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since memcpy should be highly optimized nowadays, does it still make sense to optimize the copy of Ipv6 addresses using explicit loop unrolling ?

#include <netinet/in.h>

struct in6_addr IP_1;
struct in6_addr IP_2;
;
;
IP2.__in6_u.__u6_addr32[0] = IP1.__in6_u.__u6_addr32[0];
IP2.__in6_u.__u6_addr32[1] = IP1.__in6_u.__u6_addr32[1];
IP2.__in6_u.__u6_addr32[2] = IP1.__in6_u.__u6_addr32[2];
IP2.__in6_u.__u6_addr32[3] = IP1.__in6_u.__u6_addr32[3];

Note that the code above is best suited for 32-bit architectures.

Is there a best practice I do not know ?

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3  
According to my tests with GCC, your code is slower than both memcpy and IP2=IP1. Both memcpy and IP2=IP1 generate the same code, with no loop and only two copy assignments instead of four. –  Dietrich Epp Jul 4 '12 at 16:14
    
Yep, I expect in the best case two 64-bit assignments. –  ziu Jul 4 '12 at 16:25
    
Explicit loop unrolling is pointless anyway. Any half-decent compiler will unroll a loop for you. –  Flexo Jul 5 '12 at 13:58

1 Answer 1

up vote 7 down vote accepted

You should just do IP2 = IP1;, and let the compiler deal with it.

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I always forget the possibility to assign directly one struct to another of the same type. –  ziu Jul 4 '12 at 16:13

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