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Crowdsourcing for Identification of Polyp-Free Segments in Virtual Colonoscopy Videos

机译:众包用于识别虚拟结肠镜检查中的息肉片段

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Virtual colonoscopy (VC) allows a physician to virtually navigate within a reconstructed 3D colon model searching for colorectal polyps. Though VC is widely recognized as a highly sensitive and specific test for identifying polyps, one limitation is the reading time, which can take over 30 minutes per patient. Large amounts of the colon are often devoid of polyps, and a way of identifying these polyp-free segments could be of valuable use in reducing the required reading time for the interrogating radiologist. To this end, we have tested the ability of the collective crowd intelligence of non-expert workers to identify polyp candidates and polyp-free regions. We presented twenty short videos flying through a segment of a virtual colon to each worker, and the crowd was asked to determine whether or not a possible polyp was observed within that video segment. We evaluated our framework on Amazon Mechanical Turk and found that the crowd was able to achieve a sensitivity of 80.0% and specificity of 86.5% in identifying video segments which contained a clinically proven polyp. Since each polyp appeared in multiple consecutive segments, all polyps were in fact identified. Using the crowd results as a first pass, 80% of the video segments could in theory be skipped by the radiologist, equating to a significant time savings and enabling more VC examinations to be performed.
机译:虚拟结肠镜检查(VC)允许医生在重建的3D结肠模型中实际导航搜索聚集体息肉。虽然VC被广泛被识别为识别息肉的高度敏感和特定的测试,但一个限制是读数时间,每位患者可能需要超过30分钟。大量的结肠通常没有息肉,并且识别这些息肉片段的方式可能具有有价值的用途,用于减少询问放射科学家的所需阅读时间。为此,我们已经测试了非专家工人集体人群智能的能力,以确定息肉候选人和无息地区。我们介绍了二十个短视频飞行到每个工人的虚拟冒号一段,并要求人群确定在该视频段内是否观察到可能的息肉。我们在亚马逊机械土耳其人上评估了我们的框架,发现人群能够在识别包含临床证明息肉的视频段中实现80.0%和86.5%的特异性。由于每个息肉在多个连续的段中出现,因此实际上涉及所有息肉。使用人群结果作为第一通行证,80%的视频段可以由放射科医师跳过,等同于大量节省并实现更多的VC检查。

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