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Inspired by http://xkcd.com/710/ here is a code golf for it.

The Challenge

Given a positive integer greater than 0, print out the hailstone sequence for that number.

The Hailstone Sequence

See Wikipedia for more detail..

  • If the number is even, divide it by two.
  • If the number is odd, triple it and add one.

Repeat this with the number produced until it reaches 1. (if it continues after 1, it will go in an infinite loop of 1 -> 4 -> 2 -> 1...)

Sometimes code is the best way to explain, so here is some from Wikipedia

function collatz(n)
  show n
  if n > 1
    if n is odd
      call collatz(3n + 1)
    else
      call collatz(n / 2)

This code works, but I am adding on an extra challenge. The program must not be vulnerable to stack overflows. So it must either use iteration or tail recursion.

Also, bonus points for if it can calculate big numbers and the language does not already have it implemented. (or if you reimplement big number support using fixed-length integers)

Test case

Number: 21
Results: 21 -> 64 -> 32 -> 16 -> 8 -> 4 -> 2 -> 1

Number: 3
Results: 3 -> 10 -> 5 -> 16 -> 8 -> 4 -> 2 -> 1

Also, the code golf must include full user input and output.

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4  
20  
must not be vulnerable to stack overflows : You should not have posted it here then! ;) –  Felix Kling Mar 5 '10 at 16:35
51  
My friends stopped calling me, does that mean I solved the problem? –  Martin Mar 5 '10 at 16:38
18  
You're on SO, but once had friends? ... what was that like? –  Pops Mar 5 '10 at 17:11
5  
The assembler answer is cool, but it's a bit anti-code-golf to select the longest answer! –  gnibbler Mar 6 '10 at 6:30

70 Answers 70

C# : 659 chars with BigInteger support

using System.Linq;using C=System.Console;class Program{static void Main(){var v=C.ReadLine();C.Write(v);while(v!="1"){C.Write("->");if(v[v.Length-1]%2==0){v=v.Aggregate(new{s="",o=0},(r,c)=>new{s=r.s+(char)((c-48)/2+r.o+48),o=(c%2)*5}).s.TrimStart('0');}else{var q=v.Reverse().Aggregate(new{s="",o=0},(r, c)=>new{s=(char)((c-48)*3+r.o+(c*3+r.o>153?c*3+r.o>163?28:38:48))+r.s,o=c*3+r.o>153?c*3+r.o>163?2:1:0});var t=(q.o+q.s).TrimStart('0').Reverse();var x=t.First();q=t.Skip(1).Aggregate(new{s=x>56?(x-57).ToString():(x-47).ToString(),o=x>56?1:0},(r,c)=>new{s=(char)(c-48+r.o+(c+r.o>57?38:48))+r.s,o=c+r.o>57?1:0});v=(q.o+q.s).TrimStart('0');}C.Write(v);}}}

Ungolfed

using System.Linq;
using C = System.Console;
class Program
{
    static void Main()
    {
        var v = C.ReadLine();
        C.Write(v);
        while (v != "1")
        {
            C.Write("->");
            if (v[v.Length - 1] % 2 == 0)
            {
                v = v
                    .Aggregate(
                        new { s = "", o = 0 }, 
                        (r, c) => new { s = r.s + (char)((c - 48) / 2 + r.o + 48), o = (c % 2) * 5 })
                    .s.TrimStart('0');
            }
            else
            {
                var q = v
                    .Reverse()
                    .Aggregate(
                        new { s = "", o = 0 }, 
                        (r, c) => new { s = (char)((c - 48) * 3 + r.o + (c * 3 + r.o > 153 ? c * 3 + r.o > 163 ? 28 : 38 : 48)) + r.s, o = c * 3 + r.o > 153 ? c * 3 + r.o > 163 ? 2 : 1 : 0 });
                var t = (q.o + q.s)
                    .TrimStart('0')
                    .Reverse();
                var x = t.First();
                q = t
                    .Skip(1)
                    .Aggregate(
                        new { s = x > 56 ? (x - 57).ToString() : (x - 47).ToString(), o = x > 56 ? 1 : 0 }, 
                        (r, c) => new { s = (char)(c - 48 + r.o + (c + r.o > 57 ? 38 : 48)) + r.s, o = c + r.o > 57 ? 1 : 0 });
                v = (q.o + q.s)
                    .TrimStart('0');
            }
            C.Write(v);
        }
    }
}
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Windows cmd - 68 chars

