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Journal ArticleDOI

Piezoresistor defect classification using convolutional neural networks based on incremental branch growth

Lin Huang, +2 more
- 03 Mar 2022 - 
- Vol. 81, Iss: 12, pp 16743-16760
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This article is published in Multimedia Tools and Applications.The article was published on 2022-03-03. It has received 1 citations till now. The article focuses on the topics: Computer science & Computer science.

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Journal ArticleDOI

Artistic Expression in Visual Communication Design in Multimedia Background

TL;DR: In this paper , the authors analyzed the role and influence of current artistic elements on visual communication design in the multimedia environment, and they drew on the principles and laws of visual communication to analyze and evaluate image processing techniques.
References
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Proceedings Article

Very Deep Convolutional Networks for Large-Scale Image Recognition

TL;DR: This work investigates the effect of the convolutional network depth on its accuracy in the large-scale image recognition setting using an architecture with very small convolution filters, which shows that a significant improvement on the prior-art configurations can be achieved by pushing the depth to 16-19 weight layers.
Journal ArticleDOI

Deep learning

TL;DR: Deep learning is making major advances in solving problems that have resisted the best attempts of the artificial intelligence community for many years, and will have many more successes in the near future because it requires very little engineering by hand and can easily take advantage of increases in the amount of available computation and data.
Proceedings ArticleDOI

Going deeper with convolutions

TL;DR: Inception as mentioned in this paper is a deep convolutional neural network architecture that achieves the new state of the art for classification and detection in the ImageNet Large-Scale Visual Recognition Challenge 2014 (ILSVRC14).
Book

Deep Learning

TL;DR: Deep learning as mentioned in this paper is a form of machine learning that enables computers to learn from experience and understand the world in terms of a hierarchy of concepts, and it is used in many applications such as natural language processing, speech recognition, computer vision, online recommendation systems, bioinformatics, and videogames.
Journal ArticleDOI

ImageNet classification with deep convolutional neural networks

TL;DR: A large, deep convolutional neural network was trained to classify the 1.2 million high-resolution images in the ImageNet LSVRC-2010 contest into the 1000 different classes and employed a recently developed regularization method called "dropout" that proved to be very effective.
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