2

I have a very simple routine (at least should be simple)

I create a large char array and I am copying data to it as I receive it moving. After about the third iteration the app crashes.

first create a large buffer

_buffer = new char(7931880);

...

void writeData(char* newData,size_t size)
{
  memcpy(_buffer,newData,size); //this call succeeds the first 4 times then fails bytes received
 _buffer+=size;                 //(size) is never larger than 16000
}
Improve this question
9
  • 6
    did you mean _buffer = new char(7931880); or should it be _buffer = new char[7931880];
    – andre
    Jan 16, 2013 at 18:26
  • Note, however, that memcpy is generally inadvisable in C++; use std::copy instead.
    – Oliver Charlesworth
    Jan 16, 2013 at 18:26
  • 1
    @akira: Not really nitpicking ;) std::copy works in general, memcpy only works on POD types. Plus it doesn't require you to think about size.
    – Oliver Charlesworth
    Jan 16, 2013 at 18:32
  • 2
    Once you fix new T() to new T[], use std::vector<T> instead of new T[].
    – GManNickG
    Jan 16, 2013 at 18:34
  • 3
    @akira: Yes, that's why I put it in a comment ;)
    – Oliver Charlesworth
    Jan 16, 2013 at 18:37

2 Answers 2

Reset to default
21 
_buffer = new char(7931880);

This is a pointer to a SINGLE character. To get an array use

_buffer = new char[7931880];

And turn on compiler warnings to detect the overflow.

Improve this answer
3
  • After trying out the code it seems that actually g++ 4.6.3 and 4.7.1 gives this overflow warning without any switch. So the "turn on" is actually "look at" for this question. But it is always a good idea to turn them on anyway.
    – Csq
    Jan 16, 2013 at 18:33
  • Thanks everyone for the fast response -[] was what I wanted.
    – user1984724
    Jan 16, 2013 at 18:40
  • 4
    @user1984724: That's what the little 'accept this answer' checkbox is for. :-)
    – Omnifarious
    Jan 16, 2013 at 18:45
7

You are dynamically allocating a single char with value 7931880. Making an assumption that your buffer should be a little more than a single char (not much of a buffer), perhaps you were looking for _buffer = new char[7931880];. This would allocate 7931880 chars.

Improve this answer
1
  • it's important to highlight the difference between ( and [.
    – akira
    Jan 16, 2013 at 18:28

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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