@set/pd=
:l 
@set/ad=(d+d%%2*(d*5+2))/2&echo %d%&if %d% NEQ 1 goto:l
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Javascript, 67 56 chars

for(a=[i=prompt()];i-1;a.push(i=i%2?i*3+1:i/2));alert(a)
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MATLAB 7.8.0 (R2009a): 58 characters

n=input('');while n>1,n=n/2+rem(n,2)*(n*5+2)/2;disp(n);end

Test case:

>> n=input('');while n>1,n=n/2+rem(n,2)*(n*5+2)/2;disp(n);end
21
    64
    32
    16
     8
     4
     2
     1
share|improve this answer
1  
Hey gnovice, we can avoid the disp(n), with: n=input('');while n>1,n=n/2+rem(n,2)*(n*5+2)/2,end --- *50 characters! –  Jacob Mar 18 '10 at 14:54

Fortran: 71 chars

n=1
1 if(n==1)read*,n
n=merge(n/2,3*n+1,mod(n,2)==0)
print*,n
goto1
end

Because someone had to do it :)

The count includes required newlines. Fully conformant Fortran 95 (and later) code. Includes full I/O, and performs as many times as you want!

Edit: one less char using a goto (points for style!)

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Ruby, 41 chars

n=gets.to_i
p n=[n/2,n*3+1][n%2]while n>1
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Since there seems to be a bit of interest with the LOLCODE solution, I thought I'd compare implementations of the two solution approaches (iterative and tail-recursive) in this language.

First, there is the iterative solution at 203 characters:

HAI 1.2
    I HAS A n
    GIMMEH n
    IM IN YR l
        VISIBLE n
        BOTH SAEM 1 BIGGR OF 1 n
        O RLY?
            YA RLY
                GTFO
        OIC
        MOD OF n 2
        WTF?
            OMG 0
                n R QUOSHUNT OF n 2
                GTFO
            OMG 1
                n R SUM OF 1 PRODUKT OF 3 n
        OIC
    IM OUTTA YR l
KTHXBYE

To give you the gist of what's going on:

  • Input is read from STDIN using the GIMMEH keyword
  • Looping is done between the IM IN YR <loopname> and IM OUTTA YR <loopname> statements
  • VISIBLE is used to print to STDOUT
  • The O RLY?, YA RLY, and OIC statements handle the conditional If/Then/Else logic
  • The WTF?, OMG <expression>, and OIC statements handle the conditional Switch/Case logic
  • Assignment is performed using <variable> R <value>
  • GTFO breaks from a loop or conditional Switch/Case

And then there is the tail-recursive solution which manages to shave off 2 additional characters for a final count of 201:

HAI 1.2
    HOW DUZ I c YR n
        VISIBLE n
        DIFFRINT 1 BIGGR OF 1 n
        O RLY?
            YA RLY
                MOD OF n 2
                WTF?
                    OMG 0
                        c QUOSHUNT OF n 2
                        GTFO
                    OMG 1
                        c SUM OF 1 PRODUKT OF 3 n
                OIC
        OIC
    IF U SAY SO
    I HAS A i
    GIMMEH i
    c i
KTHXBYE

Differences here are the definition of a function between the HOW DUZ I <funcname> YR <args> and IF U SAY SO statements. Functions are called with <funcname> <args>.

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PHP, 78 72 67 characters

I actually wrote this program about two years ago, after I read about the sequence in a Pickover book. I cleaned it up a bit, and this is the smallest I can make it and still have user input and a nice, readable output:

<?$n=fgets(STDIN);while($n!=1){$n=(($n&1)==0)?($n/2):(($n*3)+1);echo"$n\n";}?>

One has to assume short tags are enabled, and I'm not so sure that input will work on all consoles. But it works perfectly on my Windows machine.


