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What is the proper way to cast std::string to LPBYTE to make this code work?

string Name;
string Value;
RegEnumValueA(hKey, 0, const_cast<char*>(Name.c_str()), &dwSize, NULL, NULL, (LPBYTE)const_cast<char*>(Value.c_str()), &dwSize2);

When I try to user this code everythins is okey with the string name, but there's a bad pointer error in the string value

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1  
You can't write to the buffer retrieved by c_str(). –  chris Feb 2 '13 at 21:21
2  
You can use &Value[0] with C++11 but you are better off with vector<> here I think. –  David Heffernan Feb 2 '13 at 21:27
    
Make sure not to overwrite the null character if you choose a string, though. –  chris Feb 2 '13 at 21:30

3 Answers 3

up vote 0 down vote accepted

The proper way od getting std::string with data you want

//alloc buffers on stack
char buff1[1024];
char buff2[1024];

//prepare size variables
DWORD size1=sizeof(buff1);
DWORD size2=sizeof(buff2);

//call
RegEnumValueA(hKey, 0, buff1, &size1, NULL, NULL, (LPBYTE)buff2, &size2);

//"cast" to std::string
std::string Name(buff1);
std::string Value(buff2);
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Your string construction needs a second iterator, not a size. –  chris Feb 2 '13 at 21:37
    
Really? cplusplus.com/reference/string/string/string –  peper0 Feb 2 '13 at 21:39
    
However it was incorrect, since the string returned from RegEnumValueA is null terminated, the "size1" and "size2" fields are left unchanges. I modified the strin construction therefore. –  peper0 Feb 2 '13 at 21:41
    
Oh, my mistake. I'm used to constructing containers with iterator pairs, since I don't think any others take an iterator and a size. For some reason, I forgot about the null-terminated string constructor as well. –  chris Feb 2 '13 at 21:41
    
Strings returned from registry functions are not guaranteed to be null terminated. It's trivial to see that is the case by putting in a value that does not have a null character. –  David Heffernan Feb 2 '13 at 23:06

The pointer parameters should point to valid buffers that will be modified by a function. The c_str() of an unitialized string does not point to anything valid.

Use char buffers instead of a strings. This is a very good case of const_cast<> being totally uncalled for.

char Name[200], Value[200]; //Sizes are arbitrary
DWORD dwSize = sizeof(Name), dwSize2 = sizeof(Value);

RegEnumValueA(hKey, 0, Name, &dwSize, NULL, NULL, (LPBYTE)Value, &dwSize2);
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1  
This is fine, until you need to decide at runtime how but the buffers are. At which point vector<> is the answer. –  David Heffernan Feb 2 '13 at 21:32
    
Either that, or new. –  Seva Alekseyev Feb 2 '13 at 21:56
1  
Why would you prefer new over vector?! –  David Heffernan Feb 2 '13 at 22:03

If you really want to "cast" std::string as you said, you could consider the following piece of code. It should work on any std::string implementation I know, but still it is a bit "hacky" and I'd not recommend it.

string Name(1024, ' ');
string Value(1024, ' ');
DWORD dwSize=Name.size();
DWORD dwSize2=Value.size();

RegEnumValueA(hKey, 0, const_cast<char*>(&Name[0]), &dwSize, NULL, NULL, (LPBYTE)const_cast<char*>(&Value[0]), &dwSize2);
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Thanks it seems the best way to do what I wanted:) –  spandei Feb 18 '13 at 8:36

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