Linear Models with Python Linear Models with Python
    • ‏119٫99 US$

وصف الناشر

Praise for Linear Models with R:

This book is a must-have tool for anyone interested in understanding and applying linear models. The logical ordering of the chapters is well thought out and portrays Faraway’s wealth of experience in teaching and using linear models. … It lays down the material in a logical and intricate manner and makes linear modeling appealing to researchers from virtually all fields of study. -Biometrical Journal

Throughout, it gives plenty of insight … with comments that even the seasoned practitioner will appreciate. Interspersed with R code and the output that it produces one can find many little gems of what I think is sound statistical advice, well epitomized with the examples chosen…I read it with delight and think that the same will be true with anyone who is engaged in the use or teaching of linear models. -Journal of the Royal Statistical Society

Like its widely praised, best-selling companion version, Linear Models with R, this book replaces R with Python to seamlessly give a coherent exposition of the practice of linear modeling. Linear Models with Python offers up-to-date insight on essential data analysis topics, from estimation, inference and prediction to missing data, factorial models and block designs. Numerous examples illustrate how to apply the different methods using Python.

Features:
Python is a powerful, open source programming language increasingly being used in data science, machine learning and computer science. Python and R are similar, but R was designed for statistics, while Python is multi-talented. This version replaces R with Python to make it accessible to a greater number of users outside of statistics, including those from Machine Learning. A reader coming to this book from an ML background will learn new statistical perspectives on learning from data. Topics include Model Selection, Shrinkage, Experiments with Blocks and Missing Data. Includes an Appendix on Python for beginners.
Linear Models with Python explains how to use linear models in physical science, engineering, social science and business applications. It is ideal as a textbook for linear models or linear regression courses.

النوع
تمويل شركات وأفراد
تاريخ النشر
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١ فبراير
اللغة
EN
الإنجليزية
عدد الصفحات
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الناشر
CRC Press
البائع
Taylor & Francis Group
الحجم
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‫م.ب.‬
Advanced R Statistical Programming and Data Models Advanced R Statistical Programming and Data Models
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Predictive Analytics Predictive Analytics
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Regression Analysis: Questions and Answers Regression Analysis: Questions and Answers
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Introduction to Structural Equation Modeling Using IBM SPSS Statistics and Amos Introduction to Structural Equation Modeling Using IBM SPSS Statistics and Amos
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Introduction to Structural Equation Modeling Using IBM SPSS Statistics and EQS Introduction to Structural Equation Modeling Using IBM SPSS Statistics and EQS
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Applied Regression Modeling Applied Regression Modeling
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Linear Models with R Linear Models with R
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Extending the Linear Model with R Extending the Linear Model with R
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Bayesian Regression Modeling with INLA Bayesian Regression Modeling with INLA
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Statistical Rethinking Statistical Rethinking
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Introduction to Probability, Second Edition Introduction to Probability, Second Edition
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Sampling Sampling
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Statistical Inference Statistical Inference
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Bayes Rules! Bayes Rules!
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Bayesian Modeling and Computation in Python Bayesian Modeling and Computation in Python
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