Update: By cheating on the math just a little, we can shave off some characters:

<?$n=fgets(STDIN);while($n!=1){$n=(($n&1)==0)?$n/2:$n*3+1;echo"$n\n";}?>

Update:

  • Given that $n&1 returns either 1 or 0, we can take advantage of PHP's loose typedness and remove a couple more characters.
  • Also, incorporating Christian's comment below (with a minor alteration to prevent infinite looping), we can remove one more.
  • Finally, since PHP scripts don't need a terminating ?>, we can get rid of yet two more characters:

The end result:

<?$n=fgets(STDIN);while($n>1){$n=(!($n&1))?$n/2:$n*3+1;echo"$n\n";}
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PHP

function Collatz($n)
{
        $i = 0;
    while($n>1)
    {
        if($n % 2)
        {
            $n = (3*$n) + 1;
            $i++;
            echo "step $i:  $n <br/>";
        }

        else 
        {
            $n = $n/2;
            $i++;
            echo "step $i:  $n <br/>";
        }
    }

}
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1  
Dont be hard on yourself. You wont learn unless you contrib and get feedback. Check the PHP answer above for a shorter way to do it. –  Christian Jun 6 '10 at 10:06

Python:

def collatz(n):
    if (n%2) == 0:
        return n/2
    else:
        return 3*n+1
def do_collatz(n):
    while n > 1:
        print n
        n = collatz(n)
    print n
do_collatz(int(input("Start number: ")))

Not vulnerable to stack overflows, but does not terminate on a sequence that does not converge on 1. (edit: forgot the input part)

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3  
That is kind of the point ;) –  Josh Lee Mar 5 '10 at 17:34
14  
Well done Raceimaztion, now as a bonus challenge, simply prove that your program always terminates, or find an example where it doesn't. –  jsn Mar 5 '10 at 17:38
1  
@jsn, maybe I should make a code golf to find the number where it doesn't and see the people suffer :) –  Earlz Mar 5 '10 at 17:50
3  
I once read about a professor who puts such unsolved problems as questions on his final exams for some advanced class, and every once in a rare while a student solved one... –  rmeador Mar 5 '10 at 20:54
1  
@Kugel - prove it :) –  Yuval Adam Mar 7 '10 at 8:59

Perl, 59 characters:

sub c{print my$x="@_\n";@_=$x&1?$x*3+1:$x/2,goto&c if$x!=1}
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VB.Net, about 180 characters

Sub Main()
    Dim q = New Queue(Of Integer)
    q.Enqueue(CInt(Console.ReadLine))
    Do
        q.Enqueue(CInt(If(q.Peek Mod 2 = 0, q.Dequeue / 2, q.Dequeue * 3 + 1)))
        Console.WriteLine(q.Peek)
    Loop Until q.Peek = 1
End Sub

funny thing is converting this code into c# create more characters

to make it work in an empty .vb file (about 245 characters)

Imports System.Collections.Generic
Imports System
Module m
    Sub Main()
        Dim q = New Queue(Of Integer)
        q.Enqueue(CInt(Console.ReadLine))
        Do
            q.Enqueue(CInt(If(q.Peek Mod 2 = 0, q.Dequeue / 2, q.Dequeue * 3 + 1)))
            Console.WriteLine(q.Peek)
        Loop Until q.Peek = 1
    End Sub
End Module
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Bash, 130 including spaces and newlines:

#!/bin/bash
if [ $1 == 1 ]; then echo $1
else if [ $(($1%2)) == 0 ]; then n=$(($1/2))
else n=$(($1*3+1))
fi
echo "$1 -> `c $n`"
fi

This assumes that c is the name of the script file, and it is in the path of the user who's running the script.

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F# 82 Chars

let rec f n=printfn "%A" n;if n>1I then if n%2I=0I then f(n/2I)else f(3I*n+1I)
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J, 45 characters

(-: * 0&=@(2&|)) + (1 + 3&*) * -.@(0&=@(2&|))

I'm no expert in J. Since the function for mean is +/%#, I'm sure this can be made shorter.

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1  
I like how the program starts with a smile :-) –  Kuroki Kaze Mar 10 '10 at 10:04

Microsoft Small Basic

TextWindow.Write( "Number: " )
n = TextWindow.ReadNumber()
TextWindow.Write( "Results: " )
While ( n > 1 )
  TextWindow.Write( n + " -> " )
  If Math.Remainder( n, 2 ) = 0  Then
    n = n / 2
  Else
    n = n * 3 + 1
  EndIf 
EndWhile
TextWindow.WriteLine(1) 

You can run it at: http://smallbasic.com/program/?ZZR544

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GW-BASIC - 54 chars

1INPUT N
2N=(N+(N*5+2)*(N MOD 2))/2:?N:IF N>1GOTO 2
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Based on ar's code, here's a perl version which actually conforms to the output requirements

perl -E 'print"Number: ";$_=<STDIN>;chomp;print"Results: $_";$_=$_%2?$_*3+1:$_/2,print" -> ",$_ while$_!=1;say""'

Length: 114 counting the perl invocation and quotes, 104 withouit

I'm sure some experienced golfer can reduce this crude version further.

