Publication | Open Access
Training deep neural networks for the inverse design of nanophotonic structures
66
Citations
2
References
2019
Year
EngineeringComputational Nanostructure ModelingNanocomputingLarge Neural NetworksProgrammable PhotonicsOptical ComputingInconsistent Training InstancesOptical PropertiesNanophotonicsPhotonicsNanoscale SystemPhysicsNanotechnologyNon-linear OpticPhotonic MaterialsBiophotonicsInverse DesignPhotonic DeviceDeep Neural NetworksApplied PhysicsNanophotonic StructuresMultiphoton ProcessQuantum Photonic DeviceOptoelectronics
We demonstrate a tandem neural network architecture that tolerates inconsistent training instances in inverse design of nanophotonic devices. It provides a way to train large neural networks for the inverse design of complex photonic structures.
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