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char * msg = new char[65546];

want to initialize to 0 for all of them. what is the best way to do this in C++?

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memset or calloc. –  joefis Jun 28 '10 at 17:07
    
The best way is to not ever use new manually like that. Use a std::vector. –  GManNickG Jun 29 '10 at 17:25
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7 Answers

up vote 31 down vote accepted
char * msg = new char[65546]();

It's known as value-initialisation, and was introduced in C++03. If you happen to find yourself trapped in a previous decade, then you'll need to use std::fill() (or memset() if you want to pretend it's C).

Note that this won't work for any value other than zero. I think C++0x will offer a way to do that, but I'm a bit behind the times so I can't comment on that.

UPDATE: it seems my ruminations on the past and future of the language aren't entirely accurate; see the comments for corrections.

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4  
@Eric, that has nothing to do with OOP :S –  Peter Alexander Jun 28 '10 at 17:53
3  
It wasn't really "introduced in C++03". The () initializer was present in the original C++98 as well. While the concept of value-initialization was indeed introduced in C++03, it has no relation to this specific case. new char[N]() is required to produce a zero-initialized array in C++98 as well. –  AndreyT Jun 28 '10 at 18:36
1  
I believe neither C++0x provides a way to initialize all elements to a specific value. It allows new char[65546]{1, 2, 3} - but all remaining elements will still be initialized to 0. –  Johannes Schaub - litb Jun 28 '10 at 19:24
3  
You guys allergic to std::string or vector<char>? I see little point in using heap-allocated char buffers over these alternatives and no point to encourage otherwise as the user asked for the best C++ way. –  stinky472 Jun 28 '10 at 19:38
2  
+-0, I consider myself quite an experienced c++ programmer and I wouldn't understand that line without a comment. Use std::fill or memset instead. –  Viktor Sehr Sep 21 '10 at 19:33
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The "most C++" way to do this would be to use std::fill.

std::fill(msg, msg + 65546, 0);
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1  
+1, (quite) typesafe and easy to read. Althrough I'd prefer &msg[0], &msg[65546] (also I think 65536 is the intended size =) –  Viktor Sehr Sep 21 '10 at 19:35
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Absent a really good reason to do otherwise, I'd probably use:

std::vector<char> msg(65546, '\0');
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3  
+1 as the user asked for the best C++ way. :-D –  stinky472 Jun 28 '10 at 19:40
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what is the best way to do this in C++?

Because you asked it this way:

std::string msg(65546, 0); // all characters will be set to 0

Or:

std::vector<char> msg(65546); // all characters will be initialized to 0

If you are working with C functions which accept char* or const char*, then you can do:

some_c_function(&msg[0]);

You can also use the c_str() method on std::string if it accepts const char* or data().

The benefit of this approach is that you can do everything you want to do with a dynamically allocating char buffer but more safely, flexibly, and sometimes even more efficiently (avoiding the need to recompute string length linearly, e.g.). Best of all, you don't have to free the memory allocated manually, as the destructor will do this for you.

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+1 for taking a step back from the question and suggesting how it probably should be done. –  Mike Seymour Jun 28 '10 at 21:38
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This method uses the 'C' memset function, and is very fast (avoids a char-by-char loop).

const uint size = 65546;
char* msg = new char[size];
memset(reinterpret_cast<void*>(msg), 0, size);
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8  
no need for the cast, implicit T* to void* is allowed in c++, just not implicit void* to T* –  Evan Teran Jun 28 '10 at 17:11
5  
... not to mention that the proper cast here would be static_cast. –  avakar Jun 28 '10 at 18:52
    
And std::fill is much better anyway. Any modern compiler will use memset when it can, no use in being inconsistent. –  GManNickG Jun 29 '10 at 17:23
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memset(msg, 0, 65546)
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Remember to #include <cstring> –  Magnus Hoff Jun 28 '10 at 17:07
    
Is sizeof(char) guaranteed to be 1? I've never seen it not be, but unless it was guaranteed by the standard, I'd use memset(msg,0,65546*sizeof(char)); just to be sure. –  Paul Tomblin Jun 28 '10 at 17:07
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@Paul: sizeof(char) is guaranteed to be 1. –  Magnus Hoff Jun 28 '10 at 17:08
6  
@TommyA: sizeof(char) == 1 according to the standard. I don't have a copy of the official standard, but the C++03 draft standard says, "sizeof(char), sizeof(signed char) and sizeof(unsigned char) are 1." (5.3.3) –  Fred Larson Jun 28 '10 at 17:22
4  
@TommyA: I do have a copy of the standard, and it says exactly what @Fred says it says. Of course, it doesn't have to be 8 bits... –  Mike Seymour Jun 28 '10 at 17:29
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You can use a for loop. but don't forget the last char must be a null character !

char * msg = new char[65546];
for(int i=0;i<65545;i++)
{
    msg[i]='0';
}
msg[65545]='\0';
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