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I was learning about Winsock and was looking at code from the page : Winsock Tutorial 1.

There is a line in the program which included the operator =*. Can anyone please tell me what this is? I do know a *= b is equivalent to a = a * b. And I read on stackoverflow that =+ is the obsolete form of +=. So I tried interchanging the * and = making it *=, but the compiler gave me an error. I would really appreciate it if someone tells me what this line of code means :

SockAddr.sin_addr.s_addr=*((unsigned long*)host->h_addr);
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4  
It's an assignment operator with no whitespace between it and the dereference operator. – Peter Huene Jan 25 '13 at 17:57
5  
This is why sane programmers put spaces around operators like =. – user142019 Jan 25 '13 at 17:58
    
+1 for making me chuckle. -1 because I'm only joking about the +1. – Lightness Races in Orbit Jan 25 '13 at 17:58
up vote 5 down vote accepted

It means de-reference something and assign it to the LHS.

SomeType LHS;
SomeType* Something = ....;
LHS = *(Something);

See dereference operator.

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O I did know that LOL. It means "content of" right? Like when we de-reference pointers. But what are we doing over here? Typecasting it to be a pointer and then de-referencing it? What good will that do? – Shahid Khaliq Jan 25 '13 at 17:59
    
@ShahidKhaliq host->h_addr is probably a pointer to something, so it is doing a C-syle cast to unsigned long*, then dereferencing it to set the value of SockAddr.sin_addr.s_addr. – juanchopanza Jan 25 '13 at 18:01
    
Okay. I kinda get it now. Thanks a million! It looked confusing without the space between = and *. – Shahid Khaliq Jan 25 '13 at 18:05

Operator =* existed in nascent versions of C language (as the original form of *= operator).

In C++ there's no such operator. =* is nothing else than = (assignment operator) followed by unary * (dereference operator). You can look up the meaning of = and unary * in your favorite C++ book.

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Okay thank you. :) – Shahid Khaliq Jan 25 '13 at 18:13

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