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Every day we interact with machine learning systems offering individualized predictions for our entertainment, social connections, purchases, or health. These involve several modalities of data, from sequences of clicks to text, images, and social interactions. This book introduces common principles and methods that underpin the design of personalized predictive models for a variety of settings and modalities. The book begins by revising 'traditional' machine learning models, focusing on adapting them to settings involving user data, then presents techniques based on advanced principles such as matrix factorization, deep learning, and generative modeling, and concludes with a detailed study of the consequences and risks of deploying personalized predictive systems. A series of case studies in domains ranging from e-commerce to health plus hands-on projects and code examples will give readers understanding and experience with large-scale real-world datasets and the ability to design models and systems for a wide range of applications.
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Computer science, Computers, Computers and information processing, Algorithms, Machine learning.
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The topic of the conference is natural language processing, which can be found in the FOI list It is a branch of artificial intelligence that deals with training a computer to understand, process, and generate language.
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Applying machine learning to the computer aided design of chips and systems.
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Machine learning --- Machine learning. --- Learning, Machine --- Artificial intelligence --- Machine theory
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