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المؤلفZhai, X.
المؤلفZhai, Xiaojun
المؤلفEslami, Mohammad
المؤلفHussein, Ealaf Sayed
المؤلفFilali, Maroua Salem
المؤلفShalaby, Salma Tarek
المؤلفAmira, Abbes
المؤلفBensaali, Faycal
المؤلفDakua, Sarada
المؤلفAbinahed, Julien
المؤلفAl-Ansari, Abdulla
المؤلفAhmed, Ayman Z.
تاريخ الإتاحة2019-09-11T10:53:48Z
تاريخ النشر2018-07-01
اسم المنشورJournal of Computational Science
المعرّفhttp://dx.doi.org/10.1016/j.jocs.2018.05.002
الاقتباسZhai, X., Eslami, M., Hussein, E. S., Filali, M. S., Shalaby, S. T., Amira, A., ... & Ahmed, A. Z. (2018). Real-time automated image segmentation technique for cerebral aneurysm on reconfigurable system-on-chip. Journal of computational science, 27, 35-45.‏
الرقم المعياري الدولي للكتاب1877-7503
معرّف المصادر الموحدhttps://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85046644207&origin=inward
معرّف المصادر الموحدhttp://hdl.handle.net/10576/11814
الملخص© 2018 Elsevier B.V. Cerebral aneurysm is a weakness in a blood vessel that may enlarge and bleed into the surrounding area, which is a life-threatening condition. Therefore, early and accurate diagnosis of aneurysm is highly required to help doctors to decide the right treatment. This work aims to implement a real-time automated segmentation technique for cerebral aneurysm on the Zynq system-on-chip (SoC), and virtualize the results on a 3D plane, utilizing virtual reality (VR) facilities, such as Oculus Rift, to create an interactive environment for training purposes. The segmentation algorithm is designed based on hard thresholding and Haar wavelet transformation. The system is tested on six subjects, for each consists 512 × 512 DICOM slices, of 16 bits 3D rotational angiography. The quantitative and subjective evaluation show that the segmented masks and 3D generated volumes have admitted results. In addition, the hardware implement results show that the proposed implementation is capable to process an image using Zynq SoC in an average time of 5.2 ms.
راعي المشروعNPRP,5-792-2-328
اللغةen
الناشرElsevier B.V.
الموضوعCerebral aneurysm
FPGA
Image segmentation
Zynq SoC
العنوانReal-time automated image segmentation technique for cerebral aneurysm on reconfigurable system-on-chip
النوعArticle
الصفحات35-45
رقم المجلد27


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