Using ultrasound image analysis to evaluate the role of elastography imaging in the diagnosis of carotid atherosclerosis

Author(s):  
Monika-Filitsa Xenikou ◽  
Spyretta Golemati ◽  
Aimilia Gastounioti ◽  
Marianna Tzortzi ◽  
Nektarios Moraitis ◽  
...  
2020 ◽  
Vol 26 ◽  
Author(s):  
Areti Sofogianni ◽  
Konstantinos Tziomalos ◽  
Triantafyllia Koletsa ◽  
Apostolos G. Pitoulias ◽  
Lemonia Skoura ◽  
...  

: Carotid atherosclerosis is responsible for a great proportion of ischemic strokes. Early identification of unstable or vulnerable carotid plaques and therefore of patients at high risk for stroke is of significant medical and socioeconomical value. We reviewed the current literature and discuss the potential role of the most important serum biomarkers in identifying patients with carotid atherosclerosis who are at high risk for atheroembolic stroke.


2021 ◽  
Vol 7 (8) ◽  
pp. 124
Author(s):  
Kostas Marias

The role of medical image computing in oncology is growing stronger, not least due to the unprecedented advancement of computational AI techniques, providing a technological bridge between radiology and oncology, which could significantly accelerate the advancement of precision medicine throughout the cancer care continuum. Medical image processing has been an active field of research for more than three decades, focusing initially on traditional image analysis tasks such as registration segmentation, fusion, and contrast optimization. However, with the advancement of model-based medical image processing, the field of imaging biomarker discovery has focused on transforming functional imaging data into meaningful biomarkers that are able to provide insight into a tumor’s pathophysiology. More recently, the advancement of high-performance computing, in conjunction with the availability of large medical imaging datasets, has enabled the deployment of sophisticated machine learning techniques in the context of radiomics and deep learning modeling. This paper reviews and discusses the evolving role of image analysis and processing through the lens of the abovementioned developments, which hold promise for accelerating precision oncology, in the sense of improved diagnosis, prognosis, and treatment planning of cancer.


2010 ◽  
Vol 28 ◽  
pp. e66
Author(s):  
F Capasso ◽  
M DʼAvino ◽  
A Ilardi ◽  
U Valentino ◽  
G Caruso ◽  
...  

2010 ◽  
Vol 13 (Suppl 4) ◽  
pp. P204
Author(s):  
S Ferrara ◽  
A Tartaglia ◽  
T Santantonio ◽  
B Grisorio

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