Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

Why does this print out "test"?:

    char *str;
    str = (char *)malloc(1);
    str[0] = 't';
    str[1] = 'e';
    str[2] = 's';
    str[3] = 't';

I'm trying to dynamically expand a string and trying to understand how malloc/realloc works and the above behavior is confusing me as to malloc()/realloc() is advisable for expanding char* .

Thanks in advance.

share|improve this question
    
because it is C and not java... bound checking are let to very low level paging based on big blocks. If it looks like to work, you might be sure you corrupted other parts of your program, it will fail unexpectidly somewhere else... C require from programmers to take care of not doing that... –  philippe lhardy Mar 12 '13 at 19:16
    
Minor point in the broader context of the question (which has already been answered), but don't cast malloc in standard C either. Unlike C++, it's considered bad practice to do it in C, and all it can really do is hide an error (not including stdlib.h) and make code maintenance issues, ex: you change the type of the variable used in the malloc call 6 months later, then have to fix up the casts. –  Randy Howard Mar 12 '13 at 19:33

3 Answers 3

up vote 2 down vote accepted

You are writing beyond the end of your "officially" allocated memory. Most memory allocation systems have a minimum size that they use internally and you are probably not actually going beyond that boundary, so your code appears to be working. If you make the string long enough, you will eventually pass a boundary that matters to the OS and your program will crash.

You could assign a random number to str and then treat it as a pointer, too, and every so often it will actually work. But you have no idea what you might be writing over. Same with your memory overrun. The memory allocator may pack allocations tightly enough that you are overwriting something else in your program.

You should ALWAYS ensure that you do not go beyond the bounds of any array. EVER. Buffer overruns (and underruns) are exactly what many, many hacks take advantage of to break into systems. Make sure you don't allow them and you're already better that quite a bit of old code out there.

share|improve this answer

Undefined Behavior means anything could happen. Including appearing to "work", nothing at all, OR a segmentation fault. Your sample code is indeed bad, but the C Standard doesn't guarantee that it will do anything "useful", nor that anything "bad" will necessarily happen at compile time or at run time.

share|improve this answer

This code is plain wrong, obviously - you're accessing memory past the array boundaries.

It works, because:

  • there's no mechanism in place to detect each and every invalid memory access. Many such attempts would cause a segmentation fault, but it doesn't happen every time. Many times such a buggy code simply overwrites some random variable, etc. - this is one of the reasons why debugging issues like this can quickly become a nightmare. I suggest you get yourself familiar with Valgrind.

  • in this particular case I'd say that malloc() rounds up the allocated chunk of memory to (at least) multiple of 4, so in this case it might work as expected. But still it's a bug.

  • you also don't terminate the string explicitly, and again - the behavior is really random, str[4] can have any value, really. It depends on many things - from heap allocator implementation to pure coincidence.

share|improve this answer
    
+1. all three points are accurate. –  philippe lhardy Mar 12 '13 at 19:19

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.