Data Analytics in Finance / Huijian Dong
Material type:
TextPublisher: CRC Press, 2025Content type: text Media type: unmediated Carrier type: volumeISBN: 9781032430584; 9781032430584Subject(s): Finance -- Data processing. -- Data Analytics in FinanceAdditional physical formats: Data Analytics in FinanceDDC classification: 332.0285/57 LOC classification: HG104 .D66 2025Summary: Data Analytics in Finance covers the methods and application of data analytics in all major areas of finance, including buy-side investments, sell-side investment banking, corporate finance, consumer finance, financial services, real estate, insurance, and commercial banking. It explains statistical inference of big data, financial modeling, machine learning, database querying, data engineering, data visualization, and risk analysis. Emphasizing financial data analytics practices with a solution- oriented purpose, it is a “one-stop-shop” of all the major data analytics aspects for each major finance area.
The book paints a comprehensive picture of the data analytics process including:
Statistical inference of big data
Financial modeling
Machine learning and AI
Database querying
Data engineering
Data visualization
Risk analysis
Each chapter is crafted to provide complete guidance for many subject areas including investments, fraud detection, and consumption finance. Avoiding data analytics methods widely available elsewhere, the book focuses on providing data analytics methods specifically applied to key areas of finance. Written as a roadmap for researchers, practitioners, and students to master data analytics instruments in finance, the book also provides a collection of indispensable resources for the readers’ reference. Offering the knowledge and tools necessary to thrive in a data-driven financial landscape, this book enables readers to deepen their understanding of investments, develop new approaches to risk management, and apply data analytics to finance.
| Item type | Current library | Call number | Status | Date due | Barcode |
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Main Library | HG104 .D66 2025 (Browse shelf (Opens below)) | Available | 51952000270874 | |
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Female Library | HG104 .D66 2025 (Browse shelf (Opens below)) | Available | 51952000270867 |
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| HG930.5 .M269 2011 The euro : the battle for the new global currency / | HG930.5 .S56 2017 Euro trap : on bursting bubbles, budgets, and beliefs / | HG104 .D66 2025 Data Analytics in Finance / | HG104 .D66 2025 Data Analytics in Finance / | HG106 .R57 2025 Finance for Founders : The Journey to Unlocking Your Company’s Wealth. | HG106 .R57 2025 Finance for Founders : The Journey to Unlocking Your Company’s Wealth. | HG173 .B37 2025 Lean for Finance in the Age of AI : Cut Waste. Gain Insight. Lead with Intelligence/ |
Includes bibliographical references and index.
Data Analytics in Finance covers the methods and application of data analytics in all major areas of finance, including buy-side investments, sell-side investment banking, corporate finance, consumer finance, financial services, real estate, insurance, and commercial banking. It explains statistical inference of big data, financial modeling, machine learning, database querying, data engineering, data visualization, and risk analysis. Emphasizing financial data analytics practices with a solution- oriented purpose, it is a “one-stop-shop” of all the major data analytics aspects for each major finance area.
The book paints a comprehensive picture of the data analytics process including:
Statistical inference of big data
Financial modeling
Machine learning and AI
Database querying
Data engineering
Data visualization
Risk analysis
Each chapter is crafted to provide complete guidance for many subject areas including investments, fraud detection, and consumption finance. Avoiding data analytics methods widely available elsewhere, the book focuses on providing data analytics methods specifically applied to key areas of finance. Written as a roadmap for researchers, practitioners, and students to master data analytics instruments in finance, the book also provides a collection of indispensable resources for the readers’ reference. Offering the knowledge and tools necessary to thrive in a data-driven financial landscape, this book enables readers to deepen their understanding of investments, develop new approaches to risk management, and apply data analytics to finance.

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