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AIM: an attentionally-based system for the interpretation of angiography

机译:目的:血管造影解释的关注系统

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We propose a model for the interactive interpretation of medical images pertaining to human neurovascular system. This attentionally-based interactive model, AIM, is founded upon human selective attention. AIM combines human operator's high level reasoning with machine perception and exploits human interaction as part of the solution. AIM defines two channels of interaction: context ("what to look for"), and focus-of-attention ("where to look") by which the user directs the attention of the machine perception. AIM facilitates varying degrees of human intervention in the process by providing four levels of abstraction for the context information. This hierarchy of context abstractions permits the system to junction more autonomously (doing high-level tasks like extracting an arterial vessel) in routine interpretation, and to require more user intervention (e.g. locating arterial wall boundaries) as the image complexity increases or data quality worsen. This is important in medical imaging where the users demand ultimate control and confidence in the system. Such technology can contribute significantly on the design of radiological imaging systems.
机译:我们提出了关于人类神经血管系统医学图像的交互式解释的模型。这attentionally基于互动模式,AIM,对人的选择性注意成立。 AIM结合了机器的视觉操作人员的高水平推理和利用人际交往作为解决方案的一部分。 AIM定义了两种交互渠道:上下文(“寻找什么”),以及焦点的注意力(“去哪里寻找”),通过用户引导机器感知的关注。 AIM通过提供四个级别的抽象为上下文信息有利于不同程度的过程中人为干预。上下文抽象的该层次结构允许系统结更自主地(在执行高级任务像提取动脉血管)在常规的解释,并且需要更多的用户干预(例如定位动脉壁边界)作为图像复杂性的增加或数据质量恶化。这是在医疗成像,其中用户需求最终控制权和对系统的信心非常重要。这种技术可以在放射成像系统的设计显著贡献。

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