PSR-NQS makes recurrent neural quantum states scalable for variational Monte Carlo by using parallel scan recurrence, reaching accurate results on 52x52 two-dimensional lattices.
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New SGS model for turbulence uses mutual information maximization tied to inter-scale equilibrium to estimate parameters without empirical prescription, matching prior values and performing comparably in box and channel flow tests.
Rotationally equivariant quantum models can rely on vulnerable invariant statistics such as ring-averaged intensities, leaving them susceptible to classical transfer attacks, but suppressing the associated symmetry sectors substantially improves robustness.
A trapped-ion quantum computer simulates 2+1D Z2 lattice gauge theory dynamics, revealing glueball excitations and multi-order string breaking.
Quantum simulation on trapped ions shows that a plaquette term in a 2+1D U(1) gauge theory enables string propagation in the plane and extended matter creation, realizing genuine two-dimensional dynamics.
A 3D array of coupled Rashba nanowires forms a helical second-order topological superconductor with gapless helical Z_{2q} parafermionic modes localized on hinges.
A layer-by-layer classical variational disentanglement algorithm compiles preparation circuits for matrix product states by minimizing bipartite entanglement to reduce bond dimensions.
Except for a few specific cases, digital-analog quantum computation is disadvantageous compared to digital quantum computation based on scaling analysis across three quantum algorithms.
Mutual information between non-contractible regions on the torus fully classifies long-range nonstabilizerness for toric-code states but leaves a finite subset undetected in the doubled-Fibonacci string-net model.
A four-plate symmetric corrugated structure suppresses quadrupole wakefields in FEL dechirpers, yielding lower projected emittance growth and 25% shorter length than planar designs per simulations.
Multi-mode bosonic limit cycle models with coherent parametric driving and O(N) symmetry admit exact quantum steady-state solutions, showing entanglement and reduced phase diffusion.
A generalized coherent-state framework computes many-body density of states in irreducible sectors, supplies rigorous ground-state energy bounds, and identifies quantum and excited-state phase transitions in the LMG model and long-range Ising chains.
A divide-and-conquer algorithm decomposes atom reconfiguration into three 1D shuttling tasks, enabling O(sqrt N) total transportation cost and reliable solutions via the Gale-Ryser theorem for arbitrary geometries.
Adaptive VQE exhibits exponential growth in iterations and circuit depth with system size, accurately predicted by classical Rényi entropy on molecules with 4-10 orbitals.
An exact positive-probability decomposition of thermal relaxation noise into Clifford gates and resets exists for T2 ≤ T1, with a negativity-free approximation that outperforms Pauli twirling for T2 > T1.
Spin-polarized photon lasing with pump-following circular polarization and extended coherence is demonstrated in a two-dimensional photonic lattice VCSEL.
Moving polymer droplets on stiffness-gradient surfaces coalesce with bridge height showing two power-law growth stages that transition from capillary to viscoelastic dominance, modulated by velocity ratio and interaction strengths.
Numerical quantum-kinetic simulations demonstrate that collisional damping alters intermediate dynamics of coexisting fast and collisional neutrino flavor instabilities yet drives all unstable cases to the identical flavor-equilibrated asymptotic state.
QRQT protects quantum teleportation's classical channel with PQC, showing quantum memory coherence as the central bottleneck that caps secure distance at 191-199 km and produces a non-monotonic joint attack probability.
The Dirac equation emerged from multiple simultaneous contributions in 1928, with Kramers' independent work and modern derivations from Ehrenfest relations and hydrodynamics now detailed.
Stochastic resetting in bounded search processes that feed queues creates a threshold rate beyond which it expands rather than shrinks steady-state convergence regions, with the threshold growing exponentially in the number of servers.
Time-resolved resonant X-ray absorption and emission spectroscopy diagnoses ultrafast heating and ionization dynamics in laser-solid interactions, with multi-scale simulations constraining plasma parameters via detailed laser and pre-plasma accounting.
A simplified free-energy model for radiation estimates the thermodynamic maximum for light-to-usable-energy conversion at approximately 74%, validated by reproducing the Shockley-Queisser limit of 33%.
VQE with EfficientSU2 and Hamiltonian Variational ansatze approximates TFIM ground states and entanglement in up to 3D lattices of 27 spins, with accuracy tied to ansatz expressivity and optimization success.
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Parallel Scan Recurrent Neural Quantum States for Scalable Variational Monte Carlo
PSR-NQS makes recurrent neural quantum states scalable for variational Monte Carlo by using parallel scan recurrence, reaching accurate results on 52x52 two-dimensional lattices.
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Information-Preserving SGS model based on the local inter-scale equilibrium hypothesis
New SGS model for turbulence uses mutual information maximization tied to inter-scale equilibrium to estimate parameters without empirical prescription, matching prior values and performing comparably in box and channel flow tests.
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Feature-level analysis and adversarial transfer in rotationally equivariant quantum machine learning
Rotationally equivariant quantum models can rely on vulnerable invariant statistics such as ring-averaged intensities, leaving them susceptible to classical transfer attacks, but suppressing the associated symmetry sectors substantially improves robustness.
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Observation of glueball excitations and string breaking in a $2+1$D $\mathbb{Z}_2$ lattice gauge theory on a trapped-ion quantum computer
A trapped-ion quantum computer simulates 2+1D Z2 lattice gauge theory dynamics, revealing glueball excitations and multi-order string breaking.
