论文标题
关于药物发现应用的量子计算当前最新技术的视角
A perspective on the current state-of-the-art of quantum computing for drug discovery applications
论文作者
论文摘要
计算化学是制药行业中必不可少的工具。量子计算是一项快速发展的技术,有望通过目前不可能的计算来完全转移化学研究领域的计算能力。该观点说明了量子计算对药物问题的近乎适用性。我们简要概述并比较了最先进的量子算法的缩放特性,并提供了对涉及药物Ibrutinib的药物相关的共价蛋白质蛋白质 - 蛋白质蛋白毒络合物的逐渐更大嵌入区域的量子计算成本的新估计。进行这些计算需要我们描述的错误校正量子体系结构。我们的估计表明,关于量子算法的最新发展大大降低了在约50个轨道和电子的活动空间中运行完全量子计算所需的量子资源,从使用Trotterterisation方法的估计超过1000年到几天,只有几天,稀疏的Qubitication却具有稀疏的Qubitication,在这个新的野生场中绘制了快速而令人兴奋的进度。
Computational chemistry is an essential tool in the pharmaceutical industry. Quantum computing is a fast evolving technology that promises to completely shift the computational capabilities in many areas of chemical research by bringing into reach currently impossible calculations. This perspective illustrates the near-future applicability of quantum computation to pharmaceutical problems. We briefly summarize and compare the scaling properties of state-of-the-art quantum algorithms, and provide novel estimates of the quantum computational cost of simulating progressively larger embedding regions of a pharmaceutically relevant covalent protein-drug complex involving the drug Ibrutinib. Carrying out these calculations requires an error-corrected quantum architecture, that we describe. Our estimates showcase that recent developments on quantum algorithms have dramatically reduced the quantum resources needed to run fully quantum calculations in active spaces of around 50 orbitals and electrons, from estimated over 1000 years using the Trotterisation approach to just a few days with sparse qubitisation, painting a picture of fast and exciting progress in this nascent field.