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Similar Image Retrieval of Breast Masses on Ultrasonography Using Subjective Data and Multidimensional Scaling

机译:使用主观数据和多维缩放的超声检查对乳房肿块的类似图像检索

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Presentation of images similar to a new unknown lesion can be helpful in medical image diagnosis and treatment planning. We have been investigating a method to retrieve relevant images as a diagnostic reference for breast masses on mammograms and ultrasound images. For retrieval of visually similar images, subjective similarities for pairs of masses were determined by experienced radiologists, and objective similarity measures were computed by modeling the subjective similarity space using multidimensional scaling (MDS). In this study, we investigated the similarity measure for masses on breast ultrasound images based on MDS and an artificial neural network and examined its usefulness in image retrieval. For 666 pairs of masses, correlation coefficient between the average subjective similarities and the MDS-based similarity measure was 0.724. When one to five images were retrieved, average precision in selecting relevant images, i.e., pathology-matched images for benign/malignant index image, was 0.778, indicating the potential utility of the proposed MDS-based similarity measure.
机译:类似于新的未知病变的图像呈现可能有助于医学图像诊断和治疗计划。我们已经研究了一种方法来检索相关图像作为乳房X线照片和超声图像上的乳腺肿块的诊断参考。为了检索视觉上类似的图像,通过经验丰富的放射科学家确定对群众对的主观相似性,并且通过使用多维缩放(MDS)来建模主观相似度空间来计算客观相似度测量。在这项研究中,我们研究了基于MDS和人工神经网络的乳房超声图像对乳房超声图像的相似度措施,并在图像检索中进行了实用性。对于666对群众,平均主体相似性与基于MDS的相似度措施之间的相关系数为0.724。当检索一到五个图像时,选择相关图像的平均精度,即良性/恶性指数图像的病理匹配的图像为0.778,表明所提出的基于MDS的相似度测量的潜在效用。

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