Objective: Computer classification of sonographic BI-RADS features can aid differentiation of the malignant and benign masses. However, the variability in the diagnosis due to the differences in the observed features between the observations is not known. The goal of this study is to measure the variation in sonographic features between multiple observations and determine the effect of features variation on computer-aided diagnosis of the breast masses.
Materials And Methods: Ultrasound images of biopsy proven solid breast masses were analyzed in three independent observations for BI-RADS sonographic features. The BI-RADS features from each observation were used with Bayes classifier to determine probability of malignancy. The observer agreement in the sonographic features was measured by kappa coefficient and the difference in the diagnostic performances between observations was determined by the area under the ROC curve, A, and interclass correlation coefficient.
Results: While some features were repeatedly observed, = 0.95, other showed a significant variation, = 0.16. For all features, combined intra-observer agreement was substantial, = 0.77. The agreement, however, decreased steadily to 0.66 and 0.56 as time between the observations increased from 1 to 2 and 3 months, respectively. Despite the variation in features between observations the probabilities of malignancy estimates from Bayes classifier were robust and consistently yielded same level of diagnostic performance, A was 0.772 - 0.817 for sonographic features alone and 0.828 - 0.849 for sonographic features and age combined. The difference in the performance, ΔA, between the observations for the two groups was small (0.003 - 0.044) and was not statistically significant (p < 0.05). Interclass correlation coefficient for the observations was 0.822 (CI: 0.787 - 0.853) for BI-RADS sonographic features alone and for those combined with age was 0.833 (CI: 0.800 - 0.862).
Conclusion: Despite the differences in the BI- RADS sonographic features between different observations, the diagnostic performance of computer-aided analysis for differentiating breast masses did not change. Through continual retraining, the computer-aided analysis provides consistent diagnostic performance independent of the variations in the observed sonographic features.
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http://dx.doi.org/10.4236/abcr.2015.41001 | DOI Listing |
Introduction: To correlate the direct and indirect morphological uterus sonographic assessment (MUSA) features of adenomyosis with clinical symptoms severity.
Material And Methods: This observational prospective study was conducted at a tertiary care institute from April 2023 to March 2024, involving 254 women aged 18 to 45 years with a regular menstrual cycle and ultrasound-confirmed diagnosis of adenomyosis. Detailed clinicodemographic data were collected, including symptoms such as painful menses, heavy menstrual bleeding (HMB), chronic pelvic pain (CPP), and bowel/bladder symptoms.
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Background: Endometriosis is a chronic disease characterized by endometrial-like tissue outside the uterus. Superficial endometriosis (SE) is the most prevalent form, yet it remains underdiagnosed due to subtle clinical and imaging presentations. Traditionally, diagnosis relies on laparoscopy, which is relatively invasive and often contributes to diagnostic delay.
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December 2024
Department of Radiology and Diagnostic Imaging, University of Alberta Hospital, Edmonton, AB T6G2B7, Canada.
To determine the cancer risk in thyroid nodules using ACR TI-RADS. A retrospective analysis of all thyroid biopsies was performed over a 3-year period (2021 to 2023). Variables including gender, age, history of thyroid cancer or neck irradiation, nodule size and location, TR level, and sonographic features such as punctate echogenic foci (PEF), a very hypoechoic appearance, taller-than-wide shape, and suspected extrathyroidal extension were analyzed.
View Article and Find Full Text PDFCurr Med Imaging
January 2025
Department of Ultrasound, Peking University International Hospital, Beijing, China.
Int J Hyperthermia
December 2025
State Key Laboratory of Ultrasound in Medicine and Engineering, College of Biomedical Engineering, Chongqing Medical Unibersity, Chongqing, China.
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