Title :
Deep learning of tissue specific speckle representations in optical coherence tomography and deeper exploration for in situ histology
Author :
Sheet, Debdoot ; Karri, Sri Phani Krishna ; Katouzian, Amin ; Navab, Nassir ; Ray, Ajoy K. ; Chatterjee, Jyotirmoy
Author_Institution :
Dept. of Electr. Eng., Indian Inst. of Technol. Kharagpur, Kharagpur, India
Abstract :
Optical coherence tomography (OCT) relies on speckle image formation by coherent sensing of photons diffracted from a broadband laser source incident on tissues. Its non-ionizing nature and tissue specific speckle appearance has leveraged rapid clinical translation for non-invasive high-resolution in situ imaging of critical organs and tissue viz. coronary vessels, healing wounds, retina and choroid. However the stochastic nature of speckles introduces inter- and intra-observer reporting variability challenges. This paper proposes a deep neural network (DNN) based architecture for unsupervised learning of speckle representations in swept-source OCT using denoising auto-encoders (DAE) and supervised learning of tissue specifics using stacked DAEs for histologically characterizing healthy skin and healing wounds with the aim of reducing clinical reporting variability. Performance of our deep learning based tissue characterization method in comparison with conventional histology of healthy and wounded mice skin strongly advocates its use for in situ histology of live tissues.
Keywords :
biomedical optical imaging; image coding; image denoising; medical image processing; neural nets; optical tomography; skin; speckle; tissue engineering; unsupervised learning; wounds; OCT; choroid; clinical reporting variability; coherent sensing; conventional histology; coronary vessels; critical organs; deep learning; deep neural network-based architecture; denoising autoencoders; healing wounds; histologically characterizing healthy skin; in situ histology; interobserver reporting variability challenges; intraobserver reporting variability challenges; laser source incident; leveraged rapid clinical translation; live tissues; noninvasive high-resolution in situ imaging; optical coherence tomography; photon diffraction; retina; speckle image formation; speckle representations; stochastic nature; swept-source OCT; tissue specific speckle appearance; tissue specific speckle representations; unsupervised learning; wounded mice skin; Adaptive optics; Biomedical optical imaging; Machine learning; Optical imaging; Skin; Speckle; Wounds; Representation learning; cutaneous wounds; denoising autoencoders; in situ histology; optical coherence tomography; tissue characterization;
Conference_Titel :
Biomedical Imaging (ISBI), 2015 IEEE 12th International Symposium on
Conference_Location :
New York, NY
DOI :
10.1109/ISBI.2015.7163987