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      Effective android malware detection with a hybrid model based on deep autoencoder and convolutional neural network

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          Gradient-based learning applied to document recognition

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            A fast learning algorithm for deep belief nets.

            We show how to use "complementary priors" to eliminate the explaining-away effects that make inference difficult in densely connected belief nets that have many hidden layers. Using complementary priors, we derive a fast, greedy algorithm that can learn deep, directed belief networks one layer at a time, provided the top two layers form an undirected associative memory. The fast, greedy algorithm is used to initialize a slower learning procedure that fine-tunes the weights using a contrastive version of the wake-sleep algorithm. After fine-tuning, a network with three hidden layers forms a very good generative model of the joint distribution of handwritten digit images and their labels. This generative model gives better digit classification than the best discriminative learning algorithms. The low-dimensional manifolds on which the digits lie are modeled by long ravines in the free-energy landscape of the top-level associative memory, and it is easy to explore these ravines by using the directed connections to display what the associative memory has in mind.
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              Convolutional Neural Networks for Sentence Classification

              Yoon Kim (2014)
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                Author and article information

                Contributors
                Journal
                Journal of Ambient Intelligence and Humanized Computing
                J Ambient Intell Human Comput
                Springer Science and Business Media LLC
                1868-5137
                1868-5145
                August 2019
                April 28 2018
                August 2019
                : 10
                : 8
                : 3035-3043
                Article
                10.1007/s12652-018-0803-6
                884f1a9a-8fb0-4cc5-b028-ac50651a960e
                © 2019

                http://www.springer.com/tdm

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