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Parallel Neural Space - Mapping (NSM) Optimization for EM-Based Design. Zhang Chao. Train NSM with 2n+1 sets of data . Example : A Bandpass Filter. Coarse Model:. Fine Model:. Example : A Bandpass Filter.
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Parallel Neural Space-Mapping (NSM)Optimization for EM-Based Design Zhang Chao
Example:A BandpassFilter Coarse Model: Fine Model:
Example:A Bandpass Filter A 5% deviation from X for L and S is used,So there will be 13 sets of data for one iteration. use Openmp method to get the training data
Example:A Bandpass Filter S21 Coarse model Lc1,Lc2,Lc3,Sc1,Sc2,Sc3 fc Fmapping(w) Coarse model f L1,L2,L3,S1,S2,S3 freq X:the input of neural SM model NSM model
Example:A BandpassFilter S21 Coarse model Lc1,Lc2,Lc3,Sc1,Sc2,Sc3 fc Fmapping(w) Coarse model f L1,L2,L3,S1,S2,S3 freq X:the input of neural SM model
Example:A BandpassFilter Design Specification: In the passband(4.008GHz-4.058GHz) In the stopband(<3.967GHz,>4.099GHz)
Example:A Bandpass Filter The initial state: The S21 of Coarse Model The S21 of Fine Model
Iteration 1: value the solution in CST Before optimization After optimization
Iteration 2: value the solution in CST Before optimization After optimization
Iteration 3: value the solution in CST Before optimization After optimization
Iteration 4: value the solution in CST Before optimization After optimization
Iteration 5: value the solution in CST Before optimization After optimization
A shortcoming of the method When the error becomes very little, the effect of the method will become very little at the same time. It takes many iterations to let the error disappeared. So, in the fifth iteration I make the specification more strict.
Example:A BandpassFilter Summary: