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Survey of Recent Progress in Semantic Image Segmentation With Cnns - 2018

Survey Of Recent Progress In Semantic Image Segmentation With Cnns

Survey Paper on Recent Progress In Semantic Image Segmentation With Cnns

Research Area:  Machine Learning

Abstract:

In recent years, convolutional neural networks (CNNs) are leading the way in many computer vision tasks, such as image classification, object detection, and face recognition. In order to produce more refined semantic image segmentation, we survey the powerful CNNs and novel elaborate layers, structures and strategies, especially including those that have achieved the state-of-the-art results on the Pascal VOC 2012 semantic segmentation challenge. Moreover, we discuss their different working stages and various mechanisms to utilize the structural and contextual information in the image and feature spaces. Finally, combining some popular underlying referential methods in homologous problems, we propose several possible directions and approaches to incorporate existing effective methods as components to enhance CNNs for the segmentation of specific semantic objects.

Keywords:  
Semantic Image Segmentation
convolutional neural networks
Machine Learning
Deep Learning

Author(s) Name:  Qichuan Geng, Zhong Zhou & Xiaochun Cao

Journal name:  Science China Information Sciences

Conferrence name:  

Publisher name:  Springer

DOI:  10.1007/s11432-017-9189-6

Volume Information:  volume 61, Article number: 051101 (2018)