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|a UAMI
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|a Saleh, Hyatt.
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|a Machine Learning Workshop - Second Edition /
|c Hyatt Saleh.
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| 260 |
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|a [Place of publication not identified]
|b Packt Publishing,
|c 2020.
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| 300 |
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|a 1 online resource (286 pages)
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|a text
|b txt
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|a Made available through: Safari, an O'Reilly Media Company.
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|a Online resource; Title from title page (viewed July 22, 2020)
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|a Take a comprehensive and step-by-step approach to understanding machine learning Key Features Discover how to apply the scikit-learn uniform API in all types of machine learning models Understand the difference between supervised and unsupervised learning models Reinforce your understanding of machine learning concepts by working on real-world examples Book Description Machine learning algorithms are an integral part of almost all modern applications. To make the learning process faster and more accurate, you need a tool flexible and powerful enough to help you build machine learning algorithms quickly and easily. With The Machine Learning Workshop, you'll master the scikit-learn library and become proficient in developing clever machine learning algorithms. The Machine Learning Workshop begins by demonstrating how unsupervised and supervised learning algorithms work by analyzing a real-world dataset of wholesale customers. Once you've got to grips with the basics, you'll develop an artificial neural network using scikit-learn and then improve its performance by fine-tuning hyperparameters. Towards the end of the workshop, you'll study the dataset of a bank's marketing activities and build machine learning models that can list clients who are likely to subscribe to a term deposit. You'll also learn how to compare these models and select the optimal one. By the end of The Machine Learning Workshop, you'll not only have learned the difference between supervised and unsupervised models and their applications in the real world, but you'll also have developed the skills required to get started with programming your very own machine learning algorithms. What you will learn Understand how to select an algorithm that best fits your dataset and desired outcome Explore popular real-world algorithms such as K-means, Mean-Shift, and DBSCAN Discover different approaches to solve machine learning classification problems Develop neural network structures using the scikit-learn package Use the NN algorithm to create models for predicting future outcomes Perform error analysis to improve your model's performance Who this book is for The Machine Learning Workshop is perfect for machine learning beginners. You will need Python programming experience, though no prior knowledge of scikit-learn and machine learning is necessary.
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|f Copyright © 2020 Packt Publishing
|g 2020
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|a O'Reilly
|b O'Reilly Online Learning: Academic/Public Library Edition
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| 650 |
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|a Artificial intelligence.
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| 650 |
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|a Machine learning.
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| 650 |
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|a Neural networks (Computer science)
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| 650 |
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|a Intelligence artificielle.
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| 650 |
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|a Apprentissage automatique.
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| 650 |
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|a Réseaux neuronaux (Informatique)
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| 650 |
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7 |
|a artificial intelligence.
|2 aat
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| 650 |
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7 |
|a Neural networks (Computer science)
|2 fast
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| 650 |
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7 |
|a Artificial intelligence
|2 fast
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| 650 |
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7 |
|a Machine learning
|2 fast
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| 650 |
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7 |
|a Python (Computer program language)
|2 fast
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| 710 |
2 |
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|a Safari, an O'Reilly Media Company.
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| 856 |
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|u https://learning.oreilly.com/library/view/~/9781839219061/?ar
|z Texto completo (Requiere registro previo con correo institucional)
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| 880 |
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|6 773-00/(N
|t Online access: Ођ́ةReilly Media, Inc. O'Reilly Online Learning Platform: Academic edition (EZproxy Access)
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