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A citizen science approach to optimising computer aided detection (CAD) in mammography

机译:在乳腺摄影中优化计算机辅助检测(CAD)的公民科学方法

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Computer aided detection (CAD) systems assist medical experts during image interpretation. In mammography. CAD systems prompt suspicious regions which help medical experts to detect early signs of cancer. This is a challenging task and prompts may appear in regions that are actually normal, whilst genuine cancers may be missed. The effect prompting has on readers performance is not fully known. In order to explore the effects of prompting errors, we have created an online game (Bat Hunt), designed for non-experts, that mirrors mammographic CAD. This allows us to explore a wider parameter space. Users are required to detect bats in images of flocks of birds, with image difficulty matched to the proportions of screening mammograms in different BI-RADS density categories. Twelve prompted conditions were investigated, along with unprompted detection. On average, players achieved a sensitivity of 0.33 for unprompted detection, and sensitivities of 0.75. 0.83, and 0.92 respectively for 70%, 80%, and 90% of targets prompted, regardless of CAD specificity. False prompts distract players from finding unprompted targets if they appear in the same image. Player performance decreases when the number of false prompts increases, and increases proportionally with prompting sensitivity. Median lowest d' was for unprompted condition (1.08) and the highest for sensitivity 90% and 0.5 false prompts per image (d'=4.48).
机译:计算机辅助检测(CAD)系统在图像解释过程中协助医疗专家。在乳房X线照相中。 CAD Systems及时可疑地区,帮助医学专家检测癌症的早期迹象。这是一个具有挑战性的任务,提示可能出现在实际正常的地区,而真正的癌症可能会错过。效果提示对读者表现不完全已知。为了探讨促使错误的影响,我们创建了一个专为非专家设计的在线游戏(BAT狩猎),这是镜像乳房Xmmopare CAD。这使我们能够探索更广泛的参数空间。用户需要在鸟群图像中检测蝙蝠,图像难以与不同双RADS密度类别中的筛选乳房X线照片的比例相匹配。调查了12条促使条件,以及未突破性的检测。平均而言,球员达到0.33的敏感性,用于未突出的检测,敏感性为0.75。 0.83和0.92分别为70%,80%和90%的目标,促使无论CAD特异性如何。如果它们出现在同一图像中,则虚假提示分散注意力播放器发现未突出的目标。当虚假提示的数量增加时,播放器性能会降低,并随着促使灵敏度成比例地增加。中位数最低D'是为了不突出的条件(1.08),灵敏度最高90%和0.5每张图像的假提示(D'= 4.48)。

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