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Since the palindrome code golf was a big hit, here is one that doesn't rely on built in functions.

What is the shortest (in characters) way to write a factorial function?

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closed as off topic by Will Apr 17 '13 at 13:41

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40 Answers

up vote 23 down vote accepted

It's only 2 characters in APL, where most math functions are intrinsic:

?!

Explanation: The question mark operator requests user input, and the monadic exclamation point applies the factorial function. Since the result isn't assigned to any variable or used in further calculations, it gets printed.

APL isn't as popular as it used to be, but one of my customers still has some production APL applications.

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1  
You haven't actually written a factorial function though, innit? –  Menkboy Oct 26 '08 at 12:19
3  
Kind of lame... you didn't really do anything. –  Ed S. Sep 24 '09 at 18:22
7  
... doesn't rely on built in functions ... –  Callum Rogers Aug 25 '10 at 17:16
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Probably the longest entry here, but brainf*ck is special in any case... :)

So, here goes my entry at 93 characters:

,>++++++[<-------->-]<[->+>+<<]>>->>+<<<[>[<[->[-<<+>>>+<]>[-<+>]<<]<[->+<]>>-]<.>>>-]>>>[.-]

Commented and indented:

, 
>++++++ Put 6 in next cell
[<-------->-] Subtract 8 six times to subtract 48
<
[->+>+<<]  Move (0) to (1) and (2)
>>-  Decrement one from (2) as we want to multiply n * n minus 1
>>+  Store 1 in (4) to allow distinguishing 0 separately
<<< Go to (1)
[   A makeshift if($_ != 0)
  >[   While (2) 
    <[   While(1)
      - Subtract one from (1) for multiplication by repeated addition
      >[-<<+>>>+<] Add (2) to (0) and (3)
      >[-<+>] Move data from (3) to (2)
      <<
    ]  
    <[->+<] Copy (0) to (1) for next round of multiplication
    >>- Decrement (2) to go to n minus 2 and so on
  ]
  <.>>>-  Print output from (1) and make (4) = 0 to stop the if
]
>>>[.-]  If we're at (4) (and it is nonzero) we have a 0 as input; so print 1 and stop;

EDIT: Seeing the other language codes do not include input code and just take the number as an argument, I too removed the input part and assumed the number was contained as argument in (0). Now it's reduced to 71 characters:

[->+>+<<]>>->>+<<<[>[<[->[-<<+>>>+<]>[-<+>]<<]<[->+<]>>-]<.>>>-]>>>[.-]

The outputting algorithm is non trivial so I decided not to remove it.

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10  
+1 for commented brainf*ck code - I never understood BF so clearly until now (where 'clearly' is relatively defined vs. what I used to know about it) –  David Koelle Jan 2 '09 at 20:41
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Haskell:

\n->product[1..n]

17 characters, 20 with reasonable whitespace. As a named function:

fac n = product [1..n]

22 characters. Without using product:

fac n = foldr (*) 1 [1..n]

26 characters

These (largely equivalent) implementations have no stack overflow or integer overflow errors. Compiled with ghc, this calculates and prints all 35661 digits of 10000! in 0.11s and all 456575 digits of 100000! in 11.145s on my two year old laptop. Of course, there are doubtless faster algorithms, but that's not bad performance for a naive solution.

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Not the shortest, but certainly the least appropriate technique: C++ templates to compute factorial as part of the type signature of the class:

#include <iostream>

template <int N>
struct Factorial
{
    enum { value = N * Factorial<N - 1>::value };
};

template <>
struct Factorial<0>
{
    enum { value = 1 };
};

int main()
{
        std::cout << "4!=" << Factorial<4>::value << std::endl;
}

This will fail to produce valid answers for even moderate values of N.

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1  
Hah! I read the output as 4 != 24, which is true, of course. xD –  strager Jan 2 '09 at 20:41
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9 bytes of i386 machine-code. Input is EAX, output is EAX.

#AT&T syntax
mov %eax, %ebx
again:
    dec %ebx
    .byte 0x74, 4    #jz (short) done
    mul %ebx
    .byte 0xEB, -7   #jmp (short) again
done:

PS: Anyone know why as won't genetrate short jumps for me?

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My attempt, using C#:

int f(int v){return v<2?1:v*f(v-1);}

38 Characters, counting whitespace.

For those who don't understand the ? operator, it works like this:

  (Condition) ? (Return this if true) : (Return this if false)

So, in my case, it collapses this:

if (v<2)
{
    return 1;
}
else
{
    return v*f(v-1);
}
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13  
Downvoted for explaining ternary operation –  Kevin Oct 27 '08 at 6:06
2  
Kevin, Why? Obviously gogo wanted to know :D –  FlySwat Oct 27 '08 at 23:07
7  
(Reader.KnowsTernaryOperation) ? DownVote() : UpVote() –  Martin Aug 25 '10 at 17:25
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66 characters of Windows cmd.exe batch language (Win2K or later only):

set r=1
for /l %%i in (1,1,%1) do call set/a r=%%r%%*%%i
echo %r%

The recursive version was shaping up to be much larger.

