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The challenge

The shortest code by character count to output an hourglass according to user input.

Input is composed of two numbers: First number is a greater than 1 integer that represents the height of the bulbs, second number is a percentage (0 - 100) of the hourglass' capacity.

The hourglass' height is made by adding more lines to the hourglass' bulbs, so size 2 (the minimal accepted size) would be:

\   /
 \ /
 / \

Size 3 will add more lines making the bulbs be able to fit more 'sand'.

Sand will be drawn using the character x. The top bulb will contain N percent 'sand' while the bottom bulb will contain (100 - N) percent sand, where N is the second variable.

'Capacity' is measured by the amount of spaces () the hourglass contains. Where percentage is not exact, it should be rounded up.

Sand is drawn from outside in, giving the right side precedence in case percentage result is even.

Test cases

    3 71%
    \x  xx/
      / \
     /   \

    5 52%
    \         /
     \xx   xx/
        / \
       /   \
      /     \
     /  xxx  \

    6 75%
     \x         x/
          / \
         /   \
        /     \
       /       \
      /         \

Code count includes input/output (i.e full program).


locked by Shog9 Apr 3 at 16:35

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I don't even use a calendar anymore. When these show up, I know it's Thursday! This one is cool. – Instantsoup Nov 5 '09 at 21:48
Also, I wish people would stop voting to close good code golf questions. Maybe you don't feel like code golf is a valid activity for SO, but there's huge precedent for it's being accepted by the community. Use your close votes for something useful, because good code golfs won't get closed (and if they do, they'll be just as quickly reopened). – Chris Lutz Nov 5 '09 at 22:17
@kersny - yes that's what I'm looking at... basically does the middle change size as you add rows or is it supposed to stay the same? In the given example the width is different for even vs odd sizes. – Aaron Nov 5 '09 at 22:28
@LiraNuna - that doesn't really help me - should an hourglass of size 4 have a capacity of 16 or 12? – Aaron Nov 5 '09 at 22:44
No problem. I'm glad I understood something today. Now to waste company time implementing this in Enterprise Java! – Instantsoup Nov 5 '09 at 22:59

13 Answers 13

up vote 21 down vote accepted

Golfscript - 136 Chars (Fits in a Tweet)

Be sure not to have a newline after the % for the input
$ echo -n 3 71%|./golfscript.rb

You can animate the hourglass like this:

$ for((c=100;c>=0;c--));do echo -n "15 $c%"|./golfscript.rb;echo;sleep 0.1;done;

Golfscript - 136 Chars
Make sure you don't save it with an extra newline on the end or it will print an extra number

);' ': /(~:
,{:y *.'\\'+{[&'x':x]0t(:t>=}:S~
(y-,{;S\+S+.}%;'/'++\+}%.{&/ *}%\-1%{-1%x/ *&/x*}%) /&[*]++n*

Golfscript - 144 Chars

);' ':|/(~:^.*:X

How it works
First do the top line of underscores which is 2n+1 Create the top half of the hourglass, but use '_' chars instead of spaces, so for the 3 71% we would have.


Complete the top half by replacing the "_" with " " but save a copy to generate the bottom half

The bottom half is created by reversing the whole thing


Replacing all the 'x' with ' ' and then then '_' with 'x'

  / \
 /   \
/  xx \

Finally replace the ' ' in the bottom row with '_'

  / \
 /   \

Roundabout but for me, the code turned out shorter than trying to generate both halves at once

I always laugh when I see golfscript in one of these. – Ron Warholic Nov 6 '09 at 14:53
@Sid: How come? Use the right tool for the job! – LiraNuna Nov 7 '09 at 7:09
I like the way it is self documenting – John La Rooy Nov 7 '09 at 8:35
I'm going to have to start thinking in terms of moral victories. I'll set my first bar at 133% of the golfscript solution. – mob Nov 9 '09 at 22:32
@mobrule, Are you going to get your lasers down to 122 chars then :)… – John La Rooy Nov 9 '09 at 23:47

C/C++, a dismal 945 characters...

