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I saw in a comment that using __func__ is a security risk. I need to understand how is that the case?

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WHERE DID YOU SEE IT? –  0x90 Oct 14 '12 at 12:45
    
Short answer: Someone wrote something stupid in a comment. Happens to the best of us. –  Jens Oct 14 '12 at 13:37
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up vote 4 down vote accepted

Using __func__ reveals the function name in the binary, which ease the work of an attacker that has an access to the binary.

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if the function name is sha256, aes_decrypt or get_secret_key, I assume it might help him. –  MByD Oct 14 '12 at 12:54
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__func__ is not a macro. –  Blue Moon Oct 14 '12 at 12:56
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@BinyaminSharet If a key is on untrusted systems, it is by definition not secret. –  CodesInChaos Oct 14 '12 at 12:59
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My point is that if the security of your application depends on the application being hard to analyze, the application is broken in the first place. –  CodesInChaos Oct 14 '12 at 13:12
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I still can't understand how knowing a function name makes your program less secure. "Easier to crack" and "less secure" are not necessarily the same thing. –  dreamlax Oct 14 '12 at 13:18
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It makes reverse engineering easier. So if you want to keep the way your application works secret, then it makes an attacker's life easier.

That's relevant for DRM features, or if you want to make it harder to imitate your algorithms in competing applications.

But it does not affect security, since an application where reversing shows vulnerabilities was insecure in the first place.

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If your application's security relies on its function names remaining a secret then it is a security risk to use __func__, as the compiler will need to store the function name somewhere in the compiled binary.

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__func__ is the C99-standard predefined identifier that expands into a character array variable containing the function name when it is used inside of a function. From C99 6.4.2.2/1 describes:

The identifier __func__ is implicitly declared by the translator as if, immediately following the opening brace of each function definition, the declaration

static const char __func__[] = "function-name"; appeared, where function-name is the name of the lexically-enclosing function. This name is the unadorned name of the function.

Note that it is not a macro and it has no special meaning during preprocessing.

Look at this link for more information about __func__ at:
http://www.open-std.org/jtc1/sc22/wg21/docs/papers/2004/n1642.html

If the solution relies on the expansion involved in the predefined context-sensitive constant __func__, it cannot be implemented in a function safely and provide the same convenience.

__func__ is textually expanded at the point of its invocation, hence, it could easily affect the flow of control of the invoking code by evaluating break, continue, or return statements or failing to properly terminate if statements. The effects of invoking it can be surprising and lead to subtle flaws.

Prefer inline or static functions to function-like macros or __func__.

However, in cases where defining a __func__ is unavoidable, the definition should avoid statements that change the control flow of the invoking code.And ideally, it should be a single expression.

More idea and example codes:
https://www.securecoding.cert.org/confluence/display/seccode/PRE13-C.+Avoid+changing+control+flow+in+macro+definitions

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Not sure how this answers the question, which is specifically about the security risks and not the general operation/implementation of __func__. –  Adam Liss Oct 14 '12 at 13:11
    
I tried making the use of __func__ more understandable and the fact that its not a macro as OP says in the question. "The effects of invoking it can be surprising and lead to subtle flaws." and the links given in the answer very well point to how it can cause other dependent modules to behave unpredictably and hence less securely. –  askmish Oct 14 '12 at 13:14
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