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首页> 外文期刊>European Journal of Radiology >Mammography image quality: model for predicting compliance with posterior nipple line criterion.
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Mammography image quality: model for predicting compliance with posterior nipple line criterion.

机译:乳腺摄影图像质量:用于预测是否符合后乳头线标准的模型。

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PURPOSE: To develop a model using measurements of pectoral muscle width and length together with the acceptability of the posterior nipple line criteria (PNL) to predict the acceptability of the presentation of the pectoral muscle in the mediolateral oblique view of the breast. METHOD: A total of 400 mediolateral oblique mammogram images were randomly selected from BreastScreen NSW South West, Australia. Measurements of length and width of the pectoral muscle and the acceptability of the pectoral muscle position relative to the PNL were recorded. Data analysis involved logistic regression and ROC analysis to test the predictors of width and length and the performance of the model. The model was then used to predict the outcome of acceptable or unacceptable PNL criterion for each case. RESULTS: The estimated odds ratio for an increase of 10mm was 1.98 (CI=1.68, 2.34) for the length predictor and 2.14 (CI=1.56, 2.93) for the width predictor. A cut off point of 0.6083 was derived from the training set and applied with the developed model to the test set. The area under the ROC curve was 0.9339 demonstrating an accurate model. CONCLUSION: This paper describes a model to predict the acceptability of the PNL criterion using the width and length of the pectoral muscle. This model could be used in the automated assessment of image quality which has the potential to enhance the consistency in mammographic image quality evaluation. Optimising image quality contributes to increased accuracy in radiological interpretation, which maximises the early detection of breast cancer and potentially reduces mortality rates.
机译:目的:使用胸肌宽度和长度的测量值以及后乳头线标准(PNL)的可接受性来开发模型,以预测在乳房的后外侧斜视图中出现的胸肌的可接受性。方法:从澳大利亚的BreastScreen NSW西南部随机选择了总共400张中外侧斜乳房X线照片。记录胸肌长度和宽度的测量以及相对于PNL的胸肌位置的可接受性。数据分析涉及逻辑回归和ROC分析,以测试宽度和长度的预测指标以及模型的性能。然后使用该模型预测每种情况下可接受或不可接受的PNL标准的结果。结果:对于长度预测器,增加10mm的估计优势比为1.98(CI = 1.68,2.34),对于宽度预测器为2.14(CI = 1.56,2.93)。从训练集得出的临界点为0.6083,并将其与开发的模型一起应用于测试集。 ROC曲线下的面积为0.9339,表明模型准确。结论:本文描述了一种使用胸肌的宽度和长度预测PNL标准的可接受性的模型。该模型可用于图像质量的自动评估,这有可能增强乳腺X射线摄影图像质量评估的一致性。优化图像质量有助于提高放射学解释的准确性,从而最大程度地早期发现乳腺癌并可能降低死亡率。

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