450 results on '"Malayeri, Ashkan"'
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2. Using YOLO v7 to Detect Kidney in Magnetic Resonance Imaging
3. Evaluating the performance of Generative Pre-trained Transformer-4 (GPT-4) in standardizing radiology reports
4. Deep learning algorithm (YOLOv7) for automated renal mass detection on contrast-enhanced MRI: a 2D and 2.5D evaluation of results
5. Kidney scoring surveillance: predictive machine learning models for clear cell renal cell carcinoma growth using MRI
6. Automatic segmentation of clear cell renal cell tumors, kidney, and cysts in patients with von Hippel-Lindau syndrome using U-net architecture on magnetic resonance images
7. The kidney imaging surveillance scoring system (KISSS): using qualitative MRI features to predict growth rate of renal tumors in patients with von-Hippel Lindau (VHL) syndrome
8. Imaging finding of renal masses associated with pathogenic variation in succinate dehydrogenase subunit B gene
9. Central nervous system involvement in Erdheim-Chester disease: a magnetic resonance imaging study
10. Longitudinal analysis of the lung proteome reveals persistent repair months after mild to moderate COVID-19
11. Deep Learning-Based Interpretable AI for Prostate T2W MRI Quality Evaluation
12. Skeletal involvement in Erdheim-Chester disease: Multimodality imaging features and association with the BRAFV600E mutation
13. Preoperative Renal Parenchyma Volume as a Predictor of Kidney Function Following Nephrectomy of Complex Renal Masses
14. Virtual monoenergetic imaging in photon-counting CT of the head and neck
15. Deep-Learning-Based Whole-Lung and Lung-Lesion Quantification Despite Inconsistent Ground Truth: Application to Computerized Tomography in SARS-CoV-2 Nonhuman Primate Models
16. PRDM10 RCC: A Birt-Hogg-Dubé-like Syndrome Associated With Lipoma and Highly Penetrant, Aggressive Renal Tumors Morphologically Resembling Type 2 Papillary Renal Cell Carcinoma
17. Role of ultra-high b-value DWI in the imaging of hereditary leiomyomatosis and renal cell carcinoma (HLRCC)
18. An MRI-based radiomics model to predict clear cell renal cell carcinoma growth rate classes in patients with von Hippel-Lindau syndrome
19. Role of 18F-FDG PET/CT in management of adrenocortical carcinoma: a comprehensive review of the literature
20. Characterization of sarcoma topography in Li-Fraumeni syndrome.
21. A Prospective Study of the Diagnostic Performance of Photon-Counting CT Compared With MRI in the Characterization of Renal Masses.
22. Non‐Invasive Tumor Grade Evaluation in Von Hippel–Lindau‐Associated Clear Cell Renal Cell Carcinoma: A Magnetic Resonance Imaging‐Based Study.
23. Erdheim-Chester disease with tendon and muscle involvement: Reports of a rare presentation
24. Lung lesion segmentation of CT scans after SARS-CoV-2 infection: combining nonhuman primate with human data for inter-species transfer learning
25. Corrigendum to “Erdheim-Chester disease with tendon and muscle involvement: Reports of a rare presentation” [Radiology Case Reports 19 (2024) 1866-1871]
26. A deep-learning based artificial intelligence (AI) approach for differentiation of clear cell renal cell carcinoma from oncocytoma on multi-phasic MRI
27. 18Fluorodeoxyglucose-positron emission tomography/computed tomography for differentiation of renal tumors in hereditary kidney cancer syndromes
28. Hereditary leiomyomatosis and renal cell carcinoma (HLRCC) syndrome: Spectrum of imaging findings
29. CT and clinical assessment in asymptomatic and pre-symptomatic patients with early SARS-CoV-2 in outbreak settings
30. Potential Applications of PET Scans, CT Scans, and MR Imaging in Inflammatory Diseases: Part II: Cardiopulmonary and Vascular Inflammation
31. Supplementary Fig 12 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
32. Supplementary Fig 4 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
33. Data from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
34. TABLE 1 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
35. Supplementary Fig 5 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
36. FIGURE 1 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
37. Supplementary Tables S1 and S2 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
38. FIGURE 4 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
39. Supplementary Fig 9 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
40. FIGURE 2 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
41. Supplementary Fig 6 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
42. Supplementary Fig 8 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
43. Supplementary Fig 2 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
44. Supplementary Fig 3 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
45. Supplementary Fig 7 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
46. TABLE 2 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
47. FIGURE 3 from Longitudinal Natural History Study of Children and Adults with Rare Solid Tumors: Initial Results for First 200 Participants
48. Preoperative imaging for locoregional staging of bladder cancer
49. CT analysis of anatomical distribution of melorheostosis challenges the sclerotome hypothesis
50. The kidney imaging surveillance scoring system (KISSS): using qualitative MRI features to predict growth rate of renal tumors in patients with von-Hippel Lindau (VHL) syndrome
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