Abstract Using a recent proposal of circuit complexity in quantum field theories introduced by Jefferson and Myers, we compute the time evolution of the complexity following a smooth mass quench characterized by a time scale δt in a free scalar field theory. We show that the dynamics has two distinct phases, namely an early regime of approximately linear evolution followed by a saturation phase characterized by oscillations around a mean value. The behavior is similar to previous conjectures for the complexity growth in chaotic and holographic systems, although here we have found that the complexity may grow or decrease depending on whether the quench increases or decreases the mass, and also that the time scale for saturation of the comple...
Abstract We study the evolution of holographic complexity of pure and mixed states in 1 + 1-dimensio...
Abstract We evaluate the full time dependence of holographic complexity in various eternal black hol...
Abstract We study a precise and computationally tractable noti...
Abstract The rate of complexification of a quantum state is conjectured to be bounded from above by ...
We apply the recently developed notion of complexity for field theory to a quantum quench through a ...
We apply the recently developed notion of complexity for field theory to a quantum quench through th...
Motivated by holographic complexity proposals as novel probes of black hole space-times, we explore ...
Quantum quenches display universal scaling in several regimes. For quenches which start from a gappe...
Motivated by recent studies of holographic complexity, we examine the question of circuit complexity...
In this paper by making use of the “Complexity=Action” proposal, we study the complexity growth afte...
We study the temporal evolution of the circuit complexity after the local quench where two harmonic ...
Abstract Motivated by recent studies of holographic complexity, we examine the question of circuit c...
We study the temporal evolution of the circuit complexity for a subsystem in harmonic lattices after...
Abstract We investigate circuit complexity to characterize chaos in multiparticle quantum systems. I...
Motivated by holographic complexity proposals as novel probes of black hole spacetimes, we explore ...
Abstract We study the evolution of holographic complexity of pure and mixed states in 1 + 1-dimensio...
Abstract We evaluate the full time dependence of holographic complexity in various eternal black hol...
Abstract We study a precise and computationally tractable noti...
Abstract The rate of complexification of a quantum state is conjectured to be bounded from above by ...
We apply the recently developed notion of complexity for field theory to a quantum quench through a ...
We apply the recently developed notion of complexity for field theory to a quantum quench through th...
Motivated by holographic complexity proposals as novel probes of black hole space-times, we explore ...
Quantum quenches display universal scaling in several regimes. For quenches which start from a gappe...
Motivated by recent studies of holographic complexity, we examine the question of circuit complexity...
In this paper by making use of the “Complexity=Action” proposal, we study the complexity growth afte...
We study the temporal evolution of the circuit complexity after the local quench where two harmonic ...
Abstract Motivated by recent studies of holographic complexity, we examine the question of circuit c...
We study the temporal evolution of the circuit complexity for a subsystem in harmonic lattices after...
Abstract We investigate circuit complexity to characterize chaos in multiparticle quantum systems. I...
Motivated by holographic complexity proposals as novel probes of black hole spacetimes, we explore ...
Abstract We study the evolution of holographic complexity of pure and mixed states in 1 + 1-dimensio...
Abstract We evaluate the full time dependence of holographic complexity in various eternal black hol...
Abstract We study a precise and computationally tractable noti...