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How can I convert a string in to char * I was using the following method, but it doesn't work.

At runtime it gives me the following error:

Run-Time Check Failure #3 - The variable 'url' is being used without being initialized.

eventhough I have initialized it as shown in the code bellow. Can you please show me with an example?

    char* url;
    sup = "news"
    sup="http://www."+sup+"yahoo.com";
    strcpy(url, sup.c_str());

I am using Microsoft Visual Studio 2010, C++ in console

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if you just want to use the character pointer you could simply use sup.c_str() instead of allocating equal number of bytes for the variable 'url' again. –  PermanentGuest Feb 16 '12 at 11:02
    
@Unni it would be a const char* though (not just a char*). But I agree that may be what's actually required. –  adelphus Feb 16 '12 at 11:28
1  
I would use std::string everywhere, until you needed to pass it to a legacy system. Then use std::string::c_str(). Is there a reason you can't use std::string? –  Peter Wood Feb 16 '12 at 11:51

7 Answers 7

up vote 4 down vote accepted

strcpy doesn't allocate memory for you, you must do it yourself, remembering to leave space for the null termination character:

char* url = new char[sup.length()+1];

or

char url[sup.length()+1];
//...
strcpy(url, sup.c_str());

In the first case, don't forget to delete[] the array. The second case will only work if your compiler supports C99 variable-length arrays as an extension.

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Thanks a lot. It works well now –  Justin k Feb 16 '12 at 10:59
1  
It may work well but this is not in my opinion the best answer. Do you always rush to accept the first answer that works without waiting to see what others have to say? The reason I don't like this answer is that in C++ you should avoid using new to and raw arrays but should prefer to use vector. boost::shared_array<char> would be another option if you really feel you must use new. The second body I don't particularly like as it picks an arbitary size then hope it fits without any checking whatsoever. In fact I don't know why 32 is picked for the first block either. –  CashCow Feb 16 '12 at 11:13
    
@CashCow Uh no. The answer given is a good one and standard practise in C. Your answer to use boost or vector<char> is unintuitive and (IMO) messy. –  adelphus Feb 16 '12 at 11:21
    
@adelphus: The question is about C++, not C; and even in C it's a very bad idea to use strcpy without checking for a potential buffer overrun. Unless you're doing something strange, just use std::string when you want a string. –  Mike Seymour Feb 16 '12 at 12:06
    
I guessed I assumed the buffer is enough. You can find the length and allocate as much memory as you need. But in this case he appears to know what the max size of the string will be. –  Luchian Grigore Feb 16 '12 at 12:16

strcpy is unsafe as buffer overflow may occur. Use strncpy where you're providing exactly number of bytes to copy. You need to allocate memory for the destination buffer and add trailing \0:

std::string strInsert("news");
std::string sup("http://www.");
sup += strInsert + "yahoo.com";

char* url = new char[sup.length() + 1];
strncpy(url, sup.c_str(), sup.length());
url[sup.length()] = '\0';
// ... use url
delete[] url;
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In my opinion there are two ways of doing this.

  1. Using &-operator (ampersand)

    string str = "hello";
    char *p;
    p = &str[0];
    
  2. Using c_str() function

    string s = "hello";
    const char *p; 
    p = s.c_str();
    

I have tested both and they both are working. Kindly correct me if I am wrong.

share|improve this answer
    
It may work when you test it, but the first one is a bit of a hack and not guaranteed to work. E.g. if the internal representation of the string was a list of chunks instead of a single block of memory, you wouldn't get the whole string out when you try this. Hence c_str() exists to force the string to create a single block of memory and zero-terminate it. –  Bryan Sep 15 '12 at 21:06
char* url = new char[100];

You have to allocate memory for your char array first.

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If you really need a writable buffer of char that is copied from the contents of a std::string, you can use std::vector<char>

std::vector<char> urlAsVec( sup.begin(), sup.end() );
urlAsVec.push_back( '\0' );
char * url = &urlAsVec[0]; // pointer you can safely write to

You can also initialize the vector this way:

std::vector<char> urlAsVec( sup.c_str(), sup.c_str() + sup.size() + 1 );

which will write your null-terminator for you too.

Another alternative:

std::vector<char> urlAsVec( sup.size() + 1 );
sup.copy( &urlAsVec[0], sup.size() );

Note that your vector will automatically initialize all its elements to 0 so the null terminator will be there even though sup.copy() doesn't write it. You can use sup.copy( ptr, len) instead of strcpy anyway, which is slightly safer in that you can specify the buffer size (although strncpy would allow that too), although you will still have to write the null terminator manually (or have it already allocated).

For example if you use this:

char url[ BUFLEN ] = {0};
sup.copy( url, BUFLEN-1 );

for some fixed value BUFLEN you will get a copy or partial copy of the source string written into your buffer. Note that my initializer ensures all your unwritten bytes are 0.

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Copying from sup to url doesn't mean you have initialized url.
Initializing url means allocating memory for it. Like this:

url = new char[size];
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std::string sup = "news";
sup="http://www."+sup+"yahoo.com";
char* url = new char[sup.length()+1];
url = const_cast<char*>(sup.c_str());
url[sup.length()] = '\0';

std::cout<<url;            //http://www.newsyahoo.com

Notice the '\0' at the end of url.

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