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    1. Ekonomi och Ledarskap
    2. Ledarskapsböcker
    3. Ledarskap och motivation

    Just Enough Data Science and Machine Learning

    Essential Tools and Techniques

    AvMark Levene,Martyn Harris

    Häftad, Engelska, 2025

    373 kr

    Beställningsvara. Skickas inom 7-10 vardagar. Fri frakt över 249 kr.

    Beskrivning

    An accessible introduction to applied data science and machine learning, with minimal math and code required to master the foundational and technical aspects of data science.

    In Just Enough Data Science and Machine Learning, authors Mark Levene and Martyn Harris present a comprehensive and accessible introduction to data science. It allows the readers to develop an intuition behind the methods adopted in both data science and machine learning, which is the algorithmic component of data science involving the discovery of patterns from input data. This book looks at data science from an applied perspective, where emphasis is placed on the algorithmic aspects of data science and on the fundamental statistical concepts necessary to understand the subject.

    The book begins by exploring the nature of data science and its origins in basic statistics. The authors then guide readers through the essential steps of data science, starting with exploratory data analysis using visualisation tools. They explain the process of forming hypotheses, building statistical models, and utilising algorithmic methods to discover patterns in the data. Finally, the authors discuss general issues and preliminary concepts that are needed to understand machine learning, which is central to the discipline of data science.

    The book is packed with practical examples and real-world data sets throughout to reinforce the concepts. All examples are supported by Python code external to the reading material to keep the book timeless.

    Notable features of this book:

    • Clear explanations of fundamental statistical notions and concepts
    • Coverage of various types of data and techniques for analysis
    • In-depth exploration of popular machine learning tools and methods
    • Insight into specific data science topics, such as social networks and sentiment analysis
    • Practical examples and case studies for real-world application
    • Recommended further reading for deeper exploration of specific topics.

    Produktinformation

    • Utgivningsdatum:2025-02-25
    • Mått:180 x 230 x 10 mm
    • Vikt:374 g
    • Format:Häftad
    • Språk:Engelska
    • Antal sidor:224
    • Upplaga:1
    • Förlag:Pearson Education
    • ISBN:9780138340742

    Utforska kategorier

    • Ledarskap och motivation inom Ekonomi och Ledarskap

    Mer om författaren

    Mark Levene is emeritus professor of Computer Science at Birkbeck University of London. His main area of expertise is Data Science and Machine Learning, including Applied Machine Learning, Trustworthy and Safe AI, and more.  Dr. Martyn Harris is a lecturer and Programme Director at Birkbeck University of London. His areas of expertise include Data Science, Machine Learning, and Natural Language Processing.

    Innehållsförteckning

    • List of Figures       ixPreface        xviiAbout the Authors        xix  Chapter 1. What Is Data Science?        1  Chapter 2. Basic Statistics         32.1 Introductory Statistical Notions         32.2 Expectation         172.3 Variance         212.4 Correlation         262.5 Regression         282.6 Chapter Summary         32  Chapter 3. Types of Data         333.1 Tabular Data         333.2 Textual Data         383.3 Image, Video, and Audio Data         403.4 Time Series Data         413.5 Geographical Data         423.6 Social Network Data         443.7 Transforming Data         463.8 Chapter Summary         51  Chapter 4. Machine Learning Tools         524.1 What Is Machine Learning?         524.2 Evaluation         574.3 Supervised Methods         684.4 Unsupervised Methods         1054.5 Semi-Supervised Methods         1254.6 Chapter Summary         129  Chapter 5. Data Science Topics         1305.1 Searching, Ranking, and Rating         1305.2 Social Networks         1505.3 Three Natural Language Processing Topics         1715.4 Chapter Summary         183  Chapter 6. Selected Additional Topics         1846.1 Neuro-Symbolic AI         1846.2 Conversational AI         1856.3 Generative Neural Networks         1856.4 Trustworthy AI         1866.5 Large Language Models         1876.6 Epilogue         187  Chapter 7. Further Reading         1897.1 Basic Statistics         1897.2 Data Science         1897.3 Machine Learning         1907.4 Deep Learning         1917.5 Research Papers         1917.6 Python         191  Bibliography         192 Index         195