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Interpretable Machine Learning with Python: Learn to build interpretable high-performance models with hands-on real-world examples
Learn how to extract easy-to-understand insights from any machine learning model and leverage interpretability techniques to build fairer, safer, and more reliable models
Interpretable Machine Learning with Python: Learn to build interpretable high-performance models with hands-on real-world examples
Artigo n.º: 34543051

Interpretable Machine Learning with Python: Learn to build interpretable high-performance models with hands-on real-world examples

Artigo n.º: 34543051

STD 1893695

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Learn how to extract easy-to-understand insights from any machine learning model and leverage interpretability techniques to build fairer, safer, and more reliable models
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O que se Destaca

Hands-On Learning
Engage with practical examples that enhance understanding of interpretable machine learning, bridging theory and real-world applications effectively.
High Performance Models
Master the techniques for building high-performance machine learning models while ensuring interpretability, catering to both developers and data scientists.
Comprehensive Guide
This first edition provides a thorough exploration of machine learning concepts, making it accessible for both beginners and experienced practitioners seeking to deepen their knowledge.

Detalhes do produto

Shop Interpretable Machine Learning with Python: Learn to build interpretable high-performance models with hands-on real-world examples online at a best price in São Tomé and Príncipe. 180020390X
  • Comprehensive hands-on guide to machine learning interpretability with real-world examples
  • Covers fundamentals and challenges in interpretation for designing systems with fairness, accountability, and transparency
  • Addresses topics like White Box and Glass Box Models, Feature Importance, Bias Mitigation Methods, and more
  • Goes beyond transparency to cover fairness and accountability, often ignored by other books in the field
  • Authored by an experienced developer with 15 years of development experience and insight into the importance of model trust and reliability
  • Aims to help readers understand that interpretability is essential for predictive and prescriptive analytics beyond just optimizing predictive performance
Publisher Packt Publishing
Publication date March 26, 2021
Language English
Print length 736 pages
ISBN-10 180020390X
ISBN-13 978-1800203907
Item Weight 2.74 pounds (1.24 kg)
Dimensions 7.5 x 1.66 x 9.25 inches (19.1 x 4.2 x 23.5 cm)

Quem Deverá Comprar?

Suitable For
  • Data Scientists

    Ideal for data scientists seeking to enhance model interpretability while maintaining high performance in their analyses.

  • Machine Learning Practitioners

    Perfect for ML practitioners looking to implement interpretable models in real-world scenarios with practical examples.

  • Academic Researchers

    Beneficial for researchers in academia focused on making machine learning outputs more interpretable for scholarly work.

Not Suitable For
  • Beginners in Programming

    Not suitable for individuals without a programming background, as prior knowledge in Python is necessary for effective learning.

DESCRIÇÃO DO PRODUTO

Interpretable Machine Learning with Python: Learn to build interpretable high-performance models with hands-on real-world examples

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Perguntas e respostas do cliente

  • Pergunta: What is 'Interpretable Machine Learning with Python' about?

    Resposta: Interpretable Machine Learning with Python focuses on building machine learning models that not only provide high performance but also allow for understanding and interpreting their predictions. This book emphasizes practical approaches to make complex models transparent, supporting both theoretical insights and hands-on applications. By utilizing real-world examples, readers learn to apply interpretable methods that enable stakeholders, including data scientists and business users, to trust and understand the decisions made by their models.
  • Pergunta: Who is the target audience for this book?

    Resposta: This book is intended for a broad audience, including data scientists, machine learning practitioners, graduate students in data science or statistics, and business analysts interested in implementing machine learning solutions. It serves both beginners looking to understand interpretability in models and experienced professionals aiming to enhance their skill set in creating explainable AI systems. The step-by-step guides and practical real-world examples make it accessible for anyone willing to dive into machine learning.
  • Pergunta: What topics does the book cover related to model interpretability?

    Resposta: The book covers a range of topics related to model interpretability, including key concepts such as feature importance, partial dependence plots, and Shapley values. It explores various models like decision trees, linear models, and ensemble methods, providing readers with techniques to understand how each model behaves under different conditions. Furthermore, the book offers hands-on tutorials using popular Python libraries, making it practical for readers to implement learnings in their own projects.
  • Pergunta: Are there any prerequisites to understand the content of this book?

