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Generate the Fibonacci sequence in the fewest amount of characters possible. Any language is OK, except for one that you define with one operator, f, which prints the Fibonacci numbers.

Starting point: 25 14 characters in Haskell:

f=0:1:zipWith(+)f(tail f)

f=0:scanl(+)1f
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35  
I can't think of a single course where you'd start with 25 characters of Haskell and be asked to reduce it in any language you choose. –  Claudiu Oct 24 '08 at 14:42
3  
Do languages such as Mathematica with a built-in Fibobnacci function count? –  Adam Rosenfield Oct 24 '08 at 18:31
1  
@adam - good question.. you should put it in, but people might be unhappy with it =P. then again, we're all using built-in list operations and such.. tough where to draw the line. –  Claudiu Oct 24 '08 at 21:54

36 Answers 36

J - 20 characters

First n terms:

(+/@(2&{.),])^:n i.2
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Very old post but

f(){int cn=2,*n=calloc(9,9);n[1]=1;while(cn<32)printf("%d ",n[cn]=n[cn-1]+n[cn++-2]);} 85char in C.

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Euphoria: 44 characters

object f=1&1 loop do f&=f[$]+f[$-1]until 0

Keeps on generating until RAM or doubles run out.

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Lucid

f = 1 fby 1 fby f + prev f;

27 characters, including the spaces.

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Rexx:

arg n;a=1;b=1;do i=1 to n;say a b;a=a+b;b=a+b;end

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Java Iterative (73)

void f(int n){for(int a=1,b=1;n-->0;b=a+(a=b)){System.out.print(a+",");}}

Ruby (46)

def f(n);a,b=1,1;1.upto(n){p a;b=a+(a=b);};end

Update: Ruby(42)

def f(n);a=b=1;n.times{p a;b=a+(a=b);};end
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