藏
页码:3843 / 3848
页数:6
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