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I was just wondering if treating an extern variable as the source buffer and passing it as an argument to strcpy() or any other function that can result in a buffer overflow is as unsafe and likely to result in buffer overflows as passing it an argument that came from an fgets() function with a specified limit higher than the size of the buffer.

Should special care be used with these extern variables or should they be treated no differently than any other variable?

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What's unsafe about fgets()? It limits buffer length and guarantees a null terminator before the end of that specified length... – user645280 Oct 18 '12 at 14:30
up vote 3 down vote accepted

extern only defines the linkage of an variable it does not change the variable in any other way.

Whether it is safe?

It is as safe/Unsafe as any other variable, the variable being declared extern has no bearing.
Using strcpy is as such Unsafe and may cause buffer overflows.
In C++ better option is to use std::string

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Passing any argument to strcpy is unsafe and likely to result in buffer overflows. extern has no bearing on this fact. The wise man uses std::string (or a Unicode-supporting variant), and never char* or strcpy or any of those.

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"extern variable as the source buffer". Looks like this extern is not destination. – Sergei Nikulov Oct 18 '12 at 14:25
    
Has no bearing on what I said. – Puppy Oct 18 '12 at 17:21

Assuming that you control the use of the variable completely, then it would be as "safe" as any other "global" or even local variable for that matter. If you have no control over the use of the variable and how it is created (e.g., someone else provides the module you are linking to) and you do not know their coding practices, then it would probably be wise to treat the variable with more than the usual skepticism.

In general, though, as a matter of course it would be better to use one of the "safe" strcpy functions that accepts the target buffer length even if you completely control the use of the variable.

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