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October 10, 20250 citationsOpen Access

Mixed-precision ab initio tensor network state methods adapted for NVIDIA Blackwell technology via emulated FP64 arithmetic

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CBCharles N. BrowerSBSamuel Rodriguez BernabeuJHJeff R. Hammond

Key Points

  • Chemical accuracy was achieved using mixed-precision DMRG methods on benchmark systems involving 113 electrons in 76 orbitals.
  • Performance assessment included testing of FP64 emulation via fixed-point techniques, yielding promising outcomes for new hardware applications.
  • Systematic error analysis and comparisons were made between double- and pseudo-half-precision operations in the DMRG framework.
  • The study highlights the potential of Blackwell technology to enable new directions in materials science through advanced tensor network methods.

Abstract

We report cutting-edge performance results via mixed-precision spin adapted ab initio Density Matrix Renormalization Group (DMRG) electronic structure calculations utilizing the Ozaki scheme for emulating FP64 arithmetic through the use of fixed-point compute resources. By approximating the underlying matrix and tensor algebra with operations on a modest number of fixed-point representatives (``slices''), we demonstrate on smaller benchmark systems and for the active compounds of the FeMoco and cytochrome P450 (CYP) enzymes with complete active space (CAS) sizes of up to 113 electrons in 76 orbitals CAS(113, 76) and 63 electrons in 58 orbitals CAS(63, 58), respectively, that the chemical accuracy can be reached with mixed-precision arithmetic. We also show that, due to its variational nature, DMRG provides an ideal tool to benchmark accuracy domains, as well as the performance of new hardware developments and related numerical libraries. Detailed numerical error analysis and performance assessment are also presented for subcomponents of the DMRG algebra by systematically interpolating between double- and pseudo-half-precision. Our analyis represents the first quantum chemistry evaluation of FP64 emulation for correlated calculations capable of achieving chemical accuracy and emulation based on fixed-point arithmetic, and it paves the way for the utilization of state-of-the-art Blackwell technology in tree-like tensor network state electronic structure calculations, opening new research directions in materials sciences and beyond.

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Cite This Study

Brower et al. (2025) studied this question.

synapsesocial.com/papers/68e997abe14057276da7f22bhttps://doi.org/10.48550/arxiv.2510.04795
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