8

I had one question.

I developing server in ASIO and packets are in pointed char.

When i create new char (ex. char * buffer = new char[128];) i must clean it manually to nulls.

By:

for(int i =0;i<128;i++)
{
buffer[i] = 0x00;
}

I doing something wrong, that char isn't clear ?

19

You do not have to loop over an array of un-initialized values. You can dynamically instantiate array of zeros like this:

char * buffer = new char[128](); // all elements set to 0
                             ^^
12

There are two types of ways of calling the new operator in C++ - default initialised and zero initialised.

To default initialise (which will leave the value undefined) call:

int * i = new int;

It is then undefined behavoir to read or use this value until its been set.

To zeroinitialise (which will set to 0) use:

int * i = new int();

This also works with arrays:

int * i = new int[4]; // ints are not initialised, you must write to them before reading them
int * i = new int[4](); // ints all zero initialised

There's some more info here

3

Allocated memory will not be clear, it will contain random stuff instead. That's how memory allocation works. You have to either run a for-loop or use memset to clear it manually.

2

You also can use calloc. It initializes each elem to 0 automaticaly. e.g:

 char* buffer = (char *) calloc (128, sizeof (char))

First param is number of blocks to be allocated. Second is size of block. This function returns void* so you have to convert its value to (char *) If you use calloc (or malloc or any "pure c" allocation functions) you'd better use free function to deallocate memory instead of delete.

-5

Since it is a pointer, you must do it like that:

for(int i = 0; i < 128; i++)
{
(buffer + i) = 0x00;
} 
  • 1
    -1: The code is wrong (assigning 0x00 to rvalue) and the advice is wrong (OP's code does compile, your doesn't). – milleniumbug Jun 1 '13 at 11:25
  • 1. You forgot to dereference LHS so you are trying to assign to r-value (your code won't compile). 2 buffer[i] is by language standard the same as *(buffer + i). While arrays and pointers ARE different per language standard in this context they are interchangeable to some degree. – Maciej Piechotka Jun 1 '13 at 11:27

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