Data Analysis with Python and PySpark
PySpark brings the powerful Spark big data processing engine to the Python ecosystem, letting you seamlessly scale up your data tasks and create lightning-fast pipelines.
Data Analysis with Python and PySpark
Stavka #: 51423671

Data Analysis with Python and PySpark

Stavka #: 51423671

€ 72

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PySpark brings the powerful Spark big data processing engine to the Python ecosystem, letting you seamlessly scale up your data tasks and create lightning-fast pipelines.
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What Stands Out

Comprehensive Coverage
This product offers an extensive exploration of both Python and PySpark, equipping users with the skills needed to master data analysis and big data processing efficiently.
Hands-On Learning
Engaging, practical exercises allow users to apply theoretical knowledge, enhancing retention and enabling immediate application of skills in real-world data scenarios.
User-Friendly Approach
Designed for all skill levels, the course simplifies complex concepts with clear explanations and tutorials, making data analysis accessible even for beginners.

Detalji o proizvodu

Find the best deals on Data Analysis with Python and PySpark at Ubuy Croatia. Enhance your data analysis skills with Python and PySpark for insightful business decisions.
Publisher Manning Publications
Publication date March 22, 2022
Language English
Print length 456 pages
ISBN-10 1617297208
ISBN-13 978-1617297205
Item Weight 7.4 ounces (209.79 grams)
Dimensions 7.38 x 1.14 x 9.25 inches (18.7 x 2.9 x 23.5 cm)

Who Should Buy?

Suitable For
  • Data Scientists

    Ideal for data scientists looking to leverage Python and PySpark for large-scale data analysis and machine learning.

  • Developers

    Great for software developers aiming to integrate data processing capabilities into existing applications using Python and PySpark.

  • Students

    Perfect for students studying data science who need practical experience with data analysis tools and libraries.

Not Suitable For
  • Beginners

    Not suitable for absolute beginners in programming or data analysis due to the steep learning curve involved.

OPIS PROIZVODA

Data Analysis with Python and PySpark

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Pitanja i odgovori kupaca

  • pitanje: Kako kupovati Data Analysis with Python and PySpark online od Ubuya?

    odgovor: Jednostavno je kupovati Data Analysis with Python and PySpark online s Ubuya.. Samo trebate potražiti proizvod, odabrati način dostave tijekom odjave i dobiti ga na svoju lokaciju.
  • pitanje: Je li Data Analysis with Python and PySpark dostupan za online kupnju u Croatia?

    odgovor: Da, na Ubuyu Croatia ovaj proizvod vam je dostupan za kupnju po razumnoj cijeni.. Data Analysis with Python and PySpark nije dostupan lokalno, ali možete nam povjeriti naše usluge ekspresne dostave.
  • pitanje: Koliko dugo je potrebno da dobijete proizvod nakon narudžbe?

    odgovor: Vrijeme isporuke vašeg naručenog proizvoda ovisi o tome što ste naručili i načinu dostave koji ste odabrali.. Predviđeno vrijeme dostave navedeno je tijekom procesa naplate, stoga budite bezbrižni prilikom kupovine.

Data Mining Editorial Review

In the editorial review, the "Data Analysis with Python and PySpark" book is highly recommended for those looking to enhance their data engineering skills. The book offers a methodical introduction to PySpark, with particular praise for the chapter on JSON parsing. Readers find the book to be very useful and easy to follow, even preferring it over other similar titles on Spark and Databricks. Some readers appreciate the nuanced insights provided in the book and note that it has elevated their data engineering skills. However, there is a negative comment about the physical copy of the book, citing poor paper quality and black-and-white printing.

Customer Reviews & Ratings

5.0
1 ocjene kupaca
  • 5 zvjezdica
    100%
  • 4 zvjezdica
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  • 2 zvjezdica
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  • 1 zvjezdica
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Pros

  • Methodical introduction to PySpark
  • Insightful chapter on JSON parsing
  • Highly recommended for enhancing data engineering skills
  • Useful and easy to follow compared to other books on Spark
  • Provides nuanced insights

Protiv

  • Poor paper quality and black-and-white printing of physical book

Product Price History

Važne informacije

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