Automatic Segmentation Based on Deep Learning Techniques for Diabetic Foot Monitoring Through Multimodal Images

被引:8
作者
Hernandez, Abian [1 ]
Arteaga-Marrero, Natalia [2 ]
Villa, Enrique [2 ]
Fabelo, Himar [3 ]
Callico, Gustavo M. [3 ]
Ruiz-Alzola, Juan [1 ]
机构
[1] Univ Las Palmas Gran Canaria, Res Inst Biomed & Hlth iUIBS, Las Palmas Gran Canaria, Spain
[2] Inst Astrofis Canarias IAC, Tenerife, Spain
[3] Univ Las Palmas Gran Canaria, Inst Appl Microelect IUMA, Las Palmas Gran Canaria, Spain
来源
IMAGE ANALYSIS AND PROCESSING - ICIAP 2019, PT II | 2019年 / 11752卷
关键词
RGB-D images; Multimodal images; Deep Learning; Automatic segmentation;
D O I
10.1007/978-3-030-30645-8_38
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Temperature data acquired by infrared sensors provide relevant information to assess different medical pathologies in early stages, when the symptoms of the diseases are not visible yet to the naked eye. Currently, a clinical system that exploits the use of multimodal images (visible, depth and thermal infrared) is being developed for diabetic foot monitoring. The workflow required to analyze these images starts with their acquisition and the automatic feet segmentation. A novel approach is presented for automatic feet segmentation using Deep Learning employing an architecture composed of an encoder and decoder (U-Net architecture) and applying a segmentation of planes in point cloud data, using the depth information of pixels labeled in the neural network prediction. The proposed automatic segmentation is a robust method for this case study, providing results in a short time and achieving better performance than other traditional segmentation methods as well as a basic U-Net segmentation system.
引用
收藏
页码:414 / 424
页数:11
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