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I want to make an arithmetic solver in Prolog that can have +,-,*,^ operations on numbers >= 2. It should also be possible to have a variable x in there. The input should be a prefix expression in a list.

I have made a program that parses an arithmetic expression in prefix format into a syntax tree. So that:

?- parse([+,+,2,9,*,3,x],Tree).
Tree = plus(plus(num(2), num(9)), mul(num(3), var(x))) .

(1) At this stage, I want to extend this program to be able to solve it for a given x value. This should be done by adding another predicate evaluate(Tree, Value, Solution) which given a value for the unknown x, calculates the solution.

Example:

?- parse([*, 2, ^, x, 3],Tree), evaluate(Ast, 2, Solution).
Tree = mul(num(2), pow(var(x), num(3))) ,
Solution = 16.

I'm not sure how to solve this problem due to my lack of Prolog skills, but I need a way of setting the var(x) to num(2) like in this example (because x = 2). Maybe member in Prolog can be used to do this. Then I have to solve it using perhaps is/2

Edit: My attempt to solving it. Getting error: 'Undefined procedure: evaluate/3 However, there are definitions for: evaluate/5'

evaluate(plus(A,B),Value,Sol) --> evaluate(A,AV,Sol), evaluate(B,BV,Sol), Value is AV+BV.
evaluate(mul(A,B),Value,Sol) --> evaluate(A,AV,Sol), evaluate(B,BV,Sol), Value is AV*BV.
evaluate(pow(A,B),Value,Sol) --> evaluate(A,AV,Sol), evaluate(B,BV,Sol), Value is AV^BV.
evaluate(num(Num),Value,Sol) --> number(Num).
evaluate(var(x),Value,Sol) --> number(Value).

(2) I'd also want to be able to express it in postfix form. Having a predicate postfixform(Tree, Postfixlist)

Example:

?- parse([+, *, 2, x, ^, x, 5 ],Tree), postfix(Tree,Postfix).
Tree = plus(mul(num(2), var(x)), pow(var(x), num(5))) ,
Postfix = [2, x, *, x, 5, ^, +].

Any help with (1) and (2) would be highly appreciated!

share|improve this question
    
The first part: is answered here: stackoverflow.com/questions/19793480/prolog-parsing. – false Nov 11 '13 at 21:42
    
@false Yes, thanks! I used your approach to implement the first part, but I'm stuck in my approach for (1) and (2). Any ideas? – ExceptionalException Nov 11 '13 at 21:45
    
The last part is: stackoverflow.com/questions/13131640/… – false Nov 11 '13 at 21:45
    
The part in the middle is not that clear. Do you permit several variables? – false Nov 11 '13 at 21:47
    
@false Thanks again. No, only one variable x. So in evaluate(Tree, Value, Solution), Value will always correspond to the value of x. – ExceptionalException Nov 11 '13 at 22:01
up vote 1 down vote accepted

You don't need to use a grammar for this, as you are doing. You should use normal rules.

This is the pattern you need to follow.

evaluate(plus(A,B),Value,Sol) :- 
   evaluate(A, Value, A2),
   evaluate(B, Value, B2),
   Sol is A2+B2.

And

evaluate(num(X),_Value,Sol) :- Sol = X.
evaluate(var(x),Value,Sol) :- Sol = Value.
share|improve this answer
    
Thanks a lot! I tried normal rules as well, but I did a typo 'Value is ...' instead of 'Sol is ...' Now it's working fine! – ExceptionalException Nov 13 '13 at 13:46
1  
Glad to hear. Please go ahead and accept the answer then. – Christian Fritz Nov 13 '13 at 16:49
    
Of course! Could you have a look at my other problem with my implementation? stackoverflow.com/questions/19959722/… Thanks! – ExceptionalException Nov 13 '13 at 16:56

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