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Observation of genuine $2+1$D string dynamics in a U$(1)$ lattice gauge theory with a tunable plaquette term on a trapped-ion quantum computer
Quantum simulation on trapped ions shows that a plaquette term in a 2+1D U(1) gauge theory enables string propagation in the plane and extended matter creation, realizing genuine two-dimensional dynamics.
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$\mathbb Z_{2q}$ parafermionic hinge states in a three-dimensional array of coupled nanowires
A 3D array of coupled Rashba nanowires forms a helical second-order topological superconductor with gapless helical Z_{2q} parafermionic modes localized on hinges.
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Preparation Circuits for Matrix Product States by Classical Variational Disentanglement
A layer-by-layer classical variational disentanglement algorithm compiles preparation circuits for matrix product states by minimizing bipartite entanglement to reduce bond dimensions.
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Benchmarking Digital-Analog Quantum Computation
Except for a few specific cases, digital-analog quantum computation is disadvantageous compared to digital quantum computation based on scaling analysis across three quantum algorithms.
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Long-range nonstabilizerness of topologically encoded states from mutual information
Mutual information between non-contractible regions on the torus fully classifies long-range nonstabilizerness for toric-code states but leaves a finite subset undetected in the doubled-Fibonacci string-net model.
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Development of a quadripartite wakefield structure as dechirper for free electron laser
A four-plate symmetric corrugated structure suppresses quadrupole wakefields in FEL dechirpers, yielding lower projected emittance growth and 25% shorter length than planar designs per simulations.
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Quantum limit cycles with continuous symmetries from coherent parametric driving: exact solutions and many-body extensions
Multi-mode bosonic limit cycle models with coherent parametric driving and O(N) symmetry admit exact quantum steady-state solutions, showing entanglement and reduced phase diffusion.
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A Generalized Coherent State Framework for Many-Body Density of States
A generalized coherent-state framework computes many-body density of states in irreducible sectors, supplies rigorous ground-state energy bounds, and identifies quantum and excited-state phase transitions in the LMG model and long-range Ising chains.
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Square-root Time Atom Reconfiguration Plan for Lattice-shaped Mobile Tweezers
A divide-and-conquer algorithm decomposes atom reconfiguration into three 1D shuttling tasks, enabling O(sqrt N) total transportation cost and reliable solutions via the Gale-Ryser theorem for arbitrary geometries.
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Exponential Scaling Barriers for Variational Quantum Eigensolvers
Adaptive VQE exhibits exponential growth in iterations and circuit depth with system size, accurately predicted by classical Rényi entropy on molecules with 4-10 orbitals.
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Exact and Efficient Stabilizer Simulation of Thermal-Relaxation Noise for Quantum Error Correction
An exact positive-probability decomposition of thermal relaxation noise into Clifford gates and resets exists for T2 ≤ T1, with a negativity-free approximation that outperforms Pauli twirling for T2 > T1.
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Spin-polarized lasing in a photonic lattice
Spin-polarized photon lasing with pump-following circular polarization and extended coherence is demonstrated in a two-dimensional photonic lattice VCSEL.
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Coalescence of Polymer Droplets Moving on a Surface with Stiffness Gradient
Moving polymer droplets on stiffness-gradient surfaces coalesce with bridge height showing two power-law growth stages that transition from capillary to viscoelastic dominance, modulated by velocity ratio and interaction strengths.
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Dynamic Competition of Fast and Collisional Neutrino Flavor Instabilities with Collisional Damping in Spatially Inhomogeneous Systems
Numerical quantum-kinetic simulations demonstrate that collisional damping alters intermediate dynamics of coexisting fast and collisional neutrino flavor instabilities yet drives all unstable cases to the identical flavor-equilibrated asymptotic state.
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Quantum-Resistant Quantum Teleportation
QRQT protects quantum teleportation's classical channel with PQC, showing quantum memory coherence as the central bottleneck that caps secure distance at 191-199 km and produces a non-monotonic joint attack probability.
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The Birth of Quantum Mechanics and the Dirac Equation
The Dirac equation emerged from multiple simultaneous contributions in 1928, with Kramers' independent work and modern derivations from Ehrenfest relations and hydrodynamics now detailed.
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Resetting-induced instability in queues fed by a search process in an interval
Stochastic resetting in bounded search processes that feed queues creates a threshold rate beyond which it expands rather than shrinks steady-state convergence regions, with the threshold growing exponentially in the number of servers.
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Probing ultrafast heating and ionization dynamics in solid density plasmas with time-resolved resonant X-ray absorption and emission
Time-resolved resonant X-ray absorption and emission spectroscopy diagnoses ultrafast heating and ionization dynamics in laser-solid interactions, with multi-scale simulations constraining plasma parameters via detailed laser and pre-plasma accounting.
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Spontaneous Emission, Free Energy, and Relaxation-Limited Processes in Setting Limits on Solar Energy Conversion Efficiency
A simplified free-energy model for radiation estimates the thermodynamic maximum for light-to-usable-energy conversion at approximately 74%, validated by reproducing the Shockley-Queisser limit of 33%.
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Ans\"atz Expressivity and Optimization in Variational Quantum Simulations of Transverse-field Ising Model Across System Sizes
VQE with EfficientSU2 and Hamiltonian Variational ansatze approximates TFIM ground states and entanglement in up to 3D lattices of 27 spins, with accuracy tied to ansatz expressivity and optimization success.
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Towards better nuclear charge radii
An effort is described to produce more precise and transparent recommended values for nuclear charge radii through integrated experimental and theoretical approaches.