Python Data Science Handbook, 2nd Edition : Essential Tools for Working with Data
Book Details
Format
Paperback / Softback
ISBN-10
1098121228
ISBN-13
9781098121228
Publisher
O'Reilly Media
Imprint
O'Reilly Media
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Dec 31st, 2022
Print length
550 Pages
Weight
1,024 grams
Dimensions
23.30 x 17.80 x 3.50 cms
Product Classification:
Research methods / methodologyResearch methods: generalScience: general issuesComputer programming / software developmentComputer programming / software engineeringProgramming & scripting languages: generalProgramming and scripting languages: generalDatabase design & theoryDatabase design and theoryMachine learningInformation visualizationInformation architecture
Ksh 11,500.00
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Working scientists and data crunchers familiar with reading and writing Python code will find the second edition of this comprehensive desk reference ideal for tackling day-to-day issues: manipulating, transforming, and cleaning data; visualizing different types of data; and using data to build statistical or machine learning models.
Python is a first-class tool for many researchers, primarily because of its libraries for storing, manipulating, and gaining insight from data. Several resources exist for individual pieces of this data science stack, but only with the new edition of Python Data Science Handbook do you get them all—IPython, NumPy, pandas, Matplotlib, Scikit-Learn, and other related tools. Working scientists and data crunchers familiar with reading and writing Python code will find the second edition of this comprehensive desk reference ideal for tackling day-to-day issues: manipulating, transforming, and cleaning data; visualizing different types of data; and using data to build statistical or machine learning models. Quite simply, this is the must-have reference for scientific computing in Python. With this handbook, you'll learn how:IPython and Jupyter provide computational environments for scientists using PythonNumPy includes the ndarray for efficient storage and manipulation of dense data arraysPandas contains the DataFrame for efficient storage and manipulation of labeled/columnar dataMatplotlib includes capabilities for a flexible range of data visualizationsScikit-learn helps you build efficient and clean Python implementations of the most important and established machine learning algorithms
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