Data Science Projects with Python: A case study approach to successful data science projects using Python, pandas, and scikit-learn
Gain hands-on experience with industry-standard data analysis and machine learning tools in Python
Data Science Projects with Python: A case study approach to successful data science projects using Python, pandas, and scikit-learn
Nº de artículo: 15118440

Data Science Projects with Python: A case study approach to successful data science projects using Python, pandas, and scikit-learn

Nº de artículo: 15118440

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What Stands Out

Case Study Method
Utilizes real-world case studies, providing practical insights and hands-on experience in executing successful data science projects.
Python Focused
Emphasizes Python tools like Pandas and Scikit-learn, ensuring readers learn the most popular and effective data science libraries used in the industry.
Project Frameworks
Offers structured frameworks for managing data science projects, helping readers overcome common challenges and enhancing their problem-solving capabilities.

Detalles de producto

Boost your data science skills with guided case studies. Learn Python, pandas, and scikit-learn. Shop now at Ubuy Guatemala!
  • Gain hands-on experience with industry-standard data analysis and machine learning tools in PythonKey FeaturesLearn methods to identify potential data issues and solve themCreate effective visualizations using histograms, scatter and line plots, and other graphsIdentify the appropriate mathematical model for a given problem, train, and test itDevelop the communication skills needed to execute successful projects that create valueBook DescriptionData Science Projects with Python is designed to give you practical guidance on industry-standard data analysis and machine learning tools in Python, while using realistic data. This book takes a case study approach to illustrate the end-to-end data science project pipeline, from obtaining data and communicating with business partners, through data exploration and model development, to characterizing the financial value that a model can create.Along the way, you will be guided through how to use pandas and Matplotlib to critically examine a dataset with summary statistics and graphs, in order to identify and correct potential data issues. You will then learn how to prepare data and feed them to machine learning algorithms, such as regularized logistic regression and random forest, using the scikit-learn package. You'll discover how to tune these algorithms to provide the best predictions on new and unseen data. As you delve into later chapters, you'll be able to understand the workings and output of these algorithms and gain insight into not only the predictive capabilities of the models but also the math behind the predictions.By the end of this book, you will have the skills you need to confidently use various machine learning algorithms to perform detailed data analysis and extract meaningful insights from real-world data.What you will learnInstall the required packages to set up a data science coding environmentLoad data into a Jupyter Notebook running PythonUse Matplotlib to create data visualizationsFit a model using scikit-learnUse lasso and ridge regression to reduce overfittingFit and tune a random forest model and compare performance with logistic regressionCreate visuals using the output of the Jupyter NotebookWho this book is forIf you are a data analyst, data scientist, or a business analyst who wants to get started with using Python and machine learning techniques to analyze data and predict outcomes, this book is for you. Basic knowledge of computer programming and data analytics is a must. Familiarity with mathematical concepts such as algebra and basic statistics will be useful.Table of ContentsData Exploration and CleaningIntroduction to Scikit-Learn and Model Evaluation of Logistic Regression and Feature ExplorationThe Bias-Variance Trade-offDecision Trees and Random ForestsImputation of Missing Data, Financial Analysis, and Delivery to Client
Publisher Packt Publishing
Publication date April 30, 2019
Language English
Print length 374 pages
ISBN-10 1838551026
ISBN-13 978-1838551025
Item Weight 1.51 pounds (680 grams)
Dimensions 7.5 x 0.85 x 9.25 inches (19.1 x 2.2 x 23.5 cm)

Who Should Buy?

Suitable For
  • Aspiring Data Scientists

    Ideal for beginners wanting hands-on experience with practical data science projects using Python and key libraries.

  • Intermediate Learners

    Great resource for those with basic knowledge seeking to deepen skills and apply them in real-world scenarios.

  • Industry Professionals

    Beneficial for practitioners looking to enhance their project management skills and learn effective data science techniques.

Not Suitable For
  • Advanced Experts

    Experienced data scientists may find the content too basic and not challenging enough for their skill level.

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Preguntas y respuestas de los clientes

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Intelligence & Semantics Editorial Review

Data Science Projects with Python is a comprehensive guide that takes readers through real-life data problems and provides a detailed explanation of concepts. The book covers everything from exploratory data analysis to model creation and evaluation. The author does a good job of explaining the code and concepts, making it a valuable resource for beginners and intermediate data scientists. However, some readers felt that the book did not clarify or illuminate the subject further and suggested supplementing it with online tutorials. There were also complaints about the code not working and the quality of the printing. Overall, the book is well-written and provides a practical approach to learning data science and machine learning.

Customer Reviews & Ratings

4.4
98 valoraciones de los clientes
  • 5 estrella
    68%
  • 4 estrella
    18%
  • 3 estrella
    11%
  • 2 estrella
    0%
  • 1 estrella
    3%

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ventajas

  • Detailed explanation of code and concepts
  • Practical approach to learning data science and machine learning
  • Covers real-life data problems
  • Valuable resource for beginners and intermediate data scientists

Contras

  • Does not clarify or illuminate the subject further for some readers

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