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I'm new to prolog and I'm trying to figure out how I can use if/else statement and recursion. To illustrate, I've written a simple prolog program. The program is useless (in that its functionality is useless), but it helps me illustrate my problem. The program takes a list, examines the head of the list, sees if it's the last element; if it's not, it adds the head to a temporary list variable and runs the program in recursion using the Tail of the list. It should output the list in the end. The program:

 gothrough([H|T], B, C):-
      append(B,H,B),
      (  (T == [])
      -> C=B
      ;  gothrough(T, B, C)
      ).

The call: gothrough([sample, phrase, here], [], C).

Expected output: C = [sample, phrase, here]

Current output: no

Any help on what I'm doing wrong?

Thanks!

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1  
All of append's arguments should be lists and append(B, H, B) can only succeed if H is the empty list. Looking at this code, it's hard to see why you think C is going to ultimately equal the first argument, or what B is going to do exactly, so I think you have deeper problems than just recursion. –  Daniel Lyons Feb 18 '13 at 23:20
    
You're absolutely right...I simplified the program and I forgot to set C equal to B. But can you elaborate on the H is the empty list thing please? I thought append appends the contents of B and H into B. So for example, if B = [yesterday] and H = [today], then append(B, H, B) = [yesterday, today]? –  pauliwago Feb 18 '13 at 23:24

4 Answers 4

up vote 4 down vote accepted

From your comments I understand that you misunderstand how append (and Prolog in general) works.

This is not true at all: "if B = [yesterday] and H = [today], then append(B, H, B) = [yesterday, today]".

append(B, H, B) means "appending H to B yields B again". This is only possible if H is an empty list.

The key thing to understand is that both Bs in append(B, H, B) are the same, they must have the same value. It's like variables in algebra - all Xs in an equation means the same value.

You should use different name for the output variable, like append(B, H, Bnew) - then it will make more sense.

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The first problem is append(B, H, B) which for most inputs doesn't make sense.

The second problem is that the consequence and alternative of an if-then-else, i.e. the parts after -> and after ; must both be Prolog goals (statements). C is not a goal. You may have meant C=B, though it's hard to tell because I find it hard to understand what your program is doing.

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Thanks for your comment, yes you are absolutely right. I simplified my original program and I forgot to set C equal to B. So I edited it in my original post. But I am confused as to why append(B, H, B) doesn't make sense for most inputs? –  pauliwago Feb 18 '13 at 23:25

You're getting a no because append(B,H,B) fails unless H is []; remember, these are clauses, not assignments. And since you never bind anything to C, it will never have a value in it if your statement was ever proved.

This will accomplish your task:

gothrough([],L,L).
gothrough([H|T], B, C) :- gothrough(T,B,Cx), append([H],Cx,C).
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1  
Thank you for your comment! Can you please elaborate on why append(B,H,B) needs to fail unless B is []? I thought if B = [yesterday] and H = [today], then append(B, H, B) = [yesterday, today]? –  pauliwago Feb 18 '13 at 23:28
1  
@pauliwago In Prolog a variable only ever has one binding, and functions do not "return" so what you're saying doesn't really apply to Prolog at all. I suggest you go back and start from the beginning. –  Daniel Lyons Feb 18 '13 at 23:34
1  
append(B,H,B) fails unless H is [], not B. –  Sergey Dymchenko Feb 19 '13 at 0:03

This can be done even more simply:

gothrough([], []).
gothrough([H|T], [H|X]) :-
    gothrough(T, X).

The first rule matches your empty list condition, which then forces the end of the recursion/the list to be built.

The second rule matches everything but an empty list, in which case the head H is appended onto X, where X is the result of list obtained from recursing the tail. ie. you don't need to use the append predicate - list appending is built into prolog.

?- gothrough([simple, phrase, here], X).
X = [simple, phrase, here].

This solution also uses one less variable.

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