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I found an obfuscated maze generation program from http://www.mazeworks.com/mazegen/maze_faq

int a[1817];main(z,p,q,r){for(p=80;q+p-80;p-=2*a[p])for(z=9;z--;)q=3&(r=time(0)
+r*57)/7,q=q?q-1?q-2?1-p%79?-1:0:p%79-77?1:0:p<1659?79:0:p>158?-79:0,q?!a[p+q*2]
a[p+=a[p+=q]=q]=q:0:0;for(;q++-1817;)printf(q%79?"%c":"%c\n"," #"[!a[q-1]]);}

i cannot understand why main(z,p,q,r) is used.what gets assigned to these variables?

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closed as not a real question by Vladimir, MSalters, mathieu, undefined is not a function, Lundin Jan 11 '13 at 13:53

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1 Answer 1

up vote 3 down vote accepted

It's obfuscted, you are not supposed to understand it :)

This is an obscure way to declare integer variables. When you don't explicitely write the type of a variable in c, int is assumed. The part main(z,p,q,r) could also be written as int main(int z, int p, int q, int r), but that would be boring. No values get passed to these variables when main is called, so at the beginning of the function they propably uninitialized. z, p and q are initialized with the value of argc and the pointer addresses of argv and envp. The value of r should be undefined. But most of these values are immediately discarded. The value of the variable p, for example, is initialized in the for statement the main function starts with, and the variable z in the next for statement.

Is it legal according to ANSI to have a main function with four integers as arguments? Is it good practice to omit the type of int variables? Should you abuse function parameters as local variables? Who cares, in obfuscation it's correct when it runs.

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i wanted to know if they're are initialized like argc,argv,envp. but they're not. thank you for the help. –  gen3 Jan 11 '13 at 13:29
    
@AtulVinayak Note that q is used before being initialized. So this still depends on q being assigned some non 0 value… Typically the pointer to the environment. –  kmkaplan Jan 11 '13 at 13:30
    
q is initialized with q=3&(r=time(0)+r*57)/7.none are initialized it seems. –  gen3 Jan 11 '13 at 13:33
    
@gen3 q is first used in the test part of the first for loop. This is before the q=3&(r=time(0)+r*57)/7 part. Thus q has to be different from zero for the program to do anything. –  kmkaplan Jan 11 '13 at 13:40
    
sorry.yes you're right.but then it cannot be the envp right? it doesn't make sense. –  gen3 Jan 11 '13 at 13:40
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