Takes input as parameters: a.out 5 52%

#define p printf

int h,c,*l,i,w,j,*q,k;const char*
 z;int main(int argc,char**argv)
   argv[2])+99)/100;l=new int[
       0;*q++ =0;* q++=w;}
        else {*q++=(c+1)/
            ;i ++)p (
             for (i=
         ; z= "x\0 \0x";
    ;i++){z =i==h? "_\0x\0_":
   " \0x\0 ";p("%*s/",h-i,"");
 j=0;j<*q;j++)p(z);p("\\\n") ;}}

...and the decrypted version of this for us mere humans:

#include <stdio.h>
#include <memory.h>
#include <stdlib.h>

#define p printf

int h, c, *l, i, w, j, *q, k;
const char *z;

int main(int argc, char** argv)
    h = atoi(argv [1]);
    c = (h*h*atoi(argv[2])+99)/100;
    l = new int[h*3];
    for (q = l,i = 0,w = 1; i<h; i++,c = (c-w)&~((c-w)>>31),w += 2) {
        if (c>=w) {
            *q++ = 0;
            *q++ = 0;
            *q++ = w;
        } else {
            *q++ = (c+1)/2;
            *q++ = w-c;
            *q++ = c/2;
    for (i = 0; i<h; i++) {
    q = l+h*3-1;
    for (i = --h; i>=0; i--) {
        z = "x\0 \0x";
        for (k = 0; k<3; k++,q--,z += 2) {
            for (j = 0; j<*q; j++) {
    q = l;
    for (i = 0; i<=h; i++) {
        z = i==h ? "_\0x\0_" : " \0x\0 ";
        for (k = 0; k<3; k++,q++,z += 2) {
            for (j = 0; j<*q; j++) {
        p("\\\n") ;
I think you confuse this with IOCCC :D – LiraNuna Nov 5 '09 at 23:59
okay - I fixed it to fit the new 1st test case and added the const (which wouldn't have been necessary if you used a standards non-compliant compiler like Msdev) – Aaron Nov 6 '09 at 2:45
one thing to note is that this isn't valid C, just C++. so the "C/C++" in the heading is misleading. – Evan Teran Nov 7 '09 at 5:44
Why does this have so many upvotes when the author himself says it is a "dismal 945 characters"? Not being mean, just making sure I understand the logic or lack thereof behind the upvotes. – Respectech Aug 11 '13 at 0:08

Perl, 191 char

205 199 191 chars.

$\=$/.$"x$N."\\".x x($v=$s/2).$"x($t=$r++-$s).x x($w=$v+.5)."/$\
".$"x$N."/".($^=$N?$":_)x$w.x x$t.$^x$v."\\"while$N--;print$^x++$r

Explicit newline required between the 2nd and 3rd lines.

And with help of the new Acme::AsciiArtinator module:

)                         *
 $                       N
  )                     +
   $                   N
    *$N;(        ${B},$
     F,${x})=qw(\\ / x
           =(" "
            $ N
           .   $
          B     .
         x       x
        (         $
       v           =
      $             s
     /               2
    )     .$"x($t=    $
   r++-$s).x x($w=$v+.5)
 $":_)x$w.x x$t.$^x$v.$B);
Seems to be consistently printing out 2 two many _ characters on top. Also not printing newlines at the end, which is a nice thing to do. – Chris Lutz Nov 5 '09 at 23:08
@Chris: mobrule's answers always lack a newline :P – LiraNuna Nov 5 '09 at 23:12
I think newlines at the end should be optional – John La Rooy Nov 5 '09 at 23:13
had my code-golf questions became IOCCC as well? – LiraNuna Nov 6 '09 at 5:16
@LiraNuna That'd be IOPPP (International Obfuscated Perl Programming Pandemonium) – hobbs Nov 6 '09 at 8:38

