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s=p=1;exec"if s%p*s%~-~p:print`p`+','+`p+2`\ns*=p*p;p+=2\n"*999

Source.

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Dude...seriously? –  st0le Dec 25 '10 at 5:59
    
This is not syntactic "sugar". –  Noufal Ibrahim Dec 25 '10 at 8:27
4  
obfuscated python !! who needs that ? –  easysid Dec 25 '10 at 17:18

3 Answers 3

up vote 11 down vote accepted

Here is an unraveling of the basic idea.

# p = 1; s = p
s=p=1
#exec"if s%p*s%~-~p:print`p`+','+`p+2`\ns*=p*p;p+=2\n"*999
for i in range(999):
    # s%p = remainder of s/p
    # ~p = 1s complement of p
    if s%p*s%~-~p:
        # `p` = repr(p)
        print`p`+','+`p+2`
    # s = s*p*p
    s*=p*p
    # p = p+2
    p+=2
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Could you clarify the part "s%~-X", where X is already explained? –  hhh Dec 25 '10 at 6:27
    
Apparently, "~-~x" means (1st comp (- (1st comp x)))) so is it just 1st complement then taking - and then again 1st complement? –  hhh Dec 25 '10 at 6:37
1  
@HH: the ~-X basically does a x-1, but since that would require ( and ), this is shorter ;) The s% part is simply a modulo –  Wolph Dec 25 '10 at 6:41
    
FWIW, ~-~p is equal to -p - 2 because of how 1's complement works, so the conditional works out to (s mod p) * (s mod (-p - 2)) –  Haldean Brown Dec 25 '10 at 6:43
1  
(...) are needed due to the order of operations, negation > complement > mod > (mult, div) > (subtraction, addition) (off the top of my head) –  kevpie Dec 25 '10 at 6:57

It calculates and prints the sets of twin prime numbers.

3,5
5,7
11,13
17,19
29,31
41,43
59,61
71,73
101,103
107,109
137,139
.....

Very cool :)

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The code is iterative.

  1. s=p=1, initialization
  2. exec"f(...)"*999 is the same as for i in range(999):f(...)":
  3. s%p is a modulo
  4. p*s is a multiplication (x,y), binary operation
  5. ~-~ explained here.
  6. \n means line break,
  7. \ns means a line break and s is a part of the declaration s*=p*p;
  8. p+=2 means the assignment p=p+2

Hopefully, other people can fill the gaps. For futher investigation, what is its recursive equation?

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