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this code using to draw triangle please can any one explain how it work

predicates
star(integer).
count(integer,integer).
clauses
star(1):-write('*'),!.
star(X):-X<=0,!.
star(X):-count(1,X),Z=x-1,nl,star(Z),!.
count(X,Y):-X<=Y,write('*'),X1=X+1,count(X1,Y),!.
count(X<Y):-X>Y,!.

this code draw 5 star ,4,3,2,1 how i doing to begin from 1,2,3,4,5

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with another Prolog, ?- N=5,forall(between(1,N,R),(forall(between(1,R,_),write(*)),nl)). –  CapelliC Nov 15 '13 at 20:46
1  
Syntax errors: <= should be replaced by =< since <= has a different meaning in prolog. x-1 should be X-1. Assignment is done with is not =, so, for example, X1=X+1 should be X1 is X + 1. –  lurker Nov 16 '13 at 15:21
    
@mbratch: I think that's the syntax used by Win-Prolog –  CapelliC Nov 16 '13 at 16:28
    
@CapelliC ah ok. I'm not familiar with Win-Prolog. The OP flagged this as SWI. Which means your alternate 1-liner is a nice alternative. –  lurker Nov 16 '13 at 16:32

2 Answers 2

up vote 2 down vote accepted

You must pass around the upper limit:

star :- star(0, 5).

star(C, X) :- C < X, count(0, C), C1 is C+1, star(C1, X).
star(C, X) :- C >= X.

count(X, Y) :- X =< Y, write('*'), X1 is X+1, count(X1,Y).
count(X, Y) :- X > Y, nl.

Change back operators to fit your prolog (i.e. is become =, >= become =>, etc). Note that cuts are not mandatory... Use with care.

?- star.
*
**
***
****
*****
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CapelliC, please can u explain how work the count and star please –  eleen Nov 16 '13 at 7:55
    
I'm a bit lazy now :) A verbose explanation is far more effort that writing such simple code. What's there you can't understand ? –  CapelliC Nov 16 '13 at 10:01
    
oh,^_^ thank u very mach ... I'm can't understand why we use star and count together –  eleen Nov 16 '13 at 10:37
    
Maybe the code could be simpler, but I preferred to keep your same structure. Anyway, I think that the loop limit was implicit to 0 in your code, then, as I said, the necessity to pass it around... –  CapelliC Nov 16 '13 at 10:53

CapelliC gets credit for the solution, but I shall tweak it only slightly for clarity and attempt to add some explanation:

% Print a triangle of 1 to N stars
star(N) :- star(1, N).   % (I modified this slightly to accept N parameter)

% Print rows of NStars stars up to MaxStars stars
star(NStars , MaxStars ) :- 
    NStars =< MaxStars ,         % Print this row if NStars <= MaxStars
    row_of_stars(NStars),        % Print NStars for this row
    NStars1 is NStars+1,         % Increment the star count
    star(NStars1, MaxStars ).    % recursively print NStar1 to MaxStars triangle
star(NStars, MaxStars) :-
    NStars > MaxStars .          % Done when exceed MaxStars

% Print NumStars stars
row_of_stars(NumStars) :-
    row_of_stars(1, NumStars).   % Print NumStars starting with star number 1
row_of_stars(N, MaxStars) :-
    N =< MaxStars,               % This case is if star number doesn't exceed max
    write('*'),                  % Print a star
    N1 is N+1,                   % Increment the star count
    print_a_star(N1, MaxStars).  % Print the next star in the row
row_of_stars(N, MaxStars) :-
    N > MaxStars, nl.            % Done when exceed MaxStars

This problem has been broken solved using two main predicates: star and row_of_stars (formerly, count). The star predicate manages the problem at the "triangle" level. That is, it focuses on rows: how many rows to print, and how many stars each row should get when it's printed. The other predicate, row_of_stars (or formerly, count), focuses on a single, row of a given number of stars. It just prints the number of stars it's told to print. Since the problem requires recursing or iterating on rows as well as number of stars in a row, the problem is simplified by breaking the solution into these two areas.

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+1: thanks for overcoming my lazyness :) –  CapelliC Nov 16 '13 at 16:26
    
@CapelliC haha no problem. :) –  lurker Nov 16 '13 at 16:29

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