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Artificial Intelligence and Soft Computing: Behavioral ... - Arteimi.info

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Level POSITION_FROM_LEFT NODE<br />

1 1 H: This is<br />

nethead ( _, _)<br />

2 1 I: L (S,R)<br />

3 1 T: LSR (S,_)<br />

4 1 N: LSR(S,_ )<br />

5 1 T: S (S,_ )<br />

6 1 N: S (S,_ )<br />

7 1 F: S (S,_ )<br />

3 2 T: LSR (S,_ )<br />

2 2 I: L(S, M)<br />

3 3 T: LSR (S,_ )<br />

3 4 T: LSR(S,_ )<br />

palette:2<br />

Here it draws the FPN, the top part of that network we considered in case<br />

study in chapter 23. The figure is not good. Readers may try to improve it.<br />

Initialization Session:<br />

which model to use (2 OR 3): 2<br />

I: L (S, R): Initial FTT: 0.4<br />

I: L (S, M): Initial FTT: 0.1<br />

N: LSR (S, _): Initial FTT: 0.4<br />

N: S (S, _): Initial FTT: 0.3<br />

F: S (S, _): Initial FTT: 0.3<br />

No Of updations: 10<br />

Stability obtained after 2 updations<br />

CONCLUSION:<br />

conclusion no.1: S (S,_): FFT= 4.0000000000E -01<br />

Conclusion1:<br />

paths<br />

path no: 1<br />

path gain: 0.400<br />

I: L (S, R): FTT: 0.400<br />

T: LSR (S, _): FTT: 0.400<br />

N: LSR (S, _): FTT: 0.400<br />

T: S (S, _): FTT: 0.400<br />

N: S (S, _): FTT: 0.400

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