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    1. Data och IT
    2. Systemvetenskap och AI

    Essential Statistics for Non-STEM Data Analysts

    Get to grips with the statistics and math knowledge needed to enter the world of data science with Python

    AvRongpeng Li

    Häftad, Engelska, 2020

    584 kr

    Beställningsvara. Skickas inom 5-8 vardagar. Fri frakt över 249 kr.

    Fler format och utgåvor

    E-bok

    427 kr

    Beskrivning

    Reinforce your understanding of data science and data analysis from a statistical perspective to extract meaningful insights from your data using Python programmingKey FeaturesWork your way through the entire data analysis pipeline with statistics concerns in mind to make reasonable decisionsUnderstand how various data science algorithms functionBuild a solid foundation in statistics for data science and machine learning using Python-based examplesBook DescriptionStatistics remain the backbone of modern analysis tasks, helping you to interpret the results produced by data science pipelines. This book is a detailed guide covering the math and various statistical methods required for undertaking data science tasks.The book starts by showing you how to preprocess data and inspect distributions and correlations from a statistical perspective. You’ll then get to grips with the fundamentals of statistical analysis and apply its concepts to real-world datasets. As you advance, you’ll find out how statistical concepts emerge from different stages of data science pipelines, understand the summary of datasets in the language of statistics, and use it to build a solid foundation for robust data products such as explanatory models and predictive models. Once you’ve uncovered the working mechanism of data science algorithms, you’ll cover essential concepts for efficient data collection, cleaning, mining, visualization, and analysis. Finally, you’ll implement statistical methods in key machine learning tasks such as classification, regression, tree-based methods, and ensemble learning.By the end of this Essential Statistics for Non-STEM Data Analysts book, you’ll have learned how to build and present a self-contained, statistics-backed data product to meet your business goals.What you will learnFind out how to grab and load data into an analysis environmentPerform descriptive analysis to extract meaningful summaries from dataDiscover probability, parameter estimation, hypothesis tests, and experiment design best practicesGet to grips with resampling and bootstrapping in PythonDelve into statistical tests with variance analysis, time series analysis, and A/B test examplesUnderstand the statistics behind popular machine learning algorithmsAnswer questions on statistics for data scientist interviewsWho this book is forThis book is an entry-level guide for data science enthusiasts, data analysts, and anyone starting out in the field of data science and looking to learn the essential statistical concepts with the help of simple explanations and examples. If you’re a developer or student with a non-mathematical background, you’ll find this book useful. Working knowledge of the Python programming language is required.

    Produktinformation

    • Utgivningsdatum:2020-11-12
    • Mått:191 x 235 x 21 mm
    • Vikt:733 g
    • Format:Häftad
    • Språk:Engelska
    • Antal sidor:394
    • Förlag:Packt Publishing Limited
    • ISBN:9781838984847

    Utforska kategorier

    • Systemvetenskap och AI inom Data och IT
    • Referensverk och tvärvetenskap inom Samhälle och politik
    • Programspråk inom Data och IT

    Mer om författaren

    Rongpeng Li is a Research Programmer at the Information Science Institute, University of Southern California. He has also been the host and organizer of the Data Analysis Workshop Designed for Non-Stem Busy Professionals at LA.

    Innehållsförteckning

    • Table of ContentsFundamentals of Data Collection, Cleaning and PreprocessingEssential Statistics for Data AssessmentVisualization with Statistical GraphsSampling and Inferential StatisticsCommon Probability DistributionsParametric EstimationStatistical Hypothesis TestingStatistics for RegressionStatistics for ClassificationStatistics for Tree-based MethodsStatistics for Ensemble MethodA Collection of Best PracticesExercises and Projects