arXiv:2410.22224eess.IVcs.CV2024-10中稿 · ACCV 2024被引 2

构建首个双平面X光3D重建数据集,助力血管手术导航精准化

Guide3D: A Bi-planar X-ray Dataset for 3D Shape Reconstruction

  • 采集真实场景下双平面高分辨率荧光视频,人工标注精细
  • 在模拟临床环境中验证,支持高精度3D导丝形状重建
  • 为血管介入手术提供新基准,适合医疗影像与机器人研究者

血管内手术工具重建是提升血管内导航能力的关键步骤。然而,公开可用的数据集匮乏严重制约了机器学习方法的发展与验证。由于需要双平面扫描仪等专用设备,以往研究多依赖单平面透视技术,仅获取单一视角数据,显著限制了重建精度。为此,我们提出Guide3D——一个用于3D重建的双平面X射线数据集。该数据集包含真实临床环境下采集的高分辨率双平面手动标注荧光视频。在模拟临床环境中的验证表明其具备实际应用价值。此外,我们还提出一个新的导丝形状预测基准,可作为未来研究的强基线。Guide3D不仅填补了关键数据缺口,也为分割与3D重建技术的进步提供了平台,有助于实现更精确高效的血管内手术干预。项目地址:https://airvlab.github.io/guide3d/

原文摘要 · Abstract (English)

Endovascular surgical tool reconstruction represents an important factor in advancing endovascular tool navigation, which is an important step in endovascular surgery. However, the lack of publicly available datasets significantly restricts the development and validation of novel machine learning approaches. Moreover, due to the need for specialized equipment such as biplanar scanners, most of the previous research employs monoplanar fluoroscopic technologies, hence only capturing the data from a single view and significantly limiting the reconstruction accuracy. To bridge this gap, we introduce Guide3D, a bi-planar X-ray dataset for 3D reconstruction. The dataset represents a collection of high resolution bi-planar, manually annotated fluoroscopic videos, captured in real-world settings. Validating our dataset within a simulated environment reflective of clinical settings confirms its applicability for real-world applications. Furthermore, we propose a new benchmark for guidewrite shape prediction, serving as a strong baseline for future work. Guide3D not only addresses an essential need by offering a platform for advancing segmentation and 3D reconstruction techniques but also aids the development of more accurate and efficient endovascular surgery interventions. Our project is available at https://airvlab.github.io/guide3d/.

3D重建医学影像血管手术数据集

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