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Python for Marketing Research and Analytics 1st ed. 2020 Edition
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This book provides an introduction to quantitative marketing with Python.
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What Stands Out
Product Details
- Introduction to quantitative marketing with Python
- Hands-on approach to using Python for real marketing questions
- All analyses presented in Colab notebooks for reproducible research
- Code notebooks for each chapter can be copied, adapted, and reused
- Introduction to machine learning predictive models using sklearn
- Suitable for experienced marketing researchers, analysts/students who already program in Python, and marketing students with little programming background
| Publisher | Springer |
| Publication date | November 3, 2020 |
| Edition | 1st ed. 2020 |
| Language | English |
| Print length | 283 pages |
| ISBN-10 | 3030497194 |
| ISBN-13 | 978-3030497194 |
| Item Weight | 2.1 pounds (950 grams) |
| Dimensions | 8.27 x 0.77 x 10.98 inches (21 x 2 x 27.9 cm) |
Who Should Buy?
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Market Researchers
Ideal for market researchers looking to leverage Python for data analysis and insights in their projects.
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Students in Marketing
Students pursuing marketing courses will gain practical skills in analytics using Python for their future careers.
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Data Analysts
Data analysts focused on marketing will benefit from tools and techniques specific to analytics using Python.
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Beginners in Coding
Complete beginners might find the material too advanced without prior programming knowledge or experience.
Product Description
Python for Marketing Research and Analytics 1st ed. 2020 Edition
Product Buying Guide
This buying guide provides information about the Python for Marketing Research and Analytics book. It is designed to help potential buyers understand the specifications, key features, usage scenarios, competitor comparison, user reviews, price analysis, and buying considerations for this product.
Product Specifications
- Title: Python for Marketing Research and Analytics 1st ed. 2020 Edition
- Introductory book on quantitative marketing using Python
- Hands-on approach to using Python for real marketing questions
- Code notebooks provided for each chapter
- Integration of code, figures, tables, and annotation in Colab notebooks
- Introduction to machine learning predictive models using sklearn
- Designed for experienced marketing researchers, analysts or students, and marketing students with no programming background
- Presumes only introductory level familiarity with formal statistics
- Minimum mathematics required
Key Features
- Hands-on guidance for using Python in marketing research
- Reproducible research with code notebooks
- Introduction to machine learning in marketing research
- Suitable for both experienced researchers and beginners
- No advanced mathematics required
Usage Scenarios
- Experienced marketing researchers looking to learn Python
- Analysts or students already familiar with Python, interested in marketing applications
- Undergraduate or graduate marketing students with no programming background
Usage Scenarios
- Competitor 1
- Competitor 2
- Competitor 3
Some User Review
- I found this book extremely helpful in starting my journey with Python in marketing research. The code notebooks provided in each chapter made it easy to follow along and apply the techniques to my own projects.
- As an analyst already familiar with Python, I was looking for a resource specifically focused on marketing applications. This book delivered exactly what I needed and expanded my knowledge in the field.
- The author explains complex concepts in a way that is easy to understand, even for someone with no programming background like me. I highly recommend this book to marketing students looking to explore Python.
Competitors
- The price of this book is competitive compared to similar books in the market. Considering the valuable content and the potential for career growth, it is a worthwhile investment for those interested in using Python in marketing research and analytics.
Buying Considerations
- Consider your level of programming experience: This book is suitable for both beginners and those with some programming knowledge, but it is important to assess your own comfort level with Python.
- Evaluate your specific needs: If you are primarily interested in statistical analysis, you may find other resources more suitable. However, if you want to specifically apply Python in marketing research, this book is a great choice.
- Think about long-term value: Investing in this book can provide long-term benefits as Python is widely used in the marketing industry. It can enhance your skillset and make you a more competitive professional.
- Check for online resources: The book provides code notebooks, but it can be helpful to explore additional online tutorials and examples to reinforce your learning.
Conclusion
The Python for Marketing Research and Analytics book is a valuable resource for anyone looking to apply Python in the field of marketing. Its hands-on approach, code notebooks, and focus on real marketing questions make it stand out. Whether you are an experienced researcher or a beginner, this book can help expand your skillset and open up new opportunities in marketing research and analytics.
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Statistics Editorial Review
Python for Marketing Research and Analytics 1st ed. 2020 Edition is a comprehensive and practical book that can help marketers and data analysts to analyze and interpret different types of data. With an easy-to-read and engaging style, it serves as an exceptional precursor to getting a python certification as it leads you through the basics such as installation and interface to get you up and running right away. Even those who are unfamiliar with Python can easily adapt their knowledge of R and other languages to coding in Python with this book. The book can also act as a reference for those who want to refresh their memory on working with a specific type of data or analysis. It contains several chapters which teach advanced marketing analytics, including means comparisons, linear and logistic regression, multidimensional scaling and perceptual mapping, and factor and cluster analyses among others. This title is perfect for learning how to use Python for marketing research and analytics, whether as a standalone text or as a companion to the R for Marketing Research and Analytics book by Chapman and Feit. The first 7 chapters of this book are similar in content to the R book, with even the simulated data being the same as the R book. Overall, Python for Marketing Research and Analytics 1st ed. 2020 Edition is a valuable resource for anyone looking to improve their data analysis skills using Python.
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Pros
- Easy-to-read and practical style
- Serves as a precursor to getting a python certification
- Can be used as a reference for specific types of data or analysis
- Contains several chapters of advanced marketing analytics
- Can be used as a standalone text or as a companion to the R for Marketing Research and Analytics book
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Features & Benefits
- Hands-on approach to using Python for real marketing questions
- Uses Colab notebooks for reproducible research
- Code notebooks can be copied, adapted, and reused
- Introduces machine learning predictive models using sklearn package
- Designed for experienced marketing researchers, analysts/students who already program in Python, and marketing students with little programming background
- Presumes only introductory level of familiarity with formal statistics
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