Quantum Circuit Design Search
December 07, 2020 Β· Declared Dead Β· π Quantum Machine Intelligence
"No code URL or promise found in abstract"
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Authors
Mohammad Pirhooshyaran, Tamas Terlaky
arXiv ID
2012.04046
Category
quant-ph: Quantum Computing
Cross-listed
cs.LG
Citations
43
Venue
Quantum Machine Intelligence
Last Checked
6 months ago
Abstract
This article explores search strategies for the design of parameterized quantum circuits. We propose several optimization approaches including random search plus survival of the fittest, reinforcement learning both with classical and hybrid quantum classical controllers and Bayesian optimization as decision makers to design a quantum circuit in an automated way for a specific task such as multi-labeled classification over a dataset. We introduce nontrivial circuit architectures that are arduous to be hand-designed and efficient in terms of trainability. In addition, we introduce reuploading of initial data into quantum circuits as an option to find more general designs. We numerically show that some of the suggested architectures for the Iris dataset accomplish better results compared to the established parameterized quantum circuit designs in the literature. In addition, we investigate the trainability of these structures on the unseen dataset Glass. We report meaningful advantages over the benchmarks for the classification of the Glass dataset which supports the fact that the suggested designs are inherently more trainable.
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