Simulations of high-energy particle collisions, such as those used at the Large Hadron Collider, are based on quantum field theory; however, many approximations are made in practice. For example, the simulation of the parton shower, which gives rise to objects called `jets', is based on a semi-classical approximation that neglects various interference effects. While there is a desire to incorporate interference effects, new computational techniques are needed to cope with the exponential growth in complexity associated to quantum processes. We present a classical algorithm called the quantum trellis to efficiently compute the un-normalized probability density over N-body phase space including all interference effects, and we pair this with an MCMC-based sampling strategy. This provides a potential path forward for classical computers and a strong baseline for approaches based on quantum computing.
翻译:高能粒子碰撞的模拟,如大型强子对撞机所使用的模拟,是以量子场理论为依据的;然而,实际中却有许多近似值,例如,产生称为“jets”物体的parton淋浴模拟,以半古典近似值为基础,忽略了各种干扰效应。虽然人们希望纳入干扰效应,但需要新的计算技术来应付量子过程复杂程度的指数增长。我们提出了一个称为量子电流的经典算法,以有效计算N-体相空间上非正常概率密度,包括所有干扰效应,我们将此与以MCMCC为基础的取样战略配对,为传统计算机提供了一条潜在的前进道路,并为量子计算方法提供了坚实的基线。