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دسته بندی:
داده های بزرگ - big data
سال انتشار:
2018
عنوان انگلیسی مقاله:
A survey on deep learning for big data
ترجمه فارسی عنوان مقاله:
مروری بر یادگیری عمیق برای داده های بزرگ
منبع:
Sciencedirect - Elsevier - Information Fusion, 42 (2018) 146-157: doi:10:1016/j:inffus:2017:10:006
نویسنده:
Qingchen Zhanga,b, Laurence T. Yang⁎,a,b, Zhikui Chenc, Peng Lic
چکیده انگلیسی:
Deep learning, as one of the most currently remarkable machine learning techniques, has achieved great success
in many applications such as image analysis, speech recognition and text understanding. It uses supervised and
unsupervised strategies to learn multi-level representations and features in hierarchical architectures for the
tasks of classification and pattern recognition. Recent development in sensor networks and communication
technologies has enabled the collection of big data. Although big data provides great opportunities for a broad of
areas including e-commerce, industrial control and smart medical, it poses many challenging issues on data
mining and information processing due to its characteristics of large volume, large variety, large velocity and
large veracity. In the past few years, deep learning has played an important role in big data analytic solutions. In
this paper, we review the emerging researches of deep learning models for big data feature learning.
Furthermore, we point out the remaining challenges of big data deep learning and discuss the future topics.
Keywords: Deep learning , Big data , Stacked auto-encoders , Deep belief networks , Convolutional neural networks , Recurrent neural networks
قیمت: رایگان
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