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Python Data Analysis: Perform data collection, data processing, wrangling, visualization, and model building using Python, 3rd Edition
ALL 5521
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With this book, you'll get up and running using Python for data analysis by exploring the different phases and methodologies used in data analysis
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Dettagli del prodotto
- Learn to prepare and clean data for exploratory analysis, data manipulation, and data wrangling
- Discover supervised, unsupervised, probabilistic, and Bayesian machine learning methods
- Understand graph processing and sentiment analysis
- Gain the skills to prepare data for analysis and create meaningful data visualizations for forecasting values from data
- Explore data science process models, data manipulation using NumPy and pandas, and interactive visualizations using Matplotlib, Seaborn, and Bokeh
- Analyze textual data and image data, and get up to speed with parallel computing using Dask
| Editor | Packt Publishing |
| Fecha de publicación | February 5, 2021 |
| Édition | 3rd ed. |
| Language | Inglés |
| Imprimir longitud | 478 pages |
| ISBN-10 | 1789955246 |
| ISBN-13 | 978-1789955248 |
| Peso del artículo | 1.79 pounds (810 grams) |
| Dimensiones | 7.5 x 1.08 x 9.25 inches (19.1 x 2.7 x 23.5 cm) |
A chi è consigliato?
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Data Analysts
Ideal for data analysts needing to effectively analyze and visualize data using Python's powerful libraries.
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Estudiantes
Perfect for students in data science or statistics courses looking to enhance their practical skills in Python.
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Profesionales de negocios
Beneficial for business professionals who want to leverage data analytics for better decision-making and insights.
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Principiantes
Not suitable for complete beginners as it assumes prior knowledge of Python and data analysis concepts.
DESCRIZIONE DEL PRODOTTO
Python Data Analysis: Perform data collection, data processing, wrangling, visualization, and model building using Python, 3rd Edition
About This Item
Introducing the 3rd Edition Python Data Analysis Book Are you ready to unlock the full potential of data analysis using Python? Look no further than the Python Data Analysis book, now available in its highly anticipated 3rd Edition. Whether you are a beginner or an experienced data enthusiast, this book is designed to help you master the essential techniques for data collection, processing, wrangling, visualization, and model building using Python. With Python Data Analysis, you'll gain a comprehensive understanding of the data analysis process from start to finish. The book begins by laying a solid foundation, guiding you through the fundamentals of data collection and processing.
You'll learn how to gather data using various methods and effectively manipulate it for analysis purposes. But that's just the tip of the iceberg. Once you've mastered the basics, the book dives into advanced topics like data wrangling, visualization, and model building. You'll discover powerful Python libraries and tools that are indispensable for any data analyst, including NumPy, pandas, Matplotlib, and scikit-learn. Throughout the 3rd Edition, the author provides clear and concise explanations, accompanied by practical examples and step-by-step instructions.
This ensures that you not only understand the concepts but also know how to apply them in real-world scenarios. What sets this edition apart is its updated content and focus on the latest developments in the field of data analysis. Released on 5th February 2021, it incorporates the most recent advancements in Python and data analysis techniques. The Python Data Analysis book is the perfect resource for data scientists, analysts, researchers, and anyone looking to leverage the power of Python for extracting insights from data. Whether you are analyzing large datasets, building predictive models, or creating captivating visualizations, this book has got you covered. Don't miss out on the opportunity to enhance your data analysis skills.
Order your copy of the Python Data Analysis: Perform data collection, data processing, wrangling, visualization, and model building using Python, 3rd Edition Paperback today and join the ranks of proficient data analysts worldwide.
Domande e risposte dei clienti
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Domanda:
What topics are covered in Python Data Analysis - Third Edition?
Risposta: The book covers essential topics such as data collection techniques, data processing methodologies, data wrangling, visualization strategies, and model building using Python. It presents practical approaches and examples using libraries like Pandas, NumPy, and Matplotlib to help readers understand how to manipulate and analyze data effectively. This makes it a comprehensive resource for beginners and seasoned data analysts alike, aiding them in applying Python for real-world data challenges. -
Domanda:
Who is the target audience for this book?
Risposta: This edition is designed for data analysts, scientists, and anyone interested in learning Python for data analysis. It caters to both beginners who wish to learn foundational concepts, as well as advanced users who want to refine their skills. The step-by-step tutorials and real-life case studies enhance practical understanding, making it ideal for professionals working in data-driven environments or students pursuing a career in data science. -
Domanda:
What programming knowledge is required to understand the book?
