cs.AI updates on arXiv.org 07月30日 12:11
ReXGroundingCT: A 3D Chest CT Dataset for Segmentation of Findings from Free-Text Reports
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本文介绍了首个公开的医学数据集ReXGroundingCT,它将自由文本的放射学发现与3D胸部CT扫描的像素级分割联系起来,填补了医学AI领域的关键空白。数据集包含3,142个非对比胸部CT扫描和标准化放射学报告,并使用GPT-4和专家标注进行标注。

arXiv:2507.22030v1 Announce Type: cross Abstract: We present ReXGroundingCT, the first publicly available dataset to link free-text radiology findings with pixel-level segmentations in 3D chest CT scans that is manually annotated. While prior datasets have relied on structured labels or predefined categories, ReXGroundingCT captures the full expressiveness of clinical language represented in free text and grounds it to spatially localized 3D segmentation annotations in volumetric imaging. This addresses a critical gap in medical AI: the ability to connect complex, descriptive text, such as "3 mm nodule in the left lower lobe", to its precise anatomical location in three-dimensional space, a capability essential for grounded radiology report generation systems. The dataset comprises 3,142 non-contrast chest CT scans paired with standardized radiology reports from the CT-RATE dataset. Using a systematic three-stage pipeline, GPT-4 was used to extract positive lung and pleural findings, which were then manually segmented by expert annotators. A total of 8,028 findings across 16,301 entities were annotated, with quality control performed by board-certified radiologists. Approximately 79% of findings are focal abnormalities, while 21% are non-focal. The training set includes up to three representative segmentations per finding, while the validation and test sets contain exhaustive labels for each finding entity. ReXGroundingCT establishes a new benchmark for developing and evaluating sentence-level grounding and free-text medical segmentation models in chest CT. The dataset can be accessed at https://huggingface.co/datasets/rajpurkarlab/ReXGroundingCT.

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ReXGroundingCT 医学数据集 3D CT扫描 放射学发现 医学AI
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