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I have some code here to call minizip(), a boilerplate dirty renamed main() of the minizip program, but when I compile, I get undefined reference to `minizip(int, char*)*. Here's the code.

int minizip(int argc, char* argv[]);

void zipFiles(void)
{
 char arg0[] = "BBG";
 char arg1[] = "-0";
 char arg2[] = "out.zip";
 char arg3[] = "server.cs";

 char* argv[] = {&arg0[0], &arg1[0], &arg2[0], &arg3[0], 0};

 int argc = (int)(sizeof(argv) / sizeof(argv[0])) - 1;

 minizip(argc, argv);
}

int minizip(argc,argv)
    int argc;
    char *argv[];
{
    ...
}
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1  
0% Acceptence Rate!!!!!!!!! Good luck getting an answer. –  Ash Burlaczenko Aug 21 '10 at 8:33
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2 Answers

up vote 2 down vote accepted

Is all of that code in the same file? If not, and if the caller is C++ code and minizip is C code, the caller might need the minizip declaration within an extern "C" block to indicate that it will be calling a C function and therefore will need C linkage.

(Also, don't retype error messages. Copy and paste them so that they are exact. In this case, the compiler most likely reported an undefined reference to minizip(int, char**).)

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This fixed it, thanks. –  Jookia Aug 21 '10 at 8:39
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Why are you declaring the function arguments again in:

int minizip(argc,argv)
    int argc;
    char *argv[];
{
    ...
}

It' should say

int minizip(int argc,char *argv[])
    {
        ...
    }
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1  
It's the legacy "K&R C" (pre-ISO) style for declaring function parameters. –  jamesdlin Aug 21 '10 at 8:42
    
Interesting, doesn't work on gcc though –  kirbuchi Aug 21 '10 at 8:46
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