作者
João Ramalhinho, Bongjin Koo, Nina Montaña-Brown, Shaheer U Saeed, Ester Bonmati, Kurinchi Gurusamy, Stephen P Pereira, Brian Davidson, Yipeng Hu, Matthew J Clarkson
发表日期
2022/8
期刊
International Journal of Computer Assisted Radiology and Surgery
卷号
17
期号
8
页码范围
1461-1468
出版商
Springer International Publishing
简介
Purpose
The registration of Laparoscopic Ultrasound (LUS) to CT can enhance the safety of laparoscopic liver surgery by providing the surgeon with awareness on the relative positioning between critical vessels and a tumour. In an effort to provide a translatable solution for this poorly constrained problem, Content-based Image Retrieval (CBIR) based on vessel information has been suggested as a method for obtaining a global coarse registration without using tracking information. However, the performance of these frameworks is limited by the use of non-generalisable handcrafted vessel features.
Methods
We propose the use of a Deep Hashing (DH) network to directly convert vessel images from both LUS and CT into fixed size hash codes. During training, these codes are learnt from a patient-specific CT scan by supplying the network with triplets of vessel images which include both a registered and a mis …
引用总数
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