9798299269604 - mastering machine learning with scikit-learn: essential techniques for data science de neudorf, dr. benjamin (5 resultados)
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Librería: PBShop.store US, Wood Dale, IL, Estados Unidos de AmericaPBShop.store US
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PAP. Condición: New. New Book. Shipped from UK. Established seller since 2000.
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Librería: California Books, Miami, FL, Estados Unidos de AmericaCalifornia Books
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Librería: Grand Eagle Retail, Bensenville, IL, Estados Unidos de AmericaGrand Eagle Retail
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Paperback. Condición: new. Paperback. Feeling overwhelmed by the idea of machine learning? Worried that coding or data science is just "too advanced" for you?You're not alone-and this book is your perfect starting point. Mastering Machine Learning with Scikit-Learn welcomes absolute beginners, guiding you gently from first steps… to real-world results, no prior experience required.A Friendly Pathway to Modern Machine LearningIf you've ever stared at lines of code and felt lost in jargon, you'll find a supportive companion here. Dr. Benjamin Neudorf draws on personal experience and a passion for teaching, transforming intimidating topics into simple, manageable lessons. You'll be gently introduced to machine learning and the powerful Scikit-Learn library, one of the most trusted tools in Python data science.What You'll Gain: Step-by-Step Confidence: Every chapter breaks big concepts into small, achievable actions, so you'll never feel stuck or left behind.Hands-On Projects: Build real machine learning models using practical examples, classic datasets, and clear explanations that demystify the process.Beginner-Friendly Explanations: No complex math or background needed-just curiosity and the willingness to learn at your own pace.Troubleshooting Support: Benefit from practical tips, quick references, and reassuring advice to help you overcome common challenges and celebrate progress.Real-World Skills: Learn how to prepare and clean data, choose and evaluate algorithms, interpret results, and build projects you'll be proud to share.Key Takeaways Include: Setting up your Python environment and installing essential tools with easeUnderstanding the core machine learning workflow: from raw data to working modelMastering data preparation, feature engineering, and encoding techniquesBuilding and tuning supervised and unsupervised models (regression, classification, clustering)Evaluating and improving your models with industry-standard metrics and best practicesExploring ethical ML, avoiding common pitfalls, and growing your data science skills step by stepWhy This Book?Mistakes are part of the journey, and every small win is worth celebrating. This book normalizes learning curves, encourages experimentation, and helps you develop the confidence to ask questions and try new things. You'll finish not just knowing "what to do," but "why" it matters, and how to keep learning beyond these pages.Ready to unlock your potential? Start your empowering coding adventure today-discover just how approachable, practical, and even fun machine learning can be. Your journey into data science begins here, with a mentor who believes in you every step of the way. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.
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Librería: CitiRetail, Stevenage, Reino UnidoCitiRetail
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Paperback. Condición: new. Paperback. Feeling overwhelmed by the idea of machine learning? Worried that coding or data science is just "too advanced" for you?You're not alone-and this book is your perfect starting point. Mastering Machine Learning with Scikit-Learn welcomes absolute beginners, guiding you gently from first steps… to real-world results, no prior experience required.A Friendly Pathway to Modern Machine LearningIf you've ever stared at lines of code and felt lost in jargon, you'll find a supportive companion here. Dr. Benjamin Neudorf draws on personal experience and a passion for teaching, transforming intimidating topics into simple, manageable lessons. You'll be gently introduced to machine learning and the powerful Scikit-Learn library, one of the most trusted tools in Python data science.What You'll Gain: Step-by-Step Confidence: Every chapter breaks big concepts into small, achievable actions, so you'll never feel stuck or left behind.Hands-On Projects: Build real machine learning models using practical examples, classic datasets, and clear explanations that demystify the process.Beginner-Friendly Explanations: No complex math or background needed-just curiosity and the willingness to learn at your own pace.Troubleshooting Support: Benefit from practical tips, quick references, and reassuring advice to help you overcome common challenges and celebrate progress.Real-World Skills: Learn how to prepare and clean data, choose and evaluate algorithms, interpret results, and build projects you'll be proud to share.Key Takeaways Include: Setting up your Python environment and installing essential tools with easeUnderstanding the core machine learning workflow: from raw data to working modelMastering data preparation, feature engineering, and encoding techniquesBuilding and tuning supervised and unsupervised models (regression, classification, clustering)Evaluating and improving your models with industry-standard metrics and best practicesExploring ethical ML, avoiding common pitfalls, and growing your data science skills step by stepWhy This Book?Mistakes are part of the journey, and every small win is worth celebrating. This book normalizes learning curves, encourages experimentation, and helps you develop the confidence to ask questions and try new things. You'll finish not just knowing "what to do," but "why" it matters, and how to keep learning beyond these pages.Ready to unlock your potential? Start your empowering coding adventure today-discover just how approachable, practical, and even fun machine learning can be. Your journey into data science begins here, with a mentor who believes in you every step of the way. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.
