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Open AccessJournal ArticleDOI

Recent advances in convolutional neural networks

TLDR
A broad survey of the recent advances in convolutional neural networks can be found in this article, where the authors discuss the improvements of CNN on different aspects, namely, layer design, activation function, loss function, regularization, optimization and fast computation.
About
This article is published in Pattern Recognition.The article was published on 2018-05-01 and is currently open access. It has received 3125 citations till now. The article focuses on the topics: Deep learning & Convolutional neural network.

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Journal ArticleDOI

Deep Learning for Generic Object Detection: A Survey

TL;DR: A comprehensive survey of the recent achievements in this field brought about by deep learning techniques, covering many aspects of generic object detection: detection frameworks, object feature representation, object proposal generation, context modeling, training strategies, and evaluation metrics.
Journal ArticleDOI

A survey of the recent architectures of deep convolutional neural networks

TL;DR: Deep Convolutional Neural Networks (CNNs) as mentioned in this paper are a special type of Neural Networks, which has shown exemplary performance on several competitions related to Computer Vision and Image Processing.
Journal ArticleDOI

Applications of machine learning to machine fault diagnosis: A review and roadmap

TL;DR: A review and roadmap to systematically cover the development of IFD following the progress of machine learning theories and offer a future perspective is presented.
Journal ArticleDOI

Review of deep learning: concepts, CNN architectures, challenges, applications, future directions

TL;DR: In this paper, a comprehensive survey of the most important aspects of DL and including those enhancements recently added to the field is provided, and the challenges and suggested solutions to help researchers understand the existing research gaps.
Journal ArticleDOI

Albumentations: fast and flexible image augmentations

TL;DR: Albumentations as mentioned in this paper is a fast and flexible open source library for image augmentation with many various image transform operations available that is also an easy-to-use wrapper around other augmentation libraries.
References
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Posted Content

End-to-end Convolutional Network for Saliency Prediction

TL;DR: The convolutional network in this paper, named JuntingNet, won the LSUN 2015 challenge on saliency prediction with a superior performance in all considered metrics.
Proceedings ArticleDOI

Automatic discrimination of text and non-text natural images

TL;DR: This paper investigates the problem of text image discrimination, which aims at distinguishing natural images with text from those without text, and proposes a method that combines three mature techniques in this area, namely: MSER, CNN and BoW.
Journal ArticleDOI

Scene parsing using inference Embedded Deep Networks

TL;DR: This work aims to design a novel neural network architecture called Inference Embedded Deep Networks (IEDNs), which incorporates a novel designed inference layer based on graphical model, and demonstrates that the proposed IEDNs can achieve better performance.
Posted Content

$gen$CNN: A Convolutional Architecture for Word Sequence Prediction

TL;DR: This paper proposed a novel convolutional architecture, named $gen$CNN, to predict the next word with the history of words of variable length, which can exploit both the short and long range dependencies.
Proceedings ArticleDOI

Robust Seed Localization and Growing with Deep Convolutional Features for Scene Text Detection

TL;DR: A novel text detection method based on robust localization and adaptive growing of seed text components and an associative quality is learned to measure the conformity combining both the geometric and appearance constraints between two neighbouring text components is presented.
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