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Comparative analysis of data collection methods for individualized modeling of radiologists' visual similarity judgments in mammograms

机译:乳房X射线照片中放射科医生的视觉相似性判断的个性化建模数据收集方法的比较分析

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Rationale and Objectives: We conducted an observer study to investigate how the data collection method affects the efficacy of modeling individual radiologists' judgments regarding the perceptual similarity of breast masses on mammograms. Materials and Methods: Six observers of varying experience levels in breast imaging were recruited to assess the perceptual similarity ofmammographic masses. The observers' subjective judgments were collected using (i) a rating method, (ii) a preference method, and (iii)ahybrid method combining rating and ranking. Personalized user models were developed with the collected data to predict observers' opinions. The relative efficacy of each data collection method was assessed based on the classification accuracy of the resulting usermodels. Results: The average accuracy of the user models derived from data collected with the hybrid method was 55.5±1.5%. The models were significantly more accurate ( P < .0005) than those derived from the rating (45.3±3.5%) and the preference (40.8±5%) methods. Onaverage, the rating data collection method was significantly faster than the other two methods ( P < .0001). No time advantage was observed between the preference and the hybrid methods. Conclusions: A hybrid method combining rating and ranking is an intuitive and efficient way for collecting subjective similarity judgments to model human perceptual opinions with a higher accuracy than other, more commonly used data collection methods.
机译:理由和目的:我们进行了一项观察员研究,以研究数据收集方法如何影响对放射线专家关于乳房X光照片上乳房质量的感知相似性的判断建模的有效性。材料和方法:招募了六名在乳腺成像方面经验水平各异的观察者,以评估乳房X线照片肿块的知觉相似性。观察者的主观判断是使用(i)评分方法,(ii)偏好方法和(iii)结合评分和排名的混合方法收集的。使用收集的数据开发个性化的用户模型,以预测观察者的意见。根据所得用户模型的分类准确性评估每种数据收集方法的相对功效。结果:从混合方法收集的数据得出的用户模型的平均准确度为55.5±1.5%。与从评级方法(45.3±3.5%)和优先选择方法(40.8±5%)得出的模型相比,该模型的准确性显着更高(P <.0005)。平均而言,评级数据收集方法明显快于其他两种方法(P <.0001)。在偏好方法和混合方法之间没有观察到时间优势。结论:结合评分和排名的混合方法是一种直观有效的方法,用于收集主观相似性判断,以比其他更常用的数据收集方法更高的准确性来建模人类感知观点。

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