Literature DB >> 31135351

Convolutional Networks with Dense Connectivity.

Gao Huang, Zhuang Liu, Geoff Pleiss, Laurens Van Der Maaten, Kilian Weinberger.   

Abstract

Recent work has shown that convolutional networks can be substantially deeper, more accurate, and efficient to train if they contain shorter connections between layers close to the input and those close to the output. In this paper, we embrace this observation and introduce the Dense Convolutional Network (DenseNet), which connects each layer to every other layer in a feed-forward fashion. Whereas traditional convolutional networks with L layers have L connections -- one between each layer and its subsequent layer -- our network has [Formula: see text] direct connections. For each layer, the feature-maps of all preceding layers are used as inputs, and its own feature-maps are used as inputs into all subsequent layers. DenseNets have several compelling advantages: they alleviate the vanishing-gradient problem, strengthen feature propagation, encourage feature reuse, and substantially improve parameter efficiency. We evaluate our proposed architecture on four highly competitive object recognition benchmark tasks (CIFAR-10, CIFAR-100, SVHN, and ImageNet). DenseNets obtain significant improvements over the state-of-the-art on most of them, whilst requiring less parameters and computation to achieve high performance.

Year:  2019        PMID: 31135351     DOI: 10.1109/TPAMI.2019.2918284

Source DB:  PubMed          Journal:  IEEE Trans Pattern Anal Mach Intell        ISSN: 0098-5589            Impact factor:   6.226


  23 in total

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5.  Learning to Make Chemical Predictions: the Interplay of Feature Representation, Data, and Machine Learning Methods.

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10.  Autoencoder as a New Method for Maintaining Data Privacy While Analyzing Videos of Patients With Motor Dysfunction: Proof-of-Concept Study.

Authors:  Marcus D'Souza; Caspar E P Van Munster; Jonas F Dorn; Alexis Dorier; Christian P Kamm; Saskia Steinheimer; Frank Dahlke; Bernard M J Uitdehaag; Ludwig Kappos; Matthew Johnson
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