Python, 213 char

_,e,x,b,f,n=C='_ x\/\n'
while N:N-=1;z=C[N>0];s=min(S,r);S-=s;t=r-s;v=s/2;w=s-v;r+=2;o=n+e*N+b+x*v+e*t+x*w+f+o+n+e*N+f+z*w+x*t+z*v+b
print _*r+o
Nice algorithm.r+=2 – John La Rooy Nov 6 '09 at 20:55
I ported this to golfscript but it came out ~20 longer than my existing solution :( – John La Rooy Nov 7 '09 at 3:39
There's at least 3 good ideas here: computing the total number of 'x' characters at the top, exploiting the x/space mirror, and generating inside-out. Nice job... – DigitalRoss Nov 7 '09 at 19:53
(I imagine the perl program does all that too but I'm not going to look: I don't want my eyes to bleed :-) – DigitalRoss Nov 7 '09 at 19:55
@DigitalRoss, My golfscript takes advantage of the symmetry too, but in a surprising way! – John La Rooy Nov 8 '09 at 7:17

Rebmu: 188 chars

rJ N 0% rN Wad1mpJ2 S{ \x/ }D0 Hc&[u[Z=~wA Qs^RTkW[isEL0c[skQdvK2][eEV?kQ[tlQ]]pcSeg--B0[eZ1 5]3]prRJ[si^DspSCsQfhS]eZ1[s+DcA+wMPc2no]]]Va|[mpAj**2]prSI^w{_}Ls+W2 h1tiVsb1n -1 chRVs{_}hLceVn1

It's competitive with the shorter solutions here, though it's actually solving the problem in a "naive" way. More or less it's doing the "sand physics" instead of exploiting symmetries or rotating matrices or anything.

H defines a function for printing a half of an hourglass, to which you pass in a number which is how many spaces to print before you start printing "x" characters. If you're on the top half, the sand string is constructed by alternating appends to the head and the tail. If you're on the bottom it picks the insertion source by skipping into the middle of the string. Commented source available at:

But the real trick up Rebmu's sleeve is it's a thin dialect that doesn't break any of the parsing rules of its host language (Rebol). You can turn this into a Doomsday visualization by injecting ordinary code right in the middle, as long you code in lowercase:

>> rebmu [rJ birthday: to-date (ask "When were you born? ") n: (21-dec-2012 - now/date) / (21-dec-2012 - birthday) Wad1mpJ2 S{ \x/ }D0 Hc~[u[Ze?Wa Qs^RTkW[isEL0c[skQdvK2][eEV?kQ[tlQ]]pcSeg--B0[eZ1 5]3]prRJ[si^DspSCsQfhS]eZ1[s+DcA+wMPc2no]]]Va|[mpAj**2]prSI^w{_}Ls+W2h1tiVsb1n -1 chRVs{_}hLceVn1]

Input Integer: 10
When were you born? 23-May-1974
\                   /
 \                 /
  \               /
   \             /
    \           /
     \         /
      \       /
       \x  xx/
         / \
        /   \
       /  xx \

O noes! :)

(Note: A major reason I'm able to write and debug Rebmu programs is because I can break into ordinary coding at any point to use the existing debugging tools/etc.)

This is a serious waste of Rebol cycles! – Graham Chiu Sep 9 '10 at 5:23
I strongly disagree. Rebol dialecting is powerful, and more examples are always helpful because the existing documentation has not really taught people enough about dialecting "wins". Plus the code golfing mindset is one that could be particularly receptive to the do more with less anti-bloat mindset. There is now an entire StackExchange site dedicated to Code Golfing, Rebmu can give cool Rebol tricks exposure: – HostileFork Feb 3 '11 at 18:42
You actually achieved very good native compression using Rebmu. Trying to compress your Rebmu code added 2 bytes to the total. :-) – Respectech Aug 11 '13 at 0:07
@Respectech Dr. Rebmu told me he considered adding a decompression primitive, e.g. caret-string ^{a89jfoiMM20...}, and have that expand into a BINARY! of the decompressed Base64 encoded data. But is holding off because he's afraid people might abuse it, and it would risk Rebmu programs becoming unreadable. – HostileFork Aug 11 '13 at 15:17

Haskell. 285 characters. (Side-effect-free!)

x n c=h s++'\n':reverse(h(flip s)) where h s=r w '-'++s '+' b(w-2)0 p;w=(t n);p=d(n*n*c)100
s x n i o p|i>0='\n':l++s x n(i-2)(o+1)(max(p-i)0)|True=[] where l=r o b++'\\':f d++r(i#p)n++f m++'/':r o b;f g=r(g(i-(i#p))2)x
b=' '
t n=1+2*n

