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Say I need a predicate rep(?List, ?Times, ?TList) which is true iff List is repeated Times times in TList (for example, rep([a,c],2,[a,c,a,c])). It should work as long as two of the arguments are instantiated. Here a somewhat working version:

rep(_,0,[]).
rep(List,1,List).
rep(List,Times,TList) :- integer(Times), Times>1,
    succ(RemTimes,Times), append(List,RemList,TList),
    rep(List,RemTimes,RemList).
rep(List,Times,TList) :- var(Times),
    append(List,RemList,TList),
    rep(List,RemTimes,RemList), !,
    succ(RemTimes,Times).

Two questions:

  1. Isn't there some built-in (that I am unable to find) that does that?
  2. Is there a more straight-forward way of doing this? Like getting rid of the last clause? It is necessary because I couldn't find a way to express the relationship between Times and RemTimes when Times is not instantiated.
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4 Answers 4

up vote 1 down vote accepted

I don't know about a specialized builtin. Here a procedure using the generative capability of length/2

rep(List, Times, TList) :-
    ( var(Times) ; Times > 0 ),  % after joel76' comment...
    ( var(List) ; is_list(List) ), % after false' comment...
    ( var(TList) ; is_list(TList) ), % idem...
    length(List, LA), LA > 0,
    length(TList, LT), LT > 0,
    Times is LT / LA,
    findall(List, between(1, Times, _), [List|Ls]),
    append([List|Ls], TList), !.

the final cut avoid looping when any list is free.

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Doesn't work when Times is negative (I agree that it means nothing in the context). –  joel76 Jan 30 '13 at 10:33
    
@joel76: thanks, I've added the check... –  CapelliC Jan 30 '13 at 10:40
    
rep(L,N,[a,c,a,c]). gives L = [a], N = 4. –  joel76 Jan 30 '13 at 10:46
    
@joel76: fortunately, it's out of spec... –  CapelliC Jan 30 '13 at 10:49
1  
@Boris - note the peculiar pattern [List|Ls] as result of findall. That forces the binding when List is free, it's required because findall/3 copies the terms handed out to it... –  CapelliC Jan 30 '13 at 10:59

You use SWI-Prolog, so you can do that :

:- use_module(library(lambda)).

rep(Lst, N, R) :-
    (   numlist(1,N, NL)
    ->  foldl(\_X^Y^Z^append(Y, Lst, Z), NL, [], R)
    ;   R = []).

To solve CapelliC's remark, doesn't report X binding on rep(X,2,[a,b,a,b]) you must write

foldl(Lst +\_X^Y^Z^append(Y, Lst, Z), NL, [], R)

[Edit] Thanks @false ! Interesting is

rep(Lst, N, R) :-
    (   nonvar(N)
    ->  length(NL, N),
        foldl(Lst +\_^Y^append(Y, Lst), NL, [], R)
    ;   foldl(Lst +\_^Y^append(Y, Lst), NL, [], R),
        length(NL, N)),
    !.

But unfortunately, it loops with rep([a,b], N, [a,c,a,c]) !

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give error on rep([a,b],X,[a,b,a,b]) and doesn't report X binding on rep(X,2,[a,b,a,b]) –  CapelliC Jan 30 '13 at 9:57
    
I am not sure I understand... my SWI-Prolog cannot find such a library, nor can I find it documented on the SWI-Prolog web page! –  Boris Jan 30 '13 at 10:00
    
@Boris: I think you should get lambda.pl from Ulrich site. AFAIK it's not in SWI library –  CapelliC Jan 30 '13 at 10:07
    
+1. You can shorten the lambda with partial application: foldl(Lst +\_^Y^append(Y, Lst), NL, [], R) –  false Jan 30 '13 at 14:33

A simple (but maybe inefficient) strategy is to scan the second list and check each time if the first one is a sublist of the remaining part.

To do the check you could use the prefix/2 operator from SWI-Prolog.

sublist_count(L, R, Times) :-
    sublist_count(L, R, 0, Times).
sublist_count(L, [], Times, Times).
sublist_count(L, [R | Tail], Times, End) :-
    prefix(L, [R | Tail]), !,
    NewTimes is Times + 1,
    sublist_count(L, Tail, NewTimes, End).
sublist_count(L, [R | Tail], Times, End) :-
    sublist_count(L, Tail, Times, End).
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Would the following make sense. (I'm not handling the case where Times is undefined.)

rep(List, Times, TList) :-
    length(List, ListLen),
    PrefixLen is ListLen * Times,
    open_list(List, OpenList, OpenList),
    length(TList, PrefixLen),
    append(TList, _, OpenList).

where open_list/3 is defined as:

open_list([], X, X).
open_list([H | T1], [H | T2], X) :-
    open_list(T1, T2, X).

The idea is to create an infinite list and then cut the required prefix off.

Usage example:

?- rep([a, c], 2, TList).
TList = [a, c, a, c].

?- rep(List, 2, TList).
List = TList, TList = [] ;
List = [_G886],
TList = [_G886, _G886] ;
List = [_G886, _G889],
TList = [_G886, _G889, _G886, _G889] ;
share|improve this answer
    
It is exaclty the case where Times is undefined that created the initial problem. Without it is not really a pure predicate.... –  Boris Feb 1 '13 at 18:24

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