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Python for Data Science

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Python for Data Science
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70,19 EUR
Typical price326,04 PLN
Lowest (90 days)41,19 PLN
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ผู้ขาย Product price Delivery รวม ความพร้อมจำหน่าย Updated
SP SpringerNatureLink Shop INT 41,19 EUR 29,00 EUR 70,19 EUR มีจำหน่าย 1 วันที่แล้ว View offer
SP Springer Nature Author 41,19 EUR 19,00 EUR 60,19 EUR มีจำหน่าย 1 วันที่แล้ว View offer
SP Springer Nature Author 14 299,00 JPY 19,00 JPY 14 318,00 JPY มีจำหน่าย 1 วันที่แล้ว View offer
SP SpringerNatureLink Shop INT 109,99 USD free 109,99 USD มีจำหน่าย 1 วันที่แล้ว View offer

ราคาและความพร้อมจำหน่ายอาจมีการเปลี่ยนแปลง อัปเดตล่าสุด: 08.08.2026 21:59.

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The book is designed to serve as a textbook for courses offered to undergraduate and graduate students enrolled in data science. This book aims to help the readers understand the basic and advanced concepts for developing simple programs and the fundamentals required for building machine learning models. The book covers basic concepts like data types, operators, and statements that enable the reader to solve simple problems. As functions are the core of any programming, a detailed illustration of defining & invoking functions and recursive functions is covered. Built-in data structures of Python, such as strings, lists, tuples, sets, and dictionary structures, are discussed in detail with examples and exercise problems. Files are an integrated part of programming when dealing with large data. File handling operations are illustrated with examples and a case study at the end of the chapter. Widely used Python packages for data science, such as Pandas, Data Visualization libraries, and regular expressions, are discussed with examples and case studies at the end of the chapters. The book also contains a chapter on SQLite3, a small relational database management system of Python, to understand how to create and manage databases. As AI applications are becoming popular for developing intelligent solutions to various problems, the book includes chapters on Machine Learning and Deep Learning. They cover the basic concepts, example applications, and case studies using popular frameworks such as SKLearn and Keras on public datasets

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