Breast Diseases Clinical Trial
Official title:
Ultrasound-based Deep Learning Signature and Radiomics Signature Nomogram for Diagnosis of Benign and Malignant Breast Lesions of BI-RADS Category 4 Using Intratumoral and Peritumoral Regions
Verified date | September 2023 |
Source | Qianfoshan Hospital |
Contact | n/a |
Is FDA regulated | No |
Health authority | |
Study type | Observational |
This retrospective study aimed to create a prediction model using deep learning and radiomics features extracted from intratumoral and peritumoral regions of breast lesions in ultrasound images, to diagnose benign and malignant breast lesions with BI-RADS 4 classification. Materials and methods: Patients who visited in The First Affiliated Hospital of Shandong First Medical University & Shandong Provincial Qianfoshan Hospital were collected. Their general clinical features, information on preoperative ultrasound diagnosis, and postoperative pathologic data were reviewed.
Status | Completed |
Enrollment | 400 |
Est. completion date | December 30, 2022 |
Est. primary completion date | December 30, 2022 |
Accepts healthy volunteers | No |
Gender | Female |
Age group | 15 Years to 80 Years |
Eligibility | Inclusion Criteria: - female patients with US-visible solid breast masses who underwent biopsy and/or surgical resection, and were classified as having BI-RADS 4 lesions in medical US reports. Exclusion Criteria: - preoperative endocrine therapy, chemotherapy, or radiotherapy, preoperative invasive breast operation, insufficient image quality, and no pathological results. |
Country | Name | City | State |
---|---|---|---|
China | QianfoshanH | Jinan | Shandong |
Lead Sponsor | Collaborator |
---|---|
Ma Zhe |
China,
Type | Measure | Description | Time frame | Safety issue |
---|---|---|---|---|
Other | the combination prediction model and the model evaluation | the combination model was established using clinical features , deep learning score and radiomics score.The models were evaluated using various metrics, including AUC, accuracy, sensitivity, specificity, PPV, and NPV | Immediately evaluated after the combination prediction model was built | |
Primary | radiomcis prediction model and the model evaluation | three radiomics models were established using the support vector machines algorithm based on features extracted from the intratumoral, peritumoral, and combined regions of the breast lesions.The models were evaluated using various metrics, including AUC, accuracy, sensitivity, specificity, PPV, and NPV | Immediately evaluated after the radiomcis prediction model was built | |
Secondary | deep learning prediction model and the model evaluation | three deep learning models were established using the support vector machines algorithm based on features extracted from the intratumoral, peritumoral, and combined regions of the breast lesions.The models were evaluated using various metrics, including AUC, accuracy, sensitivity, specificity, PPV, and NPV | Immediately evaluated after the deep learning prediction model was built |
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