Combining diffuse reflectance spectroscopy and ultrasound imaging for resection margin assessment during colorectal cancer surgery

被引:1
作者
Geldof, Freija [1 ]
Dashtbozorg, Behdad H. W. [1 ]
Hendriks, Bernardus J. C. M. [2 ,3 ]
Sterenborg, Henricus [1 ,4 ]
Ruers, Theo J. M. [1 ,5 ]
机构
[1] Netherlands Canc Inst, Dept Surg, Plesmanlaan 121, NL-1066 CX Amsterdam, Netherlands
[2] Philips Res, Dept Body Syst, NL-5656 AE Eindhoven, Netherlands
[3] Delft Univ Technol, Dept Biomed Engn, Mekelweg 2, NL-2628 CD Delft, Netherlands
[4] Amsterdam Univ Med Ctr, Dept Biomed Engn & Phys, Meibergdreef 9, NL-1105 AZ Amsterdam, Netherlands
[5] Univ Twente, Fac Sci & Technol, Drienerlolaan 5, NL-7522 NB Enschede, Netherlands
来源
MULTIMODAL BIOMEDICAL IMAGING XVI | 2021年 / 11634卷
关键词
Multimodal imaging; diffuse reflectance spectroscopy; ultrasound imaging; multi-layer tissue; surgical guidance; margin assessment; tissue classification; colorectal cancer;
D O I
10.1117/12.2578478
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Establishing adequate resection margins during colorectal cancer surgery is challenging. Currently, in up to 30% of the cases the tumor is not completely removed, which emphasizes the lack of a real-time tissue discrimination tool that can assess resection margins up to multiple millimeters in depth. Therefore, we propose to combine spectral data from diffuse reflectance spectroscopy (DRS) with spatial information from ultrasound (US) imaging to evaluate multi-layered tissue structures. First, measurements with animal tissue were performed to evaluate the feasibility of the concept. The phantoms consisted of muscle and fat layers, with a varying top layer thickness of 0-10 mm. DRS spectra of 250 locations were obtained and corresponding US images were acquired. DRS features were extracted using the wavelet transform. US features were extracted based on the graph theory and first-order gradient. Using a regression analysis and combined DRS and US features, the top layer thickness was estimated with an error of up to 0.48 mm. The tissue types of the first and second layers were classified with accuracies of 0.95 and 0.99 respectively, using a support vector machine model.
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页数:6
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