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Publications

Accurate many-body electronic structure near the basis set limit: Application to the chromium dimer

Cornell Affiliated Author(s)
Author
J. Li
Y. Yao
A.A. Holmes
M. Otten
Q. Sun
S. Sharma
C.J. Umrigar
Abstract

We describe a method for computing near-exact energies for correlated systems with large Hilbert spaces. The method efficiently identifies the most important basis states (Slater determinants) and performs a variational calculation in the subspace spanned by these determinants. A semistochastic approach is then used to add a perturbative correction to the variational energy to compute the total energy. The size of the variational space is progressively increased until the total energy converges to within the desired tolerance.

Journal
Physical Review Research
Date Published
Funding Source
1445606
1534965
1800584
Group (Lab)
Cyrus Umrigar Group

The electronic complexity of the ground-state of the FeMo cofactor of nitrogenase as relevant to quantum simulations

Cornell Affiliated Author(s)
Author
Zhendong Li
Junhao Li
Nikesh Dattani
C. Umrigar
Garnet Chan
Abstract

We report that a recent active space model of the nitrogenase FeMo cofactor, proposed in the context of simulations on quantum computers, is not representative of the electronic structure of the FeMo cofactor ground-state. A more representative model does not affect much certain resource estimates for a quantum computer such as the cost of a Trotter step, while strongly affecting others such as the cost of adiabatic state preparation.

Journal
Journal of Chemical Physics
Date Published
Funding Source
1665333
ACI-1445606
Group (Lab)
Cyrus Umrigar Group

Fast semistochastic heat-bath configuration interaction

Cornell Affiliated Author(s)
Author
Junhao Li
Matthew Otten
Adam Holmes
Sandeep Sharma
C. Umrigar
Abstract

This paper presents in detail our fast semistochastic heat-bath configuration interaction (SHCI) method for solving the many-body Schrödinger equation. We identify and eliminate computational bottlenecks in both the variational and perturbative steps of the SHCI algorithm. We also describe the parallelization and the key data structures in our implementation, such as the distributed hash table.

Journal
Journal of Chemical Physics
Date Published
Funding Source
1445606
1534965
1800584
ACI-1445606
Group (Lab)
Cyrus Umrigar Group

Excited States of Methylene, Polyenes, and Ozone from Heat-Bath Configuration Interaction

Cornell Affiliated Author(s)
Author
Alan Chien
Adam Holmes
Matthew Otten
C. Umrigar
Sandeep Sharma
Paul Zimmerman
Abstract

The electronically excited states of methylene (CH2), ethylene (C2H4), butadiene (C4H6), hexatriene (C6H8), and ozone (O3) have long proven challenging due to their complex mixtures of static and dynamic correlations. The semistochastic heat-bath configuration interaction (SHCI) algorithm, which efficiently and systematically approaches the full configuration interaction (FCI) limit, is used to provide close approximations to the FCI energies in these systems.

Journal
Journal of Physical Chemistry A
Date Published
Funding Source
ACI-1445606
ACI-1534965
Group (Lab)
Cyrus Umrigar Group

Time-Dependent Linear-Response Variational Monte Carlo

Cornell Affiliated Author(s)
Author
Bastien Mussard
Emanuele Coccia
Roland Assaraf
Matthew Otten
Cyrus Umrigar
Julien Toulouse
Abstract

We present the extension of variational Monte Carlo (VMC) to the calculation of electronic excitation energies and oscillator strengths using time-dependent linear-response theory. By exploiting the analogy existing between the linear method for wave function optimization and the generalized eigenvalue equation of linear-response theory, we formulate the equations of linear-response VMC (LR-VMC). This LR-VMC approach involves the first- and second-order derivatives of the wave function with respect to the parameters.

