Design method for FIR filter based on learning rate changing neural net
A technology of neural network and design method, applied in the field of electronic science and communication, which can solve problems such as slow convergence speed
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Embodiment 1
[0084] Embodiment 1 assumes that the amplitude-frequency characteristic of a certain ideal high-pass filter is:
[0085]
[0086] The method of designing a 220-order high-pass filter is: uniformly take 111 sample values for ω in [0, π], that is ω = π 110 n , n = 0,1,2 , · · · , 110 . In order to make the passband and stopband of the filter have no overshoot and ripple, two sample points 0.2 and 0.8 are taken in each transition band respectively. Therefore, the actual amplitude-frequency sampling sequence is: H o (n) = [zeros (1, 55), 0.2, 0.8, ones (1, 54)]. Take the network structure of the neural network as 1×111×1, and the global error performance index in the passband and stopband range is J=4.62×10 -6 , the initial value of the α learning rate is 0.001, and the sampling sequence is input into the neural ...
Embodiment 2
[0090] Embodiment 2 assumes that the amplitude-frequency characteristic of a certain ideal bandpass filter is:
[0091]
[0092] The method of designing a 180-order band-pass filter is: take 91 sample values evenly in [0, π] for ω, that is ω = π 90 n , n = 0,1,2 , · · · , 90 . In order to make the passband and stopband of the filter have no overshoot and ripple, two sample points 0.2 and 0.8 are taken in each transition band respectively. Therefore, the actual amplitude-frequency sampling sequence is: H o (n)=[zeros(1, 28), 0.2, 0.8, ones(1, 31), 0.8, 0.2, zeros(1, 28)]. Take the network structure of the neural network as 1×91×1, and the global error performance index in the passband and stopband range is J=5.64×10 -7 , the initial value of the α learning rate is 0.001, and the sampling sequence is input into...
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