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    <subfield code="a">Part I The fundamentals of machine learning. The machine learning landscape -- End-to-end machine learning project -- Classification -- Training models ; Support vector machines -- Decision trees -- Ensemble learning and random forests -- Dimensionality reduction -- Unsupervised learning techniques -- Part II Neural networks and deep learning. Introduction to artificial neural networks with Keras -- Training deep neural networks -- Custom models and training with TensorFlow -- Loading and preprocessing data with TensorFlow -- Deep computer vision using convolutional neural networks -- Processing sequences using RNNs and CNNs -- Natural language processing with RNNs and attention -- Representation learning and generative learning using autoencoders and GANs -- Reinforcement learning -- Training and deploying TensorFlow models at scale. </subfield>
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