Isbn: 9798187997480 - statistics for data science and ai (ai and ml reference handbooks) (3 resultados)

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  • Idioma: Inglés

    Editorial: Independently published, 2026

    9798187997480

    Serie: Libro 11 de 18 - AI and ML Reference handbooks

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    Librería: PBShop.store UK, Fairford, GLOS, Reino UnidoPBShop.store UK

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    PAP. Condición: New. New Book. Shipped from UK. Established seller since 2000.

  • Idioma: Inglés

    Editorial: Independently published, 2026

    9798187997480

    Serie: Libro 11 de 18 - AI and ML Reference handbooks

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    Librería: California Books, Miami, FL, Estados Unidos de AmericaCalifornia Books

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  • Idioma: Inglés

    Editorial: Independently Published, 2026

    9798187997480

    Serie: Libro 11 de 18 - AI and ML Reference handbooks

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    Librería: CitiRetail, Stevenage, Reino UnidoCitiRetail

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    Paperback. Condición: new. Paperback. Statistics for Data Science: Complete Reference is a comprehensive, practical handbook designed for data scientists, machine learning engineers, AI practitioners, software developers, researchers, and students who want to master statistics through real-world applications and Python programming.Modern data science is built on statistics. Every machine learning model, A/B test, forecasting system, recommendation engine, and AI application depends on sound statistical principles. This book bridges mathematical concepts with practical implementation, enabling readers to confidently analyze data, build predictive models, and make evidence-based decisions.Unlike traditional statistics textbooks that emphasize theory alone, this reference combines intuitive explanations, mathematical foundations, production-oriented guidance, and complete Python implementations using industry-standard libraries.Inside you'll learn: Statistical foundations, data types, sampling methods, and exploratory data analysis (EDA)Descriptive statistics, probability theory, probability distributions, and statistical inferenceConfidence intervals, hypothesis testing, statistical significance, and effect size analysisLinear regression, logistic regression, multicollinearity, diagnostics, and model validationBayesian statistics, Bayesian inference, MCMC, and probabilistic modeling with PyMCTime series analysis, forecasting techniques, ARIMA, SARIMA, and stationarity testingA/B testing, experimental design, power analysis, sequential testing, and causal thinkingNon-parametric statistics, bootstrap methods, permutation tests, and robust statistical techniquesMultivariate analysis including PCA, factor analysis, clustering, and dimensionality reductionStatistical learning concepts, bias-variance tradeoff, cross-validation, feature selection, and model evaluationStatistical visualization using Matplotlib, Seaborn, Plotly, and best practices for communicating insightsComplete Python examples using NumPy, Pandas, SciPy, Statsmodels, Scikit-learn, and PyMCInterview-focused questions, practical case studies, troubleshooting guidance, and a comprehensive statistical glossaryWhether you're preparing for data science interviews, building machine learning models, conducting business analytics, performing scientific research, or strengthening your statistical foundation for AI, this book provides the practical knowledge needed to apply statistics with confidence.Statistics for Data Science: Complete Reference is an essential desktop reference that you'll return to throughout your career in data science, machine learning, and artificial intelligence. It covers the complete statistical toolkit required by modern AI professionals while emphasizing practical implementation over abstract theory. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.