Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Decompilation so as to fix an old program can be painful.

As I'm a C# developer, there's something strange I don't understand. I would need a C++ tricks expert to help me understand the behaviour of "memcpy()".

Here's what I play with:

unsigned char sdata[] =  { 0x54, 
                           ... many values (=4100) ..., 
                           0x00 };

then

unsigned char BF_PTransformed[4*18] = { 0xC6, 
                                    ... many values (=72) ..., 
                                        0x7B };

and

struct BLOWFISH_CTX 
{
  unsigned long P[16 + 2];
  unsigned long S[4][256];
};

Here are the memcpy() calls:

void BFInit() 
{
    BLOWFISH_CTX* ctx = &this->BlowfishContext; 

    memcpy((void*)ctx->P, this->BF_PTransformed, 18*4);
    memcpy((void*)ctx->S, (void*)this->sdata, 0x100*4*4);
}

Questions

I do not understand how this behaves with higher number of bytes than arrays destination length. Is that about data types?

Can someone explain it so it can be understood by a C# developer?

(And do not even try to mention the word Blowfish. 2 days on this "special" implementation made me sick ahah)

share|improve this question
3  
memcpy is really more of a C thing. In C++, you'd typically use std::copy instead, which is typesafe. – jalf May 7 '11 at 15:16
up vote 5 down vote accepted

I do not undestand how does behave this with higher number of bytes than arrays destination length Is that about data types ?

First, memcpy operates on bytes, not array elements. So if you want to copy an array int[10], for example, you tell memcpy to copy 40 bytes (10*sizeof(int)). So the argument passed to memcpy (40 in this example) can be greater than the number of array elements (10), because each array element takes up more than one byte.

Second, if you genuinely tell memcpy to copy past the end of the array (say, if we passed 43 as the argument to memcpy in the above example), then you would have undefined behavior.

In C and C++, many error conditions are not required to be detected at compiletime or runtime. In C#, an exception would be thrown if you tried something illegal at runtime.

In C++, that happens in some cases too. But in many others, the error isn't detected at all, and what happens is undefined. The application may crash, or it may continue to running in a corrupted state. It may become a security vulnerability, or it may (in theory) make demons fly out of your nose. The language spec simply says nothing about what should happen.

And reading past the end of an array (as you'd do if you tell memcpy to copy more than the length of the array) is one such occasion. If you try to do it, your application has a bug, but there's no saying how it will behave when you try to run it. If you're lucky, it'll crash. In the worst case, it'll continue running, because then it'll be in an inconsistent state, and it might crash later (making the error much harder to diagnose), or it might, instead of crashing, simply produce the wrong results, or it may appear to work correctly when you run it on your computer, but exhibit any of these behaviors when your customer runs your application.

Undefined behavior is bad. Avoid at all costs.

share|improve this answer
    
With those two answers, I know understand where I did not understood correctly the behavior of memcpy. thanks a lot to you two. – Yannick May 7 '11 at 16:01

The memcpy length parameter is in bytes not array elements.

The code would be better written as:

memcpy((void*)ctx->P, this->BF_PTransformed, 18 * sizeof(unsigned long));
memcpy((void*)ctx->S, (void*)this->sdata, 0x100 * 4 * sizeof(unsigned long));
share|improve this answer
    
And even better as: memcpy(ctx->P, this->BF_PTransformed, sizeof(ctx->P)); memcpy(ctx->S, this->sdata, sizeof(ctx-S));. The casting is unnecessary, and using 0x100 in place of 256 in the declaration is weird (not your weirdness - a weirdness in the original code). And assuming sizeof(unsigned long) == 4 is intransigent 32-bit-ism; it won't work correctly on the machines I normally work on (again - a problem in the original code). – Jonathan Leffler May 7 '11 at 15:40
    
thanks for optimization, I know that I have to deal with this. Converting it to C#, i'll try to correct those points. – Yannick May 7 '11 at 15:59

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.