机器人辅助部分肾切除术中多模态图像引导肿瘤识别的研究

G. Hamarneh, A. Amir-Khalili, M. Nosrati, Ivan Figueroa, J. Kawahara, Osama Al-Alao, J. Peyrat, J. Abi-Nahed, A. Al-Ansari, R. Abugharbieh
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引用次数: 16

摘要

肿瘤识别是机器人辅助部分肾切除术(RAPN)的关键步骤,在此过程中外科医生确定肿瘤的定位和切除范围。为了帮助外科医生实现这一步骤,我们的研究工作旨在利用术前和术中成像方式(CT, MRI,腹腔镜US,立体内窥镜视频)提供具有不确定性编码信息的肾肿瘤边界增强现实视图。本文介绍了本研究的进展,包括术前扫描的分割、变形的生物力学模拟、立体内窥镜相机的立体表面重建、术前和术中数据配准以及增强现实可视化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Towards multi-modal image-guided tumour identification in robot-assisted partial nephrectomy
Tumour identification is a critical step in robot-assisted partial nephrectomy (RAPN) during which the surgeon determines the tumour localization and resection margins. To help the surgeon in achieving this step, our research work aims at leveraging both pre- and intra-operative imaging modalities (CT, MRI, laparoscopic US, stereo endoscopic video) to provide an augmented reality view of kidney-tumour boundaries with uncertainty-encoded information. We present herein the progress of this research work including segmentation of preoperative scans, biomechanical simulation of deformations, stereo surface reconstruction from stereo endoscopic camera, pre-operative to intra-operative data registration, and augmented reality visualization.
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