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Does sendmsg free memory of the buffer or msg?

Please guide me on this.

closed as off-topic by Thomas Padron-McCarthy, OneOfOne, Fiddling Bits, fedorqui, Seki Feb 20 '14 at 12:34

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  • Your question does not make any sense! – Vivek Sadh Feb 17 '14 at 14:06
  • 1
    You're going to have to read the documentation. – Fiddling Bits Feb 17 '14 at 14:07
  • Do you have any code to go along with what you are attempting? – MattR Feb 17 '14 at 14:08
  • Read the man pages, Google AND searh SO. Just like what I found [here].(stackoverflow.com/a/4259888/1272394) – Drewness Feb 17 '14 at 14:09
3

No, sendmsg() does not free the passed-in memory. It cannot possibly do so, because that memory may not even have come from malloc(). You can free() the memory any time after calling sendmsg(), as the system will have already made the necessary copies.

  • For some reason I find the line "... that memory may not even have come from malloc()" humorous. – Fiddling Bits Feb 17 '14 at 14:10
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No you cannot do free it. It just sends out bytes of memory making using of msghdr structure.

Usually you allocate memory write into iovec of msghdr and call sendmsg to transfer it as,

char buffer[SIZE]="DATA";  // Data to send into buffer
struct iovec io;           // Segment which will store outgoing message
struct msghdr msgh;        // msghdr structure 
...
io.iov_base = buffer;      // Specify the components of the message in an iovec
io.iov_len = SIZE;
msgh.msg_iov = &io;  
... 
sendmsg(fd,&msgh,0);       // send msg which just send msg in a iovec buffer
  • Thanks. i got it now. thanks again. – Rajesh Kumar V Feb 17 '14 at 14:41

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