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Packt Publishing
Debugging Machine Learning Models with Python: Develop high-performance, low-bias, and explainable machine learning and deep learning models
Debugging Machine Learning Models with Python: Develop high-performance, low-bias, and explainable machine learning and deep learning models
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$41.99 USD
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$41.99 USD
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Master reproducible ML and DL models with Python and PyTorch to achieve high performance, explainability, and real-world success
Key Features- Learn how to improve performance of your models and eliminate model biases
- Strategically design your machine learning systems to minimize chances of failure in production
- Discover advanced techniques to solve real-world challenges
- Purchase of the print or Kindle book includes a free PDF eBook
- Enhance data quality and eliminate data flaws
- Effectively assess and improve the performance of your models
- Develop and optimize deep learning models with PyTorch
- Mitigate biases to ensure fairness
- Understand explainability techniques to improve model qualities
- Use test-driven modeling for data processing and modeling improvement
- Explore techniques to bring reliable models to production
- Discover the benefits of causal and human-in-the-loop modeling
This book is for data scientists, analysts, machine learning engineers, Python developers, and students looking to build reliable, high-performance, and explainable machine learning models for production across diverse industrial applications. Fundamental Python skills are all you need to dive into the concepts and practical examples covered. Whether you're new to machine learning or an experienced practitioner, this book offers a breadth of knowledge and practical insights to elevate your modeling skills.
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