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I am passing a local buffer to a function:

void func1()
{
    char buffer[128];
    func2(buffer); 
}

void func2(char *buff)
{
     strcpy(buff, "Some String");
}

Now when I look at the value of buff after function call, it just has "S" and rest is empty.

Now, if I make buffer global or static, then I can rx the whole string.

My question here is that we are passing the address of buffer to the function, so it should not matter if it is local or global. But, for the case of declaring as local, I do not get data back in my buffer.

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It prints Some String to me. It is, however, not a good practice to do this kind of buffer manipulation... –  Diego Sevilla Jul 14 '11 at 23:57
    
@Diego, why not? It's a very common idiom in C. –  Carl Norum Jul 15 '11 at 0:00
    
Could you please explain why this is not a good practice? –  jscode Jul 15 '11 at 0:00
    
@jscode, it's just fine. accept(2) works exactly this way, for example. –  Carl Norum Jul 15 '11 at 0:02
1  
@Carl, @jscode, I don't like exposing stack-based local buffers to outer functions. I like them more to be dynamically-allocated. Call me too stack-based exploit safe :) –  Diego Sevilla Jul 15 '11 at 0:06

4 Answers 4

Because you declared your buffer on the stack, it is undefined after func1 exits. If you declared it to be global or static, however, its scope would not be restricted to the function call and thus you could continue to access it. Just having the buffer's address does not magically make its contents valid.

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I check the value just in the function –  jscode Jul 14 '11 at 23:56
    
Then you did something wrong: ideone.com/BKA5E –  Diego Sevilla Jul 14 '11 at 23:58
    
Not according to your question: "Now when I look at the value of buff after function call, it just has 'S' and rest is empty." –  Chris Frederick Jul 14 '11 at 23:58
    
Chris, after the function call refers to the func2 function call, not func1, because after the func1 call the variable just doesn't exist. –  Diego Sevilla Jul 15 '11 at 0:04
    
As @Chris has said, your buffer was placed on the stack. The reason you may still be able read the buffer (even though it's out of scope) is because the memory that it points to still happens to contain valid data, however it is surely doomed to be overwritten when the stack climbs back up -- for instance by calling another function. –  Peter Jul 15 '11 at 0:08

When you say "the value of *buff" in the debugger, you realize that is just one character of the string, right? The rest of the characters are next to it on the stack.

I'm not going to bother running this code. Everyone else here says it is working just fine.

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I originally thought that this might have been the actual solution—verifying the content of the entire buffer with printf rather than with the debugger—but @jscode's response to my answer makes it clear that it's more complicated than that. –  Chris Frederick Jul 15 '11 at 18:37

Your code is ok - how are you looking at the contents of the buffer? If you add a printf("%s\n", buffer) at the end of func1(), you'll see that it's working just fine.

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I have a break point just after the function call. And I can see just the first char from func2. –  jscode Jul 15 '11 at 0:02
    
@jscode, as other people have mentioned, there's no reason that buffer has to contain useful data after the function call. Since you don't do anything with buffer after that point, the compiler is free to do whatever it wants to with that memory. Add the printf() call - you'll see it works as you would expect it to. –  Carl Norum Jul 15 '11 at 0:03

It is not obvious what is wrong here, but since you have tagged the question "RTOS", is it possible that this task's stack is too small to accommodate a 128 byte array?

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