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66 bytes of ARM assembly (thumb2). Not as short as many, but produces a bignum result. I'm sure that a few more bytes could be saved with some care.

// uint32_t factorial(uint32_t n, uint32_t *result, uint32_t length);
// 
// stores n! in the buffer result as a little-endian bignum.  length is
// size of the buffer in (32-bit) words.  It is the caller's responsibility
// to allocate and free the result buffer.  If the buffer is not large
// enough to contain n!, 0 is returned.  On successful exit, the return
// value is the number of (32-bit) words of the buffer that were used to
// store the result.

_factorial:
    push   {r4-r7}
    tst     r2,     r2
    beq     Lerror
    movs    r3,     #1
    str     r3,    [r1]
    tst     r0,     r0
    beq     Ldone
Lloop:
    eors    r6,     r6
    movs    r7,     r3
Lmultiply:
    movs    r5,     r6
    eors    r6,     r6
    ldr     r4,    [r1]
    umlal   r5, r6, r0, r4
    str     r5,    [r1], #4
    subs    r7,     $1
    bne     Lmultiply
    tst     r6,     r6
    beq     LnoOverflow
    adds    r3,     $1
    cmp     r3,     r2
    bhi     Lerror
    str     r6,    [r1], #4
LnoOverflow:
    sub     r1, r1, r3, lsl #2
    subs    r0,     $1
    bne     Lloop
Ldone:
    mov     r0,     r3
Lexit:
    pop    {r4-r7}
    bx      lr
Lerror:
    eors    r0,     r0
    b       Lexit
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30 characters in Python, an improvement of 8 over the other python.

f=lambda n:n<2and 1or n*f(n-1)
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Perl 6:

19 characters.

sub f($n){[*]1..$n}

16 characters

sub f{[*]1..$^n}

If you wanted to call it like '5!'
30 characters.

sub postfix:<!>($n){[*]1..$n}

Or for an anonymous code block
11 characters.

{[*]1..$^n}

say {[*]1..$^n}(5) # 120
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Language: Golfscript, Char count: 10

My first script in golfscript at all:

 ,{1+}%{*}*
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34 in python:

def f(n):return n and n*f(n-1)or 1

34 in C:

int f(int n){return n?n*f(n-1):1;}
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Perl, 32 characters

sub f{$_[0]?$_[0]*f($_[0]-1):1;}
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28 characters in C:

F(n){return n>1?n*F(n-1):1;}

Note that this uses the old-style default-int convention.

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Language: dc, Char count:23

23 chars version:

dc -e'?d[1-dsa*lad1<b]dsbxszp' <<<1000

Edit: More readable (24 chars) version by Hudson

dc -e'?[q]sQ[d1=Qd1-lFx*]dsFxp' <<<1000

I should mention that dc is arbitrary precision calculator.

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Java:

int f(int n){return n>1?f(n-1)*n:1;}

Identical to C.

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F#:

let f n = [1..n] |> Seq.fold ( * ) 1

With spaces: 36 chars. Spaces removed, 30 chars.

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1  
Seq.fold ( * ) 1 [1..n] –  Jon Harrop Apr 18 '10 at 17:01
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Someone posted dc. I'm going to post bc, paste & seq:

20 characters

seq $n|paste -sd*|bc
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Scala:

def f(n:Int)=(1/:(1 to n))(_*_)
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New python record: 28 chars

f=lambda x:+(x<2)or x*f(x-1)
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In the J programming language, factorial is built-in, so:

fact=:!

but that's boring, so let's do it manually:

fact=:*/@:(1+i.)

I guess this little-known language looks pretty unreadable, but here's the equivalent Haskell definition:

fact = foldr1 (*) . \n -> [1..n]
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Skipping the obvious n! in Mathematica, we can do it recursively, like so:

If[#<=#2,#,#0[#,2#2]#0[#-#2,2#2]]&[#,1]&

for a total of 40 characters. This is a more efficient algorithm than the freshman year recursion example, which weights in at a mere 26 characters.

If[#<1,1,#1#0[#-1]]&[#,0]&

Of course, a list-based solution is even shorter (15 characters).

Times@@Range@#&

When golfing in Mathematica, you can save a lot of strokes by (ab)using its very terse syntax for pure functions and function application.

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25 characters in groovy:

def f(n){n<=2?n:n*f(n-1)}
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I tried to get creative with using a lambda instead of a regular function to make it smaller.

However, you can't recurse on an anonymous type, so I get this:

Func<int,int>f=null;f=v=>v<2?1:v*f(v-1);

41 characters.

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40 in python without trying too hard.

def f(n):return (1 if n<2 else n*f(n-1))

EDIT: Make that 38 . I guess I didn't need the extra parens above..

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22 characters of Standard ML:

fun f 0=1|f n=n*f(n-1)
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OCaml:

let rec f n = if n=0 then 1 else n*f(n-1);;
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def f(n): return reduce(lambda x,y: x*y,range(1,n+1))
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C#:

Slightly longer than the previous poster, but more useful as it is not as limited as with an int output, can resolve up to 28! instead of only 13!

Also, v > 1 is easier on the eye than v < 2

decimal f(int v) { return v > 1 ? v * f(v - 1) : 1; }
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