Run with e.g. x 5 50


A c++ answer, is 592 chars so far, still having reasonable formatting.

using namespace std;
typedef string S;
typedef int I;
typedef char C;
I main(I,C**v){
    I z=atoi(v[1]),c=z*z,f=ceil(c*atoi(v[2])/100.);
    for(I i=z,n=c;i;--i){
    	I y=i*2-1;
    	S s(y,' ');
    	for(I j=0;j<y;++j)
    	cout<<S(z-i,' ')<<'\\'<<s<<"/\n";
    for(I i=1,n=c-f;i<=z;++i){
    	I y=i*2-1;
    	S s(y,'x');
    	for(I j=0;j<y;++j)
    		if(n++<c)*(!(j&1)?l++:--r)=(i==z)?'_':' ';
    	cout<<S(z-i,' ')<<'/'<<s<<"\\\n";

If i decide to just forget formatting it reasonably, i can get it as low as 531:

using namespace std;typedef string S;typedef int I;typedef char C;I main(I,C**v){I z=atoi(v[1]),c=z*z,f=ceil(c*atoi(v[2])/100.);cout<<S(z*2+1,'_')<<'\n';for(I i=z,n=c;i;--i){I y=i*2-1;S s(y,' ');C*l=&s[0];C*r=&s[y];for(I j=0;j<y;++j)if(n--<=f)*((j&1)?l++:--r)='x';cout<<S(z-i,' ')<<'\\'<<s<<"/\n";}for(I i=1,n=c-f;i<=z;++i){I y=i*2-1;S s(y,'x');C*l=&s[0];C*r=&s[y];for(I j=0;j<y;++j)if(n++<c)*(!(j&1)?l++:--r)=(i==z)?'_':' ';cout<<S(z-i,' ')<<'/'<<s<<"\\\n";}}
typedef char* C; will save a few characters, since you only use a character pointer. – Ólafur Waage Nov 7 '09 at 12:27
I looked into that, and it actually wont. Because Currently I can write: C*l with no space, if C is a char* I will need to have a space! and write: C l so it will be a net loss. – Evan Teran Nov 7 '09 at 18:13

Bash: 639 - 373 characters

I thought I would give bash a try (haven't seen much code-golfing in it). (my version: GNU bash, version 3.2.48(1)-release (i486-pc-linux-gnu))

Based on Mobrule's nice python answer.

Optimizations must still be available, so all suggestions are welcome!

Start from the command line, e.g. : ./ 7 34%

function f () { for i in `seq $1`;do printf "$2";done; }
b='\';o=$b;n="\n";r=1;while [ $N -gt 0 ];do
N=$[N-1];z=" ";s=$r;[ $N -eq 0 ]&& z=_;[ $S -lt $r ]&& s=$S
o=$n`f $N " "`$b`f $v x;f $t " ";f $w x`/$o$b$n`f $N " "`/`f $w "$z";f $t x;f $v "$z"`$b
done;f $r _;echo -e "${o/\/\\\\//}"
Input can be from stdin or command line args, so your 373 solution is valid. – LiraNuna Nov 9 '09 at 22:40
Thanks, I've updated the answer accordingly. I'm not really a good bash scripter so I still hope some people will chime in with some optimalizations. Very nice code-golf questions every time LiraNuna ;-) – ChristopheD Nov 9 '09 at 22:48

Java; 661 characters

public class M{public static void main(String[] a){int h=Integer.parseInt(a[0]);int s=(int)Math.ceil(h*h*Integer.parseInt(a[1])/100.);r(h,h-1,s,true);r(h,h-1,s,false);}static void r(int h,int c,int r,boolean t){if(c<0)return;int u=2*(h-c)-1;if(t&&c==h-1)p(2*h+1,0,'_','_',true,0,false);int z=r>=u?u:r;r-=z;if(t)r(h,c-1,r,true);p(u,z,t?'x':((c==0)?'_':' '),t?' ':'x',t,c,true);if(!t)r(h,c-1,r,false);}static void p(int s,int n,char o,char i,boolean t,int p,boolean d){int f=(s-n);int q=n/2+(!t&&(f%2==0)?1:0);int e=q+f;String z = "";int j;for(j=0;j<p+4;j++)z+=" ";if(d)z+=t?'\\':'/';for(j=0;j<s;j++)z+=(j>=q&&j<e)?i:o;if(d)z+=t?'/':'\\';System.out.println(z);}}

I need to find a better set of golf clubs.

