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Mastering Machine Learning Algorithms - Second Edition

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  • 798pagine
  • 28 ore di lettura

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This updated and revised second edition of a bestselling guide focuses on mastering essential algorithms for tackling complex machine learning challenges. It features the latest algorithms and techniques, with code updated to Python 3.8 and TensorFlow 2.x. The book covers regression analysis, time series analysis, deep learning models, and innovative applications. It empowers readers to leverage machine learning algorithms to address today's data demands, exploring semi-supervised, reinforcement, supervised, and unsupervised learning. Utilizing modern Python libraries like NumPy and Keras, readers will learn to extract features from diverse data complexities. The content spans Bayesian models, Markov chain Monte Carlo algorithms, and Hidden Markov models, teaching feature extraction, dimensionality reduction, and model training using libraries such as scikit-learn. Practical applications of advanced techniques like maximum likelihood estimation, Hebbian learning, and ensemble learning are also included, alongside guidance on using TensorFlow 2.x for training deep neural networks. By the end, readers will be equipped to implement and solve comprehensive machine learning problems. This book is tailored for data science professionals eager to explore complex machine learning algorithms and build various models, requiring prior knowledge of Python programming.

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Mastering Machine Learning Algorithms - Second Edition, GIUSEPPE BONACCORSO

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Pubblicato
2020
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