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C#, 88 chars I think. Recursive

void T(int i,string s){Console.Write("{0}{1}",s,i);if(i!=1)T(i%2==0?i/2:(i*3)+ 1,"->");}

Plus this initial call

T(171, "");

Here is a non-recursive method, 107 chars I think

void T2(int i){string s="";while(i>=1){Console.Write("{0}{1}",s,i);i=i==1?-1:i=i%2==0?i/2:(i*3)+1;s="->";}}
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6  
Plus using statements, plus a class definition, plus a Main method, plus a Console.ReadLine call, plus an int.Parse or long.Parse or ulong.Parse call. You need a full program with full user input and output.. –  R. Martinho Fernandes Mar 5 '10 at 20:53

Miranda (101 characters)

c n=" 1",if n=1
   =" "++shownum(n)++c(n*3+1),if n mod 2=1
   =" "++shownum(n)++c(n div 2),otherwise

(whitespace is syntactically important)

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C++ 113 100 95

#include <iostream>
int main(int i){for(std::cin>>i;i>1;i=i&1?i*3+1:i/2)std::cout<<i<<" -> ";}
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VBScript: 105 Characters

Apparently I'm a glutton for punishment.

c(InputBox("?"))
Public Sub c(i)
msgbox(i)
If i>1 Then
If i mod 2=0 Then
c(i/2)
Else
c(3*i+1)
End If
End If
End Sub
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Factor:

without golfing

USE: math
: body ( n -- n ) >integer dup . "->" . dup odd? = [ 3 * 1 + ] [ 2 / ] if ;
: hailstone ( n --  ) dup 1 > [ body hailstone ] [ . ] if  ;
21 hailstone

golfed:

21 [ dup 1 > ] [ >integer dup . "->" . dup 2 mod 1 = [ 3 * 1 + ] [ 2 / ] if ] while .

Output:

21
"->"
64
"->"
32
"->"
16
"->"
8
"->"
4
"->"
2
"->"
1
share|improve this answer

Powershell : 80 characters

One-liner:

"Results: $(for($x=read-host Number;1%$x;$x=@($x/2;3*$x+1)[$x%2]){""$x ->""}) 1"

Pretty-printed:

"Results: $( for( $x = read-host Number; 1%$x; $x = @( $x/2; 3*$x+1 )[ $x%2 ] )
             { 
                 ""$x ->"" 
             }
           ) 1"

Without input prompt and output formatting - 44 characters:

for($x=read-host;1%$x;$x=@($x/2;3*$x+1)[$x%2]){$x}1
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PHP. 69 Characters

Thanks to Danko Durbić for the fgets(STDIN), hope you dont mind :)

<?$i=fgets(STDIN);while($i!=1){echo ($i=$i%2?$i*3+1:$i/=2),"\r\n";}?>
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bash 57/61/60

Another bash entry. Does not perform infinite precision math, and it may overflow.

#!/bin/bash
x=$1;echo $x;((x>1))&&$0 $((x%2?x*3+1:x/2))

A version that should not overflow could be

#!/bin/bash
x=$1;echo $x;((x>1))&&exec $0 $((x%2?x*3+1:x/2))

(edit) An iterative version as well:

#!/bin/bash
for((x=$1;x>1;x=x%2?x*3+1:x/2));do echo $x;done
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JavaScript, 61 70 character with input

Iterative, precision depends on JS limits

var i=prompt('');while(i>1){console.log(i);i=(i%2)?3*i+1:i/2}
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C: 63 chars

main(x){scanf("%d",&x);while(x>printf("%d ",x=x&1?3*x+1:x/2));}

This is based on an answer from KennyTM. The for loop was chaged to a while loop and the code brought inside the while.

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Go, 130 characters

package main
import(."os"
."strconv")
func main(){n,_:=Atoi(Args[1])
println(n)
for n>1{if n%2!=0{n=n*3+1}else{n/=2}
println(n)}}

Example

./collatz 3
3
10
5
16
8
4
2
1
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Fortran - 60 Chars

read*,n
1 if(n/2*2<n)n=6*n+2
n=n/2
print*,n
if(n>1)goto1
end
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