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865 results on '"deep learning"'

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1. Deep learning for automatic bowel-obstruction identification on abdominal CT.

2. Utilizing fully-automated 3D organ segmentation for hepatic steatosis assessment with CT attenuation-based parameters.

3. Learning CT-free attenuation-corrected total-body PET images through deep learning.

4. Ultra-low dose chest CT with silver filter and deep learning reconstruction significantly reduces radiation dose and retains quantitative information in the investigation and monitoring of lymphangioleiomyomatosis (LAM).

5. Automated inversion time selection for late gadolinium–enhanced cardiac magnetic resonance imaging.

6. Artificial intelligence applied to magnetic resonance imaging reliably detects the presence, but not the location, of meniscus tears: a systematic review and meta-analysis.

7. Development and multicenter validation of deep convolutional neural network–based detection of colorectal cancer on abdominal CT.

8. Knee landmarks detection via deep learning for automatic imaging evaluation of trochlear dysplasia and patellar height.

9. Development and validation of AI-based automatic measurement of coronal Cobb angles in degenerative scoliosis using sagittal lumbar MRI.

10. Feasibility study on the clinical application of CT-based synthetic brain T1-weighted MRI: comparison with conventional T1-weighted MRI.

11. Anti-HER2 therapy response assessment for guiding treatment (de-)escalation in early HER2-positive breast cancer using a novel deep learning radiomics model.

12. Deep learning-based white matter lesion volume on CT is associated with outcome after acute ischemic stroke.

13. Deep learning–based multimodal segmentation of oropharyngeal squamous cell carcinoma on CT and MRI using self-configuring nnU-Net.

14. MI-DenseCFNet: deep learning–based multimodal diagnosis models for Aureus and Aspergillus pneumonia.

15. Automated MRI liver segmentation for anatomical segmentation, liver volumetry, and the extraction of radiomics.

16. Prediction of disease severity in COPD: a deep learning approach for anomaly-based quantitative assessment of chest CT.

17. Deep learning for malignancy risk estimation of incidental sub-centimeter pulmonary nodules on CT images.

18. Automatic detection, segmentation, and classification of primary bone tumors and bone infections using an ensemble multi-task deep learning framework on multi-parametric MRIs: a multi-center study.

19. CT-based deep learning model for predicting hospital discharge outcome in spontaneous intracerebral hemorrhage.

20. Deep learning-based prognostication in idiopathic pulmonary fibrosis using chest radiographs.

21. Value of CT quantification in progressive fibrosing interstitial lung disease: a deep learning approach.

22. Artificial intelligence for X-ray scaphoid fracture detection: a systematic review and diagnostic test accuracy meta-analysis.

23. Development and evaluation of two open-source nnU-Net models for automatic segmentation of lung tumors on PET and CT images with and without respiratory motion compensation.

24. Olecranon bone age assessment in puberty using a lateral elbow radiograph and a deep-learning model.

25. Medical image foundation models in assisting diagnosis of brain tumors: a pilot study.

26. Enhancing a deep learning model for pulmonary nodule malignancy risk estimation in chest CT with uncertainty estimation.

27. Enhancing gadoxetic acid–enhanced liver MRI: a synergistic approach with deep learning CAIPIRINHA-VIBE and optimized fat suppression techniques.

28. High-performance presurgical differentiation of glioblastoma and metastasis by means of multiparametric neurite orientation dispersion and density imaging (NODDI) radiomics.

29. Recommender-based bone tumour classification with radiographs—a link to the past.

30. Prediction of cerebral hemorrhagic transformation after thrombectomy using a deep learning of dual-energy CT.

31. Feasibility and limitations of deep learning–based coronary calcium scoring in PET-CT: a comparison with coronary calcium score CT.

32. Weakly supervised deep learning for diagnosis of multiple vertebral compression fractures in CT.

33. MRI-based automated multitask deep learning system to evaluate supraspinatus tendon injuries.

34. Voxel-based morphometry in single subjects without a scanner-specific normal database using a convolutional neural network.

35. Prediction of early hematoma expansion of spontaneous intracerebral hemorrhage based on deep learning radiomics features of noncontrast computed tomography.

36. Development of image-based decision support systems utilizing information extracted from radiological free-text report databases with text-based transformers.

37. A comprehensive segmentation of chest X-ray improves deep learning–based WHO radiologically confirmed pneumonia diagnosis in children.

38. Reducing false positives in deep learning–based brain metastasis detection by using both gradient-echo and spin-echo contrast-enhanced MRI: validation in a multi-center diagnostic cohort.

39. Deep learning–based identification of spine growth potential on EOS radiographs.

40. Prognostication of lung adenocarcinomas using CT-based deep learning of morphological and histopathological features: a retrospective dual-institutional study.

41. A deep learning framework for intracranial aneurysms automatic segmentation and detection on magnetic resonance T1 images.

42. Predicting meningioma grades and pathologic marker expression via deep learning.

43. Multitask deep learning on mammography to predict extensive intraductal component in invasive breast cancer.

44. Deep learning to assist composition classification and thyroid solid nodule diagnosis: a multicenter diagnostic study.

45. External validation, radiological evaluation, and development of deep learning automatic lung segmentation in contrast-enhanced chest CT.

46. Low-dose liver CT: image quality and diagnostic accuracy of deep learning image reconstruction algorithm.

47. Coronary computed tomography angiographic detection of in-stent restenosis via deep learning reconstruction: a feasibility study.

48. Natural language processing deep learning models for the differential between high-grade gliomas and metastasis: what if the key is how we report them?

49. Barriers and facilitators of artificial intelligence conception and implementation for breast imaging diagnosis in clinical practice: a scoping review.

50. Deep learning reconstruction vs standard reconstruction for abdominal CT: the influence of BMI.

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