Camera-based optical palpation

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作者
Rowan W. Sanderson
Qi Fang
Andrea Curatolo
Wayne Adams
Devina D. Lakhiani
Hina M. Ismail
Ken Y. Foo
Benjamin F. Dessauvagie
Bruce Latham
Chris Yeomans
Christobel M. Saunders
Brendan F. Kennedy
机构
[1] The University of Western Australia,BRITElab, Harry Perkins Institute of Medical Research, QEII Medical Centre, Nedlands and Centre for Medical Research
[2] The University of Western Australia,Department of Electrical, Electronic & Computer Engineering, School of Engineering
[3] Fiona Stanley Hospital,PathWest
[4] The University of Western Australia,Division of Pathology and Laboratory Medicine, Medical School
[5] The University of Notre Dame,Division of Surgery, Medical School
[6] The University of Western Australia,Breast Centre
[7] Fiona Stanley Hospital,Breast Clinic
[8] Royal Perth Hospital,Visual Optics and Biophotonics Group, Instituto de Óptica “Daza de Valdés”
[9] Australian Research Council Centre for Personalised Therapeutics Technologies,undefined
[10] Consejo Superior de Investigaciones Científicas (IO,undefined
[11] CSIC),undefined
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摘要
Optical elastography is undergoing extensive development as an imaging tool to map mechanical contrast in tissue. Here, we present a new platform for optical elastography by generating sub-millimetre-scale mechanical contrast from a simple digital camera. This cost-effective, compact and easy-to-implement approach opens the possibility to greatly expand applications of optical elastography both within and beyond the field of medical imaging. Camera-based optical palpation (CBOP) utilises a digital camera to acquire photographs that quantify the light intensity transmitted through a silicone layer comprising a dense distribution of micro-pores (diameter, 30–100 µm). As the transmission of light through the micro-pores increases with compression, we deduce strain in the layer directly from intensity in the digital photograph. By pre-characterising the relationship between stress and strain of the layer, the measured strain map can be converted to an optical palpogram, a map of stress that visualises mechanical contrast in the sample. We demonstrate a spatial resolution as high as 290 µm in CBOP, comparable to that achieved using an optical coherence tomography-based implementation of optical palpation. In this paper, we describe the fabrication of the micro-porous layer and present experimental results from structured phantoms containing stiff inclusions as small as 0.5 × 0.5 × 1 mm. In each case, we demonstrate high contrast between the inclusion and the base material and validate both the contrast and spatial resolution achieved using finite element modelling. By performing CBOP on freshly excised human breast tissue, we demonstrate the capability to delineate tumour from surrounding benign tissue.
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