    Resposta: While the book is designed to be accessible, having a basic understanding of Python programming and fundamental machine learning concepts will greatly enhance the learning experience. Familiarity with libraries like Pandas, NumPy, and Matplotlib can also be beneficial for following along with the hands-on examples. For those new to machine learning, the introductory sections will bridge the gap, ensuring that all readers can grasp the crucial ideas related to interpretability.
  • Pergunta: Can beginners in machine learning benefit from this book?

    Resposta: Yes, beginners can definitely benefit from 'Interpretable Machine Learning with Python.' The book starts with fundamental concepts and gradually progresses towards more complex topics, making it suitable for readers who are just starting out. The hands-on real-world examples provided throughout the chapters enable beginners to practice and apply what they learn, thereby reinforcing their understanding of both machine learning and interpretability principles.
  • Pergunta: What are the practical applications of interpretability in machine learning?

    Resposta: Interpretability in machine learning is essential for various applications, particularly in high-stakes fields like healthcare, finance, and legal systems. It helps practitioners and stakeholders comprehend the reasoning behind model predictions, ensuring accountability and compliance with regulations. For example, in healthcare, interpretable models can provide insights into why a diagnosis is recommended. In finance, understanding credit scoring models can help mitigate bias and enhance transparency in lending decisions.
  • Pergunta: What programming language and libraries are used in this book?

    Resposta: The book primarily utilizes Python as the programming language, making it approachable for many in the data science community. It leverages popular libraries such as scikit-learn for machine learning, Matplotlib and Seaborn for data visualization, and LIME and SHAP for model interpretability. These tools are widely used in the industry, so learning to use them in the context of this book can significantly enhance your data science skill set and applicability in real-world projects.
  • Pergunta: How does the book approach hands-on learning?

    Resposta: The book employs a hands-on learning approach by integrating practical exercises and real-world examples that demonstrate how to apply the concepts introduced in each chapter. Readers are guided through step-by-step tutorials that showcase the building, training, and interpreting of machine learning models. This experiential learning method ensures that readers not only understand theoretical aspects but can also implement interpretable models in their professional work or personal projects.
  • Pergunta: Is it possible to find support or community for readers of this book?

    Resposta: Yes, readers of 'Interpretable Machine Learning with Python' can find support through various online communities and forums such as Stack Overflow and GitHub discussions related to the book. Many learners share their experiences and solutions to problems they encounter while implementing the techniques discussed in the book. Engaging with these communities can provide additional insights and learning opportunities from fellow practitioners and experts in the field.
  • Pergunta: Where can I buy 'Interpretable Machine Learning with Python'?

    Resposta: You can purchase 'Interpretable Machine Learning with Python' from Ubuy in São Tomé and Príncipe, a reliable e-commerce platform. Ubuy offers a vast selection of books and ensures a smooth shopping experience. By choosing Ubuy, you can easily access the book along with prompts for recommendations, customer reviews, and fast delivery options tailored for your region, making it convenient to enhance your machine learning knowledge.

Expert Systems Editorial Review

"Interpretable Machine Learning with Python" is a highly recommended resource for anyone looking to understand and build interpretable machine learning models. The book covers a thorough introduction to ML evaluation metrics and bias in ML. It provides examples and python code on how to build and interpret metrics. The book is technical but also goes through the ideas behind the examples and covers post-hoc methods to explain machine learning techniques. The book is lengthy but is well explained for beginners while also providing enough gold nuggets of information spread throughout the book for more intermediates and advanced learners. The book provides abundant examples and a comprehensive reference for tackling interpretable machine learning. Recommended to get the ebook.

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Prós

  • Thorough introduction to ML evaluation metrics
  • Covers the elements to interpret metrics
  • Examples and python code provided
  • Covers post-hoc methods to explain machine learning techniques
  • Comprehensive reference for tackling interpretable machine learning
  • Abundant examples

Contras

  • Proofreading should be improved to correct typos

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