"I need to find a better set of golf clubs." - I'd recommend a set of Perls. At least for golfing... ;-) – JasCav Nov 6 '09 at 14:11
you could use static import for system.out and and field for boolean. true*4+false*3=16+15=31 static boolean b;+!b*4+b*3=17+8+3=28 – IAdapter Nov 10 '09 at 10:01
I agree that I could have shaved a few more characters with all those boolean values. As for the print line, there's only one, so there's no sense importing all of it for that single case. – exabytes18 Nov 10 '09 at 18:54

PHP - 361

$c=-1;while($s){$k=$s--*2-1;$f=$x($x('',min($k,$w),' '),$k,'x',2);
$g=$x($x('',min($k,$w),'x'),$k,' ',2);$w-=$k;$o[]=$x('',$p)."\\$f/";
$b[]=$x('',$p++)."/$g\\";}$b[0]=str_replace(' ','_',$b[0]);
krsort($b);echo implode("\n",array_merge($o,$b));?>
My eyes! The pain! Thanks for reminding me. – Kugel Nov 13 '09 at 0:29

Python - 272 chars

n,u,x,f,b,s='\n_x/\ '
for y in range(X):
 for i in range(X-y-1):r=S()+r+S();q+=T();q=T()+q
print u+u*2*X+A+B
wouldn't B=n+s*y+f+q+b+B be better if you write B+=n+s*y+f+q+b? Saves one char – LiraNuna Nov 6 '09 at 8:48
@LiraNuna, B is a string, and I need to add to the start not the end – John La Rooy Nov 6 '09 at 10:57

Exabyte18's java converted to C#, 655 bytes:

public class M {public static void Main(){int h = Convert.ToInt32(Console.ReadLine());
int s = Convert.ToInt32(h * h * Convert.ToInt32(Console.ReadLine()) / 100);r(h,h-1,s,true);
r(h,h-1,s,false);Console.ReadLine();}static void r(int h, int c, int r, bool t){
if(c<0) return;int u=2*(h-c)-1;if (t&&c==h-1)p(2*h+1,0,'_','_',true,0,false);
int z=r>=u?u:r; r-=z;if (t)M.r(h,c-1,r,true); p(u,z,t?'x':((c==0)?'_':' '), t?' ':'x',t,c,true);
if(!t)M.r(h,c-1,r,false);}static void p(int s, int n, char o, char i, bool t, int p, bool d)
{int f=(s-n);int q=n/2+(!t&&(f%2==0)?1:0);int e=q+f;string z="";int j;for(j=0;j<p+4;j++) z+=" ";if(d)z+=t?'\\':'/';
for (j=0;j<s;j++) z+=(j>=q&&j<e)?i:o; if(d)z+=t?'/':'\\';Console.WriteLine(z);}}

Ruby, 297 254 (after compression)

Run both with ruby -a -p f.rb

n,p = ${|i|i.to_i}
g,s,u,f,b=%w{x \  _ / \\}
$> << u*2*n+u+r     # draw initial underbar line
c=100.0/n/n         # amount of sand a single x represents
e = 100.0           # percentage floor to indicate sand at this level
n.times{ |i|
  d=2*n-1-2*i       # number of spaces at this level
  e-= c*d           # update percentage floor
  x = [((p - e)/c+0.5).to_i,d].min
  x = 0 if x<0
  w = x/2           # small half count
  z = x-w           # big half count
  d = d-x           # total padding count
  $> << s*i+b+g*w+s*d+g*z+f+r

Ruby, 211

This is mobrule's tour de force, in Ruby. (And still no final newline. :-)

_,e,x,b,f=%w{_ \  x \\ /}
while m>0
s=q<r ?q:r

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