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From the 1 of 13 linked papers with an AI index.

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13 papers

quant-ph2026

Quasi-polar Decomposition of Quantum Neural Networks via Adaptive Non-local Observables

Shih-Hao Ho, Yan Li, Huan-Hsin Tseng +3

The paper proposes a Diagonal Adaptive Non‑local Observables (DANO) framework that decomposes variational quantum circuit observables into diagonal spectra and unitary bases, treat…

quant-ph2026

Multivariate Time Series Forecasting with Adaptive Non-Local Observables

Yu-Ting Lee, Huan-Hsin Tseng, Samuel Yen-Chi Chen

Multivariate time series forecasting (MTSF) predicts future values of multiple variables from historical data. While quantum neural networks have been increasingly applied to this…

quant-ph2026

Observable Geometry for Effective Quantum Circuits

Huan-Hsin Tseng, Hsin-Yi Lin, Samuel Yen-Chi Chen +3

We study redundancy and effectiveness of Variational Quantum Circuits via algebraic and geometric views of Lie groups. Considering unitary transformations acting on Hermitian obser…

quant-ph2026

Diagonal Adaptive Non-local Observables on Quantum Neural Networks

Huan-Hsin Tseng, Yan Li, Hsin-Yi Lin +1

Adaptive Non-local Observables (ANOs) have shown that making quantum observables dynamic can substantially enlarge the function space of Variational Quantum Algorithms, partly shif…

cs.LG2026

Hybrid Quantum Temporal Convolutional Networks

Junghoon Justin Park, Maria Pak, Sebin Lee +4

Quantum machine learning models for sequential data face scalability challenges with complex multivariate signals. We introduce the Hybrid Quantum Temporal Convolutional Network (H…

quant-ph2026

Quantum Super-resolution by Adaptive Non-local Observables

Hsin-Yi Lin, Huan-Hsin Tseng, Samuel Yen-Chi Chen +1

Super-resolution (SR) seeks to reconstruct high-resolution (HR) data from low-resolution (LR) observations. Classical deep learning methods have advanced SR substantially, but requ…