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I am now confused about this code.

int flag = 1;
struct {
    char * data;
}
neco;
if(flag) {
    neco.data = "index.html";
}
// insert code here...
std::cout << neco.data;
}

Is secure to print neco.data after "if" block, or memory allocated inside if block is "cleaned" after "if" block ends?

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What do you mean by "secure"? –  Jonathan Grynspan Feb 28 '13 at 7:37
    
This is not C/C++, it's C++. –  Daniel Kamil Kozar Feb 28 '13 at 7:38
    
@Daniel Kamil Kozar: yes code is c++, but the problem is same for all those languages –  Krab Feb 28 '13 at 7:38

2 Answers 2

up vote 5 down vote accepted

Is secure to print neco.data after "if" block, or memory alocated inside if block is "cleaned" after "if" block ends?

String literals never go out of scope. The program itself is their scope.

As us2012 mentioned in the comments, you need to make sure neco.data is initialized or never use it if that branch wasn't taken.

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+1, but I would add that the code provided by OP is may not be safe as neco.data is uninitialized if flag == 0. (It currently says int flag = 1; but who knows when that might change... –  us2012 Feb 28 '13 at 7:42
    
@us2012 Good call. –  cnicutar Feb 28 '13 at 7:44

Is secure to print neco.data after "if" block, or memory alocated inside if block is "cleaned" after "if" block ends?

The string literal in question, "index.html", will continue to exist past the end of the if block, so in this respect the code is fine.

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