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I am getting this weird behavior when using cout in my script.

My code is layed out similar to the following;

...
char *input = realpath(argv[1], NULL);
char *output = argv[2];

char *tarout = new char[strlen(output)+6];
strcpy(tarout, output);
strcat(tarout, ".temp");

cout << "Tarout: " << tarout << endl;

int tRet = tarball(input, tarout);
if(tRet != 1) {
    cerr << "Error: Could not compress directory!\nHalting package creation!" << endl;
    return 0;
}

int gRet = gzip(tarout, output);
if(gRet != 1) {
    cerr << "Error: Could not compress directory!\nHalting package creation!" << endl;
    return 0;
} else {
    cout << "TAROUT: " << tarout << endl;
    if((remove(tarout))!=0) {
        cerr << "Warning: Could not delete temporary file!" << endl;
        return 0;
    }
}
...

Basically this program creates a tar file and then compresses it with gzip, this is not the 100% actual code so it may not give the same odd behavior as have I been receiving.

If I removed the first cout << "TAROUT: " << tarout << endl; the second cout << "TAROUT: " << tarout << endl; would return nothing and the temporary file would not get removed, why is that?

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4  
Why aren't you using std::string? –  GManNickG Feb 19 '11 at 20:47
    
Because I need to use chars for the "libtar" and "zlib" libraries and std::string does not return char* natively. It is also just a huge waste to convert from char* to string, and then back to char*. –  MetaDark Feb 19 '11 at 20:49
2  
std::string has the c_str() method. –  zvrba Feb 19 '11 at 21:01
    
c_str() returns const char* not char* –  MetaDark Feb 19 '11 at 21:07
    
@Meta: You can add '\0' to the string, then take the address of the first element: std::string tarout = output; tarOut += '\0'; tarball(..., &tarout[0]);. Even then, it just looks like the API for tarball and gzip (just a quick browse online; these are horribly documented) is merely poorly designed, and that the functions should have and could work correctly if the parameters were changed to const char*. If that's the case, just do const_cast<char*>(tarout.c_str()). If none of those, use std::vector<char>. The point is that you never use delete in your code, or it's wrong. –  GManNickG Feb 19 '11 at 21:08
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1 Answer

up vote 2 down vote accepted

new/malloc do not initialize memory, so I'm fairly certain that you have no NULL terminator at the end of tarout.

I suspect if you run your original code through a debugger or simply print out *(tarout+5), you would see that there is no '0' there.

Given your comments regrading the use of std::string, I would write:

const char * file_ext = ".temp";

// no magic numbers...and an obvious + 1 for null terminator
size_t len = strlen(output)+strlen(file_ext)+1;

char *tarout = new char[len];

memset(tarout, 0, len);

strcpy(tarout, output);
strcat(tarout, file_ext);

// If you feel memset is wasteful, you can use
*(tarout+len-1) = 0;

...
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