首页> 外文会议>Conference on Medical Imaging 2008: Visualization, Image-Guided Procedures, and Modeling; 20080217-19; San Diego,CA(US) >Recognition of Risk Situations Based on Endoscopic Instrument Tracking and Knowledge Based Situation Modeling
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Recognition of Risk Situations Based on Endoscopic Instrument Tracking and Knowledge Based Situation Modeling

机译:基于内窥镜器械跟踪和知识状况建模的风险状况识别

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Minimally invasive surgery has gained significantly in importance over the last decade due to the numerous advantages on patient-side. The surgeon has to adapt special operation-techniques and deal with difficulties like the complex hand-eye coordination, limited field of view and restricted mobility. To alleviate these constraints we propose to enhance the surgeon's capabilities by providing a context-aware assistance using augmented reality (AR) techniques. In order to generate a context-aware assistance it is necessary to recognize the current state of the intervention using intraoperatively gained sensor data and a model of the surgical intervention. In this paper we present the recognition of risk situations, the system warns the surgeon if an instrument gets too close to a risk structure. The context-aware assistance system starts with an image-based analysis to retrieve information from the endoscopic images. This information is classified and a semantic description is generated. The description is used to recognize the current state and launch an appropriate AR visualization. In detail we present an automatic vision-based instrument tracking to obtain the positions of the instruments. Situation recognition is performed using a knowledge representation based on a description logic system. Two augmented reality visualization programs are realized to warn the surgeon if a risk situation occurs.
机译:在过去的十年中,由于患者方面的诸多优势,微创手术的重要性已显着提高。外科医生必须适应特殊的手术技术,并应对诸如复杂的手眼协调,视野受限和活动受限的难题。为了减轻这些限制,我们建议通过使用增强现实(AR)技术提供上下文感知的帮助来增强外科医生的能力。为了产生情境感知辅助,有必要使用术中获得的传感器数据和手术干预模型来识别干预的当前状态。在本文中,我们介绍了对风险情况的识别,如果仪器距离风险结构太近,系统会警告外科医生。情境感知辅助系统从基于图像的分析开始,以从内窥镜图像中检索信息。对该信息进行分类并生成语义描述。该描述用于识别当前状态并启动适当的AR可视化。详细地,我们提出了一种基于视觉的自动仪器跟踪,以获取仪器的位置。使用基于描述逻辑系统的知识表示来执行情况识别。实现了两个增强现实可视化程序,以在发生风险情况时警告外科医生。

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