An exponentially-growing family of universal quantum circuits
December 01, 2022 Β· Declared Dead Β· π Machine Learning: Science and Technology
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Authors
Mo Kordzanganeh, Pavel Sekatski, Leonid Fedichkin, Alexey Melnikov
arXiv ID
2212.00736
Category
quant-ph: Quantum Computing
Cross-listed
cs.LG
Citations
24
Venue
Machine Learning: Science and Technology
Last Checked
4 months ago
Abstract
Quantum machine learning has become an area of growing interest but has certain theoretical and hardware-specific limitations. Notably, the problem of vanishing gradients, or barren plateaus, renders the training impossible for circuits with high qubit counts, imposing a limit on the number of qubits that data scientists can use for solving problems. Independently, angle-embedded supervised quantum neural networks were shown to produce truncated Fourier series with a degree directly dependent on two factors: the depth of the encoding and the number of parallel qubits the encoding applied to. The degree of the Fourier series limits the model expressivity. This work introduces two new architectures whose Fourier degrees grow exponentially: the sequential and parallel exponential quantum machine learning architectures. This is done by efficiently using the available Hilbert space when encoding, increasing the expressivity of the quantum encoding. Therefore, the exponential growth allows staying at the low-qubit limit to create highly expressive circuits avoiding barren plateaus. Practically, parallel exponential architecture was shown to outperform the existing linear architectures by reducing their final mean square error value by up to 44.7% in a one-dimensional test problem. Furthermore, the feasibility of this technique was also shown on a trapped ion quantum processing unit.
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