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when you allocate dynamic memory on the heap using a pointer,

char *buffer_heap = new char[15];

it would be represented in memory as:

 ÍÍÍÍÍÍÍÍÍÍÍÍÍÍÍýýýý««««««««þþþ

why doesn't there be a NULL terminating character at the end instead of ýýýý««««««««þþþ?

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3  
First off, who says this is even a string? To the compiler, you just want 15 raw bytes of memory. If you want a string, use std::string. So what is this data? It's just whatever happened to be there. Most compilers will actually fill in this data with debug data or other information, so when you use uninitialized data, it's probably got a consistent pattern. –  GManNickG Feb 19 '10 at 23:13
6  
I don't know why people are down-voting this, it's a completely valid question. Just because the OP misunderstands something doesn't mean we should punish him for it. –  GManNickG Feb 19 '10 at 23:32
    
Related: stackoverflow.com/questions/2029651/… stackoverflow.com/questions/958549/dynamically-allocated-char Can't for the life of me find an exact duplicate, but I swear there is one... –  dmckee Feb 19 '10 at 23:55
2  
@dmckee: another related one here: stackoverflow.com/questions/370195/…. I probably should have thought to Google "site:stackoverflow.com 0xCD 0xFD" before I answered, but still it's not quite an exact dupe. –  Steve Jessop Feb 20 '10 at 0:05
1  
@GMan: +1, am so happy to see some one supporting the n00bs; lack of knowledge isn't a sin, while not bothering to know it and being so proud about it IS :) –  legends2k Feb 20 '10 at 0:23

7 Answers 7

up vote 16 down vote accepted

Í is byte 0xCD, which the Windows debug allocator writes into your 15 bytes of memory to indicate that it is uninitialised heap memory. Uninitialized stack would be 0xCC. The idea is that if you ever read memory and unexpectedly get this value, you can think to yourself, "hmm, I've probably forgotten to initialise this". Also, if you read it as a pointer and dereference it, then Windows will crash your process, whereas if an uninitialised buffer were filled with random or arbitrary values then sometimes by fluke you'd get a valid pointer, and your code might cause all kinds of trouble. C++ doesn't say what values uninitialized memory holds, and non-debug allocators won't waste time filling memory with special values for every allocation, so you must never rely on that value being there.

This is followed by 4 bytes of ý (byte 0xFD), which the Windows debug allocator uses to indicate an out-of-bounds region at the end of a buffer. The idea is that if you ever find yourself in the debugger writing to a region that looks like this, you can think "hmm, I've probably overrun my buffer here". Also, if the value has changed when the buffer is freed, the memory allocator can warn you that your code is wrong.

« is byte 0xAB, and þ is 0xFE. Presumably these are also intended as eye-catchers (they aren't plausible pointers or offsets, so they don't form part of the heap structure). I don't know what they signify, possibly more guard data like the 0xFD.

Finally, I guess, you've found a 0 byte, the 16th byte beyond the end of your 15 byte buffer (i.e. the 31st byte counting from the start of it).

Asking the question as "C++" without mentioning that you're on Windows suggests that this is how C++ behaves. It isn't, it's how one implementation of C++ behaves, with particular compiler options and/or linked dlls. C++ does not permit you to read past the end of the buffer, Microsoft is just being nice to you and letting you get away with it not crashing or worse.

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2  
+1 for being elaborate about each hex code, particularly for saying about the debugger's tricks; also for explaining about tagging discipline –  legends2k Feb 20 '10 at 0:28
    
I added the visual-c++ tag because you're right, the question needed it. The OP probably wasn't aware this was implementation specific behavior. –  Omnifarious Feb 20 '10 at 2:18

You haven't initialized that memory. You are just seeing whatever was already there...

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You need to initialize it. Built-in types can be initialized to zero by explicitly calling the default constructor:

char *b = new char[15]();
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While every C style string is represented as a sequence of chars, not every sequence of chars is a string.

The \0 usually comes in when you directly assign a string literal, or when you add it there yourself. And it is only meaningful if you treat that array as a string with functions that take the \0 into account.

If you just allocate the memory and don't initialize it, it's full with random stuff. There may be a 0 there or there may not be - you're going to have to put something meaningful there in a subsequent step. It is up to you whether to make that something a string or not.

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why theres always ýýýý««««««««þþþ appened to end? –  cpx Feb 19 '10 at 23:01
3  
@Dave17: There isn't always the same data in there. Make a loop to make 100 new char[15] allocations and see. If it is always the same, then it might be a debugging pattern used by your compiler. –  Zan Lynx Feb 19 '10 at 23:03
    
I'm using VS-2005, I tried with 1000 new char and its still the same. –  cpx Feb 19 '10 at 23:07
1  
@Dave: Then you're just seeing debug data, or other memory tracking information that was placed there when it was deallocated. This isn't something you can count on, it's just garbage. –  GManNickG Feb 19 '10 at 23:14

Because char is a native type, it's uninitialized. That's just how C++ is (it's a legacy of C).

Just accept that and 0 terminate it yourself:

char *buffer_heap = new char[15];
*buffer_heap = '\0';

or if you want the entire buffer initialized:

std::fill(buffer, buffer + 15, 0);
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It'll only be initialized if you allocate a type that's initialized. Otherwise, if you want some meaningful values there, you'll have to write them in yourself.

On the other hand, the better answer is that you just shouldn't do this in the first place. Forget that new[] exists, and don't look back.

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For advanced users only: remember that new[] exists, spend a while figuring out how to override placement and array new and delete, then just use a vector anyway. –  Steve Jessop Feb 19 '10 at 23:32
    
@Steve:or as the old line about optimization goes: rule #1: don't do it. Rule #2 (for advanced programmers only): don't do it now. –  Jerry Coffin Feb 19 '10 at 23:34
    
Rule #3 (for super-advanced programmers): stop tinkering and ship the bloody thing ;-) –  Steve Jessop Feb 19 '10 at 23:57

In GNU C++ (g++) on Linux, this program exits pretty quickly:

#include <algorithm>
#include <iterator>
#include <vector>
#include <cstddef>
#include <cstdlib>
#include <iostream>

namespace {

class rand_functor {
 public:
   int operator ()() const { return ::std::rand(); }
};

}

int main()
{
   using ::std::cout;
   using ::std::vector;
   using ::std::ostream_iterator;
   using ::std::generate;
   using ::std::equal;
   using ::std::copy;

   char *tmp = new char[1000];
   // This just fills a bunch of memory with random stuff, then deallocates it
   // in the hopes of making a match more likely.
   generate(tmp, tmp+1000, rand_functor());
   delete[] tmp;
   vector<char *> smalls;
   smalls.push_back(new char[15]);
   do {
      smalls.push_back(new char[15]);
   } while (equal(smalls[0], smalls[0]+15, smalls[smalls.size() - 1]));
   cout << "        In one allocation I got: [";
   copy(smalls[0], smalls[0]+15, ostream_iterator<char>(cout));
   cout << "]\nAnd in another allocation I got: [";
   copy(smalls[smalls.size() - 1], smalls[smalls.size() - 1]+15,
        ostream_iterator<char>(cout));
   cout << "]\n";
   cout << "It took " << smalls.size() << " allocations to find a non-matching one.\n";
   return 0;
}
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