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Good morning everyone. I would like to create an argument that succeeds when a list proceeds another list. For example ?-proceed_list([1,2],[2]). Yes or True(whatever the compiler). Can anyone help me? I am a bit stuck.. Thanks a lot!

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Could you rephrase or clarify your question? – aqua Jan 13 '12 at 8:47
    
Yes no problem. I want to make an argument, lets name it proceed_list(X,Y), which succeeds when the list Y proceeds list X.In other words list Y has items that are after list X.For example [1,2,3] proceeds [1,2]. For example if we ask prolog ?-proceed_list([1,2],[2]) then the answer should be Yes. I hope it helped. – Pantheo Jan 13 '12 at 9:04
up vote 3 down vote accepted

Your question is hard to parse. As aqua commented, you should rephrase it. For what it's worth, I understand your example that you want to check whether the second list [2] is the tail of the first [1,2] (i.e., "proceed" in the sense of "continue"). If that's what you want, then this should work:

proceed_list(L1, L2) :-
    once(append(_, L2, L1)).
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Thank you so much twinterer. I will try be more specific with my questions in the future. – Pantheo Jan 13 '12 at 9:33
1  
@Pantheo: btw if you liked twinterer's answerer, you can click the check sign of his answer to accept it :) – m09 Jan 13 '12 at 11:26
    
what can't prolog append do? – DaveEdelstein Jan 13 '12 at 13:05
    
be O(1) as a difference list on tail-side insertion sadly :((( – m09 Jan 13 '12 at 13:19
    
If only we could use append_dl/3 to split lists like here with append/3... – twinterer Jan 13 '12 at 14:00

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