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Machine Learning for Business Analytics (Real-Time Data Analysis for Decision-Making)

List Price: $76.99
SKU:
9781032072777
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  • Product Details

    Author:
    Hemachandran K, Sayantan Khanra, Raul V. Rodriguez, Juan Jaramillo
    Format:
    Paperback
    Pages:
    190
    Publisher:
    Taylor & Francis (August 4, 2022)
    Language:
    English
    ISBN-13:
    9781032072777
    Weight:
    11.375oz
    Dimensions:
    7" x 10"
    File:
    TAYLORFRANCIS-TayFran_260825153222194-20260825.xml
    Folder:
    TAYLORFRANCIS
    List Price:
    $76.99
    Case Pack:
    10
    As low as:
    $73.14
    Publisher Identifier:
    P-CRC
    Discount Code:
    H
    Audience:
    Professional and scholarly
    Country of Origin:
    United States
    Pub Discount:
    30
    Imprint:
    Productivity Press
  • Overview

    Machine Learning is an integral tool in a business analyst’s arsenal because the rate at which data is being generated from different sources is increasing and working on complex unstructured data is becoming inevitable. Data collection, data cleaning, and data mining are rapidly becoming more difficult to analyze than just importing information from a primary or secondary source. The machine learning model plays a crucial role in predicting the future performance and results of a company. In real-time, data collection and data wrangling are the important steps in deploying the models. Analytics is a tool for visualizing and steering data and statistics. Business analysts can work with different datasets -- choosing an appropriate machine learning model results in accurate analyzing, forecasting the future, and making informed decisions.

    The global machine learning market was valued at $1.58 billion in 2017 and is expected to reach $20.83 billion in 2024 -- growing at a CAGR of 44.06% between 2017 and 2024. The authors have compiled important knowledge on machine learning real-time applications in business analytics. This book enables readers to get broad knowledge in the field of machine learning models and to carry out their future research work. The future trends of machine learning for business analytics are explained with real case studies.

    Essentially, this book acts as a guide to all business analysts. The authors blend the basics of data analytics and machine learning and extend its application to business analytics. This book acts as a superb introduction and covers the applications and implications of machine learning. The authors provide first-hand experience of the applications of machine learning for business analytics in the section on real-time analysis. Case studies put the theory into practice so that you may receive hands-on experience with machine learning and data analytics. This book is a valuable source for practitioners, industrialists, technologists, and researchers.