Vibronic Boson Sampling: Generalized Gaussian Boson Sampling for Molecular Vibronic Spectra at Finite Temperature
arXiv:1608.03731 · doi:10.1038/s41598-017-07770-z
Abstract
Molecular vibroic spectroscopy, where the transitions involve non-trivial Bosonic correlation due to the Duschinsky Rotation, is strongly believed to be in a similar complexity class as Boson Sampling. At finite temperature, the problem is represented as a Boson Sampling experiment with correlated Gaussian input states. This molecular problem with temperature effect is intimately related to the various versions of Boson Sampling sharing the similar computational complexity. Here we provide a full description to this relation in the context of Gaussian Boson Sampling. We find a hierarchical structure, which illustrates the relationship among various Boson Sampling schemes. Specifically, we show that every instance of Gaussian Boson Sampling with an initial correlation can be simulated by an instance of Gaussian Boson Sampling without initial correlation, with only a polynomial overhead. Since every Gaussian state is associated with a thermal state, our result implies that every sampling problem in molecular vibronic transitions, at any temperature, can be simulated by Gaussian Boson Sampling associated with a product of vacuum modes. We refer such a generalized Gaussian Boson Sampling motivated by the molecular sampling problem as Vibronic Boson Sampling.
References in corpus (7)
- Photonic Boson Sampling in a Tunable Circuit
- Experimental Scattershot Boson Sampling
- Scalable boson-sampling with time-bin encoding using a loop-based architecture
- What can quantum optics say about computational complexity theory?
- Quantum simulation of molecular spectroscopy in trapped-ion device
- Sampling arbitrary photon-added or photon-subtracted squeezed states is in the same complexity class as boson sampling
- Multi-Boson Correlation Sampling with Multi-mode Thermal Sources
Cited by in corpus (38)
- Quantum computational chemistry
- Quantum Chemistry in the Age of Quantum Computing
- Phase-Programmable Gaussian Boson Sampling Using Stimulated Squeezed Light
- Applications of Near-Term Photonic Quantum Computers: Software and Algorithms
- Digital quantum simulation of molecular vibrations
- Gaussian Boson Sampling for perfect matchings of arbitrary graphs
- Quantum algorithm for calculating molecular vibronic spectra
- Franck-Condon factors by counting perfect matchings of graphs with loops
- Fermion Sampling: a robust quantum computational advantage scheme using fermionic linear optics and magic input states
- Quantum Algorithm for Simulating Molecular Vibrational Excitations
- Benchmarking of Gaussian boson sampling using two-point correlators
- Approximating Vibronic Spectroscopy with Imperfect Quantum Optics
- Training Gaussian Boson Sampling Distributions
- Generalized concurrence in boson sampling
- Predicting molecular vibronic spectra using time-domain analog quantum simulation
- Information processing at the speed of light
- Non-linear Boson Sampling
- Implementing quantum algorithms on temporal photonic cluster states
- Experimental demonstration of Gaussian boson sampling with displacement
- Shortcuts to Adiabaticity Assisted by Counterdiabatic Born-Oppenheimer Dynamics
- Quantum suprematism picture of Malevich's squares triada for spin states and the parametric oscillator evolution in the probability representation of quantum mechanics
- Quantum-inspired classical algorithm for molecular vibronic spectra
- Multimode Bogoliubov transformation and Husimi's Q-function
- Quantum supremacy of the many-body fluctuations in the occupations of the excited particle states in a Bose-Einstein-condensed gas
- Simulating Vibrational Dynamics on Bosonic Quantum Devices
- Quantum Emulation of Molecular Force Fields: A Blueprint for a Superconducting Architecture
- A Quadratic Speedup in the Optimization of Noisy Quantum Optical Circuits
- Linear multiport photonic interferometers: loss analysis of temporally-encoded architectures
- Improved resource-tunable near-term quantum algorithms for transition probabilities, with applications in physics and variational quantum linear algebra
- Franck-Condon factors via compressive sensing
- Partial Distinguishability as a Coherence Resource in Boson Sampling
- Quantum Computing for Molecular Vibronic Spectra and Gaussian Boson Sampling
- Efficiently simulating the work distribution of multiple identical bosons with boson sampling
- Quantum-computing within a bosonic context: Assessing finite basis effects on prototypical vibrational Hamiltonian spectra
- Encoding strongly-correlated many-boson wavefunctions on a photonic quantum computer: application to the attractive Bose-Hubbard model
- Classical modelling of a bosonic sampler with photon collisions
- Analog quantum simulation of non-Condon effects in molecular spectroscopy
- Generalized Interference of Fermions and Bosons