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Quantum computing model of an artificial neuron with continuously valued input data
by
Mangini, Stefano
, Tacchino, Francesco
, Gerace, Dario
, Macchiavello, Chiara
, Bajoni, Daniele
in
quantum algorithms on near term processors
/ quantum artificial neurons
/ quantum classifiers
/ quantum machine learning
2020
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Quantum computing model of an artificial neuron with continuously valued input data
by
Mangini, Stefano
, Tacchino, Francesco
, Gerace, Dario
, Macchiavello, Chiara
, Bajoni, Daniele
in
quantum algorithms on near term processors
/ quantum artificial neurons
/ quantum classifiers
/ quantum machine learning
2020
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Do you wish to request the book?
Quantum computing model of an artificial neuron with continuously valued input data
by
Mangini, Stefano
, Tacchino, Francesco
, Gerace, Dario
, Macchiavello, Chiara
, Bajoni, Daniele
in
quantum algorithms on near term processors
/ quantum artificial neurons
/ quantum classifiers
/ quantum machine learning
2020
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Quantum computing model of an artificial neuron with continuously valued input data
Journal Article
Quantum computing model of an artificial neuron with continuously valued input data
2020
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Overview
Artificial neural networks have been proposed as potential algorithms that could benefit from being implemented and run on quantum computers. In particular, they hold promise to greatly enhance Artificial Intelligence tasks, such as image elaboration or pattern recognition. The elementary building block of a neural network is an artificial neuron, i.e. a computational unit performing simple mathematical operations on a set of data in the form of an input vector. Here we show how the design for the implementation of a previously introduced quantum artificial neuron [npj Quant. Inf. 5, 26], which fully exploits the use of superposition states to encode binary valued input data, can be further generalized to accept continuous- instead of discrete-valued input vectors, without increasing the number of qubits. This further step is crucial to allow for a direct application of gradient descent based learning procedures, which would not be compatible with binary-valued data encoding.
Publisher
IOP Publishing
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