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Here's the code:

void SendRemoteData(string Data){
    char charout[1000];
    memset(charout,0,sizeof(charout));
    memcpy(charout,Data.c_str(),Data.size());
    send(tempclient, charout, sizeof(charout),0);
}

When I try to use this function twice, I get the error. What should I do?

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1  
what's the length of Data? –  sharptooth Jan 24 '12 at 13:34
    
Instead of using memset, you can write char charout[1000] = {}; It will zero-initialize the array. –  Nawaz Jan 24 '12 at 13:36
    
Error? what error? Try to check send return and check errno –  Tio Pepe Jan 24 '12 at 13:37
    
C++? Or C? Pick a language and stick with it (at least per question, but preferably per source file)! –  Johnsyweb Jan 24 '12 at 13:39
1  
if (Data.size() > sizeof(charout)) panic(); –  Hans Passant Jan 24 '12 at 14:07

3 Answers 3

Find out in wich line the access violation happens - there are some positions that might be a problem. As example: you assume that Data is always smaller than 1000 characters - otherwise you cause a buffer overrun. Also, you always send 1000 bytes - is that really your intention?

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Try this instead:

void SendRemoteData(string Data){
    send(tempclient, Data.c_str(), Data.size(),0);
}
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That doesn't do the same thing, the original code always sends 1000 bytes. –  interjay Jan 24 '12 at 13:37
    
True, the functionality is different, and just maybe what OP needs. –  Dialecticus Jan 24 '12 at 15:24

The problem occured because you can't use a string there in memcpy, but you're using Data.c_str(), which is wrong and gives me an error.

A cast should solve the problem:

memcpy(charout,(char *)Data.c_str(),Data.size());
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