Journal
Advances in Quantum Chemistry
Date Published
Funding Source
1534965
Group (Lab)
Cyrus Umrigar Group

Excited states using semistochastic heat-bath configuration interaction

Cornell Affiliated Author(s)
Author
Adam Holmes
C. Umrigar
Sandeep Sharma
Abstract

We extend our recently developed heat-bath configuration interaction (HCI) algorithm, and our semistochastic algorithm for performing multireference perturbation theory, to calculate excited-state wavefunctions and energies. We employ time-reversal symmetry, which reduces the memory requirements by more than a factor of two. An extrapolation technique is introduced to reliably extrapolate HCI energies to the full CI limit.

Journal
Journal of Chemical Physics
Date Published
Funding Source
1534965
Group (Lab)
Cyrus Umrigar Group

Semistochastic Heat-Bath Configuration Interaction Method: Selected Configuration Interaction with Semistochastic Perturbation Theory

Cornell Affiliated Author(s)
Author
Sandeep Sharma
Adam Holmes
Guillaume Jeanmairet
Ali Alavi
C. Umrigar
Abstract

We extend the recently proposed heat-bath configuration interaction (HCI) method [Holmes, Tubman, Umrigar, J. Chem. Theory Comput. 2016, 12, 3674], by introducing a semistochastic algorithm for performing multireference Epstein-Nesbet perturbation theory, in order to completely eliminate the severe memory bottleneck of the original method. The proposed algorithm has several attractive features. First, there is no sign problem that plagues several quantum Monte Carlo methods.

Journal
Journal of Chemical Theory and Computation
Date Published
Funding Source
1534965
ACI-1534965
Group (Lab)
Cyrus Umrigar Group

Heat-Bath Configuration Interaction: An Efficient Selected Configuration Interaction Algorithm Inspired by Heat-Bath Sampling

Cornell Affiliated Author(s)
Author
Adam Holmes
Norm Tubman
C. Umrigar
Abstract

We introduce a new selected configuration interaction plus perturbation theory algorithm that is based on a deterministic analog of our recent efficient heat-bath sampling algorithm. This Heat-bath Configuration Interaction (HCI) algorithm makes use of two parameters that control the trade-off between speed and accuracy, one which controls the selection of determinants to add to a variational wave function and one which controls the selection of determinants used to compute the perturbative correction to the variational energy.

Journal
Journal of Chemical Theory and Computation
Date Published
Funding Source
1534965
Group (Lab)
Cyrus Umrigar Group

Efficient Heat-Bath Sampling in Fock Space

Cornell Affiliated Author(s)
Author
A.A. Holmes
Hitesh Changlani
C.J. Umrigar
Abstract

We introduce an algorithm for sampling many-body quantum states in Fock space. The algorithm efficiently samples states with probability approximately proportional to an arbitrary function of the second-quantized Hamiltonian matrix element connecting the sampled state to the current state. We apply the new sampling algorithm to the recently developed semistochastic full configuration interaction quantum Monte Carlo (S-FCIQMC) method, a semistochastic implementation of the power method for projecting out the ground state energy in a basis of Slater determinants.

Journal
Journal of Chemical Theory and Computation
Date Published
Funding Source
ACI-1534965
CHE-1112097
DE-FG02-12ER46875
DOE DE-SC0006650
Group (Lab)
Cyrus Umrigar Group

Introduction to the Variational and Diffusion Monte Carlo Methods

Cornell Affiliated Author(s)
Author
Julien Toulouse
Roland Assaraf
Cyrus Umrigar
Abstract

We provide a pedagogical introduction to the two main variants of real-space quantum Monte Carlo methods for electronic structure calculations: variational Monte Carlo (VMC) and diffusion Monte Carlo (DMC). Assuming no prior knowledge on the subject, we review in depth the Metropolis-Hastings algorithm used in VMC for sampling the square of an approximate wave function, discussing details important for applications to electronic systems.

Journal
Advances in Quantum Chemistry
Date Published
Funding Source
CHE-1112097
DOE-CMCSN
DE-SC0006650
Group (Lab)
Cyrus Umrigar Group