C++ Neural Networks and Fuzzy Logic: Preface



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C neural networks and fuzzy logic

Creating IF–THEN Rules

We can now translate the table entries into IF − THEN rules. We take these directly from Table 16.15:



1.  IF SenseTemp IS XSmall AND SenseLevel IS XSmall THEN SET HeatKnob TO

AGoodAmount



2.  IF SenseTemp IS XSmall AND SenseLevel IS Small THEN SET HeatKnob TO ALot

3.  IF SenseTemp IS XSmall AND SenseLevel IS Medium THEN SET HeatKnob TO AWholeLot

4.  IF SenseTemp IS XSmall AND SenseLevel IS Large THEN SET HeatKnob TO AWholeLot

5.  IF SenseTemp IS XSmall AND SenseLevel IS XLarge THEN SET HeatKnob TO AWholeLot

6.  IF SenseTemp IS Small AND SenseLevel IS XSmall THEN SET HeatKnob TO ALittle

7.  IF SenseTemp IS Small AND SenseLevel IS Small THEN SET HeatKnob TO AGoodAmount

8.  IF SenseTemp IS Small AND SenseLevel IS Medium THEN SET HeatKnob TO ALot

9.  IF SenseTemp IS Small AND SenseLevel IS Large THEN SET HeatKnob TO ALot

10.  IF SenseTemp IS Small AND SenseLevel IS XLarge THEN SET HeatKnob TO ALot

11.  IF SenseTemp IS Medium AND SenseLevel IS XSmall THEN SET HeatKnob TO VeryLittle

12.  IF SenseTemp IS Medium AND SenseLevel IS Small THEN SET HeatKnob TO VeryLittle

13.  IF SenseTemp IS Medium AND SenseLevel IS Medium THEN SET HeatKnob TO

AGoodAmount



14.  IF SenseTemp IS Medium AND SenseLevel IS Large THEN SET HeatKnob TO ALot

15.  IF SenseTemp IS Medium AND SenseLevel IS XLarge THEN SET HeatKnob TO ALot

16.  IF SenseTemp IS Large AND SenseLevel IS Small THEN SET HeatKnob TO VeryLittle

17.  IF SenseTemp IS Large AND SenseLevel IS Medium THEN SET HeatKnob TO VeryLittle

18.  IF SenseTemp IS Large AND SenseLevel IS Large THEN SET HeatKnob TO ALittle

19.  IF SenseTemp IS Large AND SenseLevel IS XLarge THEN SET HeatKnob TO

AGoodAmount

Remember that the output and inputs to the fuzzy rule base are fuzzy variables. For any given crisp input

value, there may be fuzzy membership in several fuzzy input variables (determined by the fuzzification step).

And each of these fuzzy input variable activations will cause different fuzzy output cells to fire, or be

activated. This brings us to the final step, defuzzification of the output into a crisp value.

C++ Neural Networks and Fuzzy Logic:Preface

Step Three: Set Up Fuzzy Membership Functions for the Output(s)

404




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