Recovering Polyp Shape from an Endoscope Image Using Two Light Sources

Author:

Usami Hiroyasu1,Iwahori Yuji1,Hanai Yuki1,Kijsirikul Boonserm2,Kasugai Kunio3

Affiliation:

1. Department of Computer Science, Chubu University, Kasugai, Japan

2. Department of Computer Engineering, Chulalongkorn University, Bangkok, Thailand

3. Department of Gastroenterology, Aichi Medical University, Nagakute, Japan

Abstract

This paper proposes a new approach to recover the polyp shape from an endoscope image using a photometric constraint equation considering two light sources. The procedures are as follows. First, obtain the initial depth distributions by optimizing photometric equation obtained from two light sources. Next, obtain the surface normal vector from depth using numerical difference at each point. Then the mapping between the obtained normal vector and true normal vector is learned using Radial Basis Function Neural Network for a Lambertian sphere, and learning is generalized to another actual polyp image. Finally, optimize the depth using the obtained surface normal to recover the final 3D shape. The validity is confirmed of this method in comparison with the previous methods via computer simulation and experiments using actual endoscope images.

Publisher

IGI Global

Subject

Artificial Intelligence,Computer Graphics and Computer-Aided Design,Computer Networks and Communications,Computer Science Applications,Software

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