论文标题
在宇宙相关因子的时间演变中
On the time evolution of cosmological correlators
论文作者
论文摘要
如果我们要从我们的后期可观察物中提取有关早期宇宙的信息,我们对通货膨胀期间相关性的发展的理解至关重要。为此,我们重新审视了Schrodinger图片中De Sitter Spacetime上标量场相关器的时间演变。通过直接操纵Schrodinger方程,我们为确定波函数的系数写下简单的“运动方程”。我们没有指定特定的相互作用哈密顿量,而是假设非常基本的属性(单位性,保张者不变性和位置),从而导致波函数演变的一般后果。特别是,我们确定了许多“运动常数”:初始状态的特性,这些属性是由任何统一动力保守的。我们通过从DE Sitter等异构体中得出约束来进一步限制时间演变,并表明这些限制将其减少到后期熟悉的保形病房身份。最后,我们展示了如何通过许多“转移函数”来描述状态从共形边界从整体边界中的演变,这些函数在任何局部相互作用的视野外都在地平线之外进行了分析。这些对象显示出标量质量的特定值的分歧,我们展示了如何通过边界波函数的重新归一致化来消除此类差异 - 这等同于执行“边界操作员的扩展”,该“边界操作员的扩展”以受调节的边界运算符表示散装运算符。总的来说,从纯粹的边界角度来看,对大部分DE保姆中波函数的理解得到了补充,并揭示了宇宙学相关因子中的新结构。
Developing our understanding of how correlations evolve during inflation is crucial if we are to extract information about the early Universe from our late-time observables. To that end, we revisit the time evolution of scalar field correlators on de Sitter spacetime in the Schrodinger picture. By direct manipulation of the Schrodinger equation, we write down simple "equations of motion" for the coefficients which determine the wavefunction. Rather than specify a particular interaction Hamiltonian, we assume only very basic properties (unitarity, de Sitter invariance and locality) to derive general consequences for the wavefunction's evolution. In particular, we identify a number of "constants of motion": properties of the initial state which are conserved by any unitary dynamics. We further constrain the time evolution by deriving constraints from the de Sitter isometries and show that these reduce to the familiar conformal Ward identities at late times. Finally, we show how the evolution of a state from the conformal boundary into the bulk can be described via a number of "transfer functions" which are analytic outside the horizon for any local interaction. These objects exhibit divergences for particular values of the scalar mass, and we show how such divergences can be removed by a renormalisation of the boundary wavefunction - this is equivalent to performing a "Boundary Operator Expansion" which expresses the bulk operators in terms of regulated boundary operators. Altogether, this improved understanding of the wavefunction in the bulk of de Sitter complements recent advances from a purely boundary perspective, and reveals new structure in cosmological correlators.