Risposta: A basic understanding of Python is essential to fully grasp the concepts presented in this book. Although the book explains fundamental Python programming aspects, familiarity with Python syntax and core concepts will greatly aid comprehension. Readers should be comfortable with variables, loops, and functions, enabling them to engage with the data analysis techniques and practical examples effectively. -
Domanda:
How can data visualization be enhanced using this book?
Risposta: The book discusses various data visualization techniques that help transform complex data sets into intuitive graphical representations. It introduces libraries such as Matplotlib and Seaborn, providing step-by-step instructions for creating impactful visuals. By applying these techniques, users can clearly communicate insights derived from their analysis, a crucial skill in data storytelling, whether in business presentations or research reports. -
Domanda:
Is this edition suitable for beginners in data science?
Risposta: Yes, the Third Edition is very suitable for beginners. It includes clear explanations, hands-on examples, and a gradual progression of topics that help new learners build confidence in their data analysis skills. The book is structured to ensure that foundational concepts are well understood before moving on to more complex topics, making it a practical resource for anyone starting their journey in data science. -
Domanda:
What tools and libraries are emphasized in the book?
Risposta: The book emphasizes important Python libraries such as Pandas for data manipulation, NumPy for numerical data handling, and Matplotlib/Seaborn for data visualization. These libraries are integral to data analysis, and the book includes practical examples showcasing how to use these tools efficiently to solve common data problems. This hands-on approach creates a deeper understanding of how to leverage Python’s ecosystem for data projects. -
Domanda:
Can the techniques learned in this book be applied to real-world datasets?
Risposta: Absolutely! The book is filled with examples and case studies based on real-world datasets, demonstrating how the techniques can be applied in practical scenarios. Readers will learn how to tackle challenges such as data cleaning, transformation, and analysis using actual data, which prepares them for tasks they may encounter in their professional work or personal projects. -
Domanda:
What makes this edition different from previous ones?
Risposta: This edition reflects the most current trends and technologies in data analysis and Python programming. It includes updated examples, additional chapters on advanced topics, and enhanced visuals for better understanding. The author has incorporated feedback from readers of prior editions, making it more user-friendly and aligned with the latest industry practices, ensuring it meets the evolving needs of data analysts. -
Domanda:
How does the book address data cleaning and preprocessing?
Risposta: The book dedicates substantial content to data cleaning and preprocessing, which are critical steps in the data analysis process. It covers techniques such as missing value imputation, data normalization, and outlier detection. By mastering these methods, readers will learn how to prepare raw data for analysis, ensuring they can extract accurate insights, which is especially vital in fields like finance, healthcare, and market research. -
Domanda:
Where can I buy Python Data Analysis - Third Edition in Albania?
Risposta: You can purchase Python Data Analysis - Third Edition from Ubuy. They offer a seamless shopping experience and typically have this book readily available. Ubuy is known for its wide range of products, competitive pricing, and efficient customer service, making it a reliable option for all your purchasing needs.
Data Modeling & Design Editorial Review
The Python Data Analysis 3rd Edition book is meant for beginners as it is curated to be easy and simple to understand the most important concepts and tools. However, there are several negative reviews of the book that suggest it’s very basic and riddled with errors. One reviewer even says this book isn't worth a single Euro or Dollar in its current form, with blurry images and pixelated formulas making it difficult to follow some sections of the book. It appears that the book is not suitable for professional data analysts or scientists as it seems to lack the depth and quality necessary to handle complex data analysis projects.
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Vantaggi
- Easy to read and understand for beginners
- Covers important concepts and tools
Contro
- Riddled with errors
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ALL 5521
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Caratteristiche e benefici
- Learn how to use modern libraries from the Python ecosystem to create efficient data pipelines
- Perform complex data analysis and modeling, data manipulation, data cleaning, and data visualization using easy-to-follow examples
- Work on real-world examples to analyze textual and image data using natural language processing (NLP) and image analytics techniques
- Equip the skills you need to prepare data for analysis and create meaningful data visualizations
- Use Python for data analysis in business and academic fields
- Includes interactive visualizations using Matplotlib, Seaborn, and Bokeh
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