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Prospects and challenges of quantum finance

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arxiv 2011.06492 v1 pith:6ED2CBYC submitted 2020-11-12 q-fin.CP quant-ph

classification q-fin.CPquant-ph
keywords quantumalgorithmsfinancecomputersdescribeparticularspeedupsapplications
verification ladder T0 review T1 audit T2 compute T3 formal
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Quantum computers are expected to have substantial impact on the finance industry, as they will be able to solve certain problems considerably faster than the best known classical algorithms. In this article we describe such potential applications of quantum computing to finance, starting with the state-of-the-art and focusing in particular on recent works by the QC Ware team. We consider quantum speedups for Monte Carlo methods, portfolio optimization, and machine learning. For each application we describe the extent of quantum speedup possible and estimate the quantum resources required to achieve a practical speedup. The near-term relevance of these quantum finance algorithms varies widely across applications - some of them are heuristic algorithms designed to be amenable to near-term prototype quantum computers, while others are proven speedups which require larger-scale quantum computers to implement. We also describe powerful ways to bring these speedups closer to experimental feasibility - in particular describing lower depth algorithms for Monte Carlo methods and quantum machine learning, as well as quantum annealing heuristics for portfolio optimization. This article is targeted at financial professionals and no particular background in quantum computation is assumed.

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Forward citations

Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 46 citations worldwide. Full citation record

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    quant-ph 2025-02 conditional novelty 7.0 of 10

    The dimension of the Hamiltonian algebra of Jordan-Wigner-transformed interacting fermion models grows exponentially with the number of sites, making Cartan-based fast-forwarding inefficient for the Hubbard and Anders...

  2. GPU-Accelerated Host-Aware Dead-Measurement Detection in Hybrid Quantum--Classical Programs: Full Version

    quant-ph 2026-07 conditional novelty 6.5 of 10

    Semantics-aware abstract interpretation of classical host code finds non-contributory measurements, enabling ~38% gate removal standalone and >30% after SOTA circuit optimizers, with GPU speedups via levelized SSA.

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