We experimentally demonstrate the application of a double deep Q-learning network algorithm (DDQN) for design of a self-starting fiber mode-locked laser. In contrast to the static optimization of a system design, the DDQN reinforcement algorithm is capable of learning the strategy of dynamic adjustment of the cavity parameters. Here, we apply the DDQN algorithm for stable soliton generation in a fiber laser cavity exploiting a nonlinear polarization evolution mechanism. The algorithm learns the hysteresis phenomena that manifest themselves as different pumping-power thresholds for mode-locked regimes for diverse trajectories of adjusting optical pumping
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Thesis (Ph.D.)--University of Washington, 2014The goal of my thesis is to provide a theoretical demo...
Thesis (Ph.D.)--University of Washington, 2014The goal of my thesis is to provide a theoretical demo...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Increasing complexity of modern laser systems, mostly originated from the nonlinear dynamics of radi...
Thesis (Ph.D.)--University of Washington, 2014The goal of my thesis is to provide a theoretical demo...
Thesis (Ph.D.)--University of Washington, 2014The goal of my thesis is to provide a theoretical demo...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...
Harnessing pulse generation from an ultrafast laser is a challenging task as reaching a specific mod...