Large-capacity image information reduction based on single-cue saliency map for retinal prosthesis system

被引:0
|
作者
Chen Y. [1 ]
Liang X. [1 ,2 ]
Zhang Z. [1 ]
Li R. [1 ]
Fu N. [1 ]
Zhu Y. [1 ]
Xie Y. [1 ]
Zhang H. [2 ]
机构
[1] Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Research Centre for Medical Robotics and Minimally Invasive Surgical Devices
[2] Department of Biomedical Engineering, Guangdong Medical College
来源
International Journal of Simulation: Systems, Science and Technology | 2016年 / 17卷 / 26期
基金
中国国家自然科学基金;
关键词
Image processing; Region of interest; Retinal prosthesis; Saliency map; Trimming threshold selection;
D O I
10.5013/IJSSST.a.17.26.27
中图分类号
学科分类号
摘要
In an effort to restore visual perception in retinal diseases, an electronic retinal prosthesis with thousands of electrodes has been developed. The image processing strategies of retinal prosthesis system converts the original images from the camera to the stimulus pattern which can be interpreted by the brain. Practically, the original images are with more high resolution (256x256) than that of the stimulus pattern (such as 25x25), which causes a technical image processing challenge to do large-capacity image information reduction. In this paper, we focus on developing an efficient image processing stimulus pattern extraction algorithm by using a single cue saliency map for extracting salient objects in the image with an optimal trimming threshold. Experimental results showed that the proposed stimulus pattern extraction algorithm performs quite well for different scenes in terms of the stimulus pattern. In the algorithm performance experiment, our proposed SCSPE algorithm have almost five times of the score compared with Boyle’s algorithm. Through experiments we suggested that when there are salient objects in the scene (such as the blind meet people or talking with people), the trimming threshold should be set around 0.4max, in other situations, the trimming threshold values can be set between 0.2max-0.4max to give the satisfied stimulus pattern . © 2016, UK Simulation Society. All rights reserved.
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页数:8
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