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Exploratory Data Analysis with Python Cookbook: Over 50 recipes to analyze, visualize, and extract insights from structured and unstructured data
85% of respondents would recommend this to a friend
PHP 4394
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Gain practical experience in conducting EDA on a single variable of interest in Python
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What Stands Out
Product Details
| Publisher | Packt Publishing |
| Publication date | June 30, 2023 |
| Language | English |
| Print length | 382 pages |
| ISBN-10 | 1803231106 |
| ISBN-13 | 978-1803231105 |
| Item Weight | 1.44 pounds (650 grams) |
| Dimensions | 7.5 x 0.87 x 9.25 inches (19.1 x 2.2 x 23.5 cm) |
Who Should Buy?
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Data Analysts
Ideal for data analysts seeking practical recipes for effective data analysis and visualization using Python.
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Beginner Programmers
Great for beginners in programming who want to learn how to analyze data with Python step-by-step.
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Data Scientists
Useful for data scientists looking to enhance their exploratory data analysis skills with practical, real-world examples.
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Advanced Users
Not suitable for advanced users who need in-depth theoretical knowledge rather than practical recipes.
Product Description
Exploratory Data Analysis with Python Cookbook: Over 50 recipes to analyze, visualize, and extract insights from structured and unstructured data
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Data Processing Editorial Review
The "Exploratory Data Analysis with Python Cookbook" has garnered positive feedback from users, particularly from those who are new to Python and data analysis. One user highlighted that the book is easy to follow and beneficial for individuals looking to brush up on their knowledge. The structured approach and building of lessons were appreciated, enabling the reader to delve into combinations of techniques. However, there was a desire for more advanced examples and assignments to further solidify the understanding of concepts. Another user emphasized that the book served as a comprehensive introductory guide to exploratory data analysis. They found the organization of the content to be easy to follow, providing clear solutions to data-driven problems. This bolstered their confidence in engaging with EDA. They highly recommended the book due to its level of detail, readability, and understanding. Additionally, a reviewer commended the book, stating that it excels in every category and ranks among the top 2 to 3% of all data analytics books they have encountered. They specifically appreciated the use of the pyLDAvis module for visualizations, relating it to an interesting project they had previously worked on. Overall, the "Exploratory Data Analysis with Python Cookbook" is praised for its user-friendly approach, clear solutions, and comprehensiveness. **
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Pros
- Easy to follow for individuals new to Python and data analysis
- Well-structured lessons that build on one another
- Clear solutions to data-driven problems
- Boosts confidence in engaging with exploratory data analysis
- Highly detailed and readable
Cons
- Desirability for more advanced examples and assignments
Product Price History
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Features & Benefits
- Comprehensive guide to Exploratory Data Analysis using Python
- Hands-on guidance and code for analyzing and visualizing structured and unstructured data
- Suitable for data scientists, data analysts, researchers, and curious learners
- Explores popular Python libraries such as Pandas, Matplotlib, and Seaborn
- Gain comprehensive knowledge about EDA and master powerful techniques and tools
- Learn to overcome challenges of outliers and missing values during data analysis
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