Deep Learning, Machine Learning, Advancing Big Data Analytics and Management
Weiche Hsieh, Ziqian Bi, Keyu Chen, Benji Peng, Sen Zhang, Jiawei Xu,, Jinlang Wang, Caitlyn Heqi Yin, Yichao Zhang, Pohsun Feng, Yizhu Wen,, Tianyang Wang, Ming Li, Chia Xin Liang, Jintao Ren, Qian Niu, Silin Chen,, Lawrence K.Q. Yan, Han Xu, Hong-Ming Tseng, Xinyuan Song

TL;DR
This paper provides a comprehensive overview of how deep learning, machine learning, and AI advancements are transforming big data analytics, emphasizing theoretical foundations, practical methods, and real-world applications across various industries.
Contribution
It offers a systematic synthesis of recent methodological advancements, frameworks, and practical implementations in big data analytics driven by AI technologies.
Findings
Enhanced data preprocessing techniques for big data.
Integration of neural networks and ensemble methods in analytics.
Application of distributed computing for real-time data analysis.
Abstract
Advancements in artificial intelligence, machine learning, and deep learning have catalyzed the transformation of big data analytics and management into pivotal domains for research and application. This work explores the theoretical foundations, methodological advancements, and practical implementations of these technologies, emphasizing their role in uncovering actionable insights from massive, high-dimensional datasets. The study presents a systematic overview of data preprocessing techniques, including data cleaning, normalization, integration, and dimensionality reduction, to prepare raw data for analysis. Core analytics methodologies such as classification, clustering, regression, and anomaly detection are examined, with a focus on algorithmic innovation and scalability. Furthermore, the text delves into state-of-the-art frameworks for data mining and predictive modeling,…
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Taxonomy
TopicsBig Data and Business Intelligence
MethodsFocus
