Machine Learning with Quantum Computers

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Machine Learning with Quantum Computers

Mathematics Quantum physics (quantum mechanics and quantum field theory) Mathematical theory of computation Machine learning

Authors: Maria Schuld, Francesco Petruccione

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Collection: Quantum Science and Technology

Language: English

Published by: Springer

Published on: 17th October 2021

Format: LCP-protected ePub

Size: 23 Mb

ISBN: 9783030830984


Introduction to Quantum Machine Learning

This book offers an introduction into quantum machine learning research, covering approaches that range from "near-term" to fault-tolerant quantum machine learning algorithms, and from theoretical to practical techniques that help us understand how quantum computers can learn from data. Among the topics discussed are parameterized quantum circuits, hybrid optimization, data encoding, quantum feature maps and kernel methods, quantum learning theory, as well as quantum neural networks. The book aims at an audience of computer scientists and physicists at the graduate level onwards.

Second Edition Highlights

The second edition extends the material beyond supervised learning and puts a special focus on the developments in near-term quantum machine learning seen over the past few years.

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