Deep learning applications and challenges in big data analytics

June 2022
Vol-8, Issue-3
Paper ID: 17443
ISSN: 2395-4396
Downloads: 0

Abstract & Details

Research Area
Computer Engineering
Keywords
Deep learning Big data
Abstract
Big Data Analytics and Deep Learning are two high-focus of data science. Big Data has become important as many organizations both public and private have been collecting massive amounts of domain-specific information, which can contain useful information about problems such as national intelligence, cyber security, fraud detection, marketing, and medical informatics. Companies such as Google and Microsoft are analyzing large volumes of data for business analysis and decisions, impacting existing and future technology. Deep Learning algorithms extract highlevel, complex abstractions as data representations through a hierarchical learning process. Complex abstractions are learnt at a given level based on relatively simpler abstractions formulated in the preceding level in the hierarchy. A key benefit of Deep Learning is the analysis and learning of massive amounts of unsupervised data, making it a valuable tool for Big Data Analytics where raw data is largely unlabeled and un-categorized. In the present study, we explore how Deep Learning can be utilized for addressing some important problems in Big Data Analytics, including extracting complex patterns from massive volumes of data, semantic indexing, data tagging, fast information retrieval, and simplifying discriminative tasks. We also investigate some aspects of Deep Learning research that need further exploration to incorporate specific challenges introduced by Big Data Analytics, including streaming data, high-dimensional data, scalability of models, and distributed computing. We conclude by presenting insights into relevant future works by posing some questions, including defining data sampling criteria, domain adaptation modeling, defining criteria for obtaining useful data abstractions, improving semantic indexing, semisupervised learning, and active learning.

Author Information

# Name Institute / Affiliation
1 Dhruva Dronacharya College of Engineering

How to Cite

Use the following formats to cite this article in your research.

APA Style
Dhruva (2022). Deep learning applications and challenges in big data analytics. International Journal of Advance Research and Innovative Ideas In Education, 8(3), 4732-4746.
MLA Style
Dhruva. "Deep learning applications and challenges in big data analytics." International Journal of Advance Research and Innovative Ideas In Education, vol. 8, no. 3, 2022, pp. 4732-4746.
IEEE Style
Dhruva, "Deep learning applications and challenges in big data analytics," International Journal of Advance Research and Innovative Ideas In Education, vol. 8, no. 3, pp. 4732-4746, 2022.
Vancouver Style
Dhruva. Deep learning applications and challenges in big data analytics. International Journal of Advance Research and Innovative Ideas In Education. 2022;8(3):4732-4746.
Harvard Style
Dhruva (2022) 'Deep learning applications and challenges in big data analytics', International Journal of Advance Research and Innovative Ideas In Education, 8(3), pp. 4732-4746.
Chicago Style
Dhruva. "Deep learning applications and challenges in big data analytics." International Journal of Advance Research and Innovative Ideas In Education 8, no. 3 (2022): 4732-4746.
Turabian Style
Dhruva. "Deep learning applications and challenges in big data analytics." International Journal of Advance Research and Innovative Ideas In Education 8, no. 3 (2022): 4732-4746.

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