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How fast is the procedure to convert from using big endian to little endian?

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where is this 'procedure' going to take place? cpu space, application space (if so, which application?) –  KevinDTimm Sep 24 '09 at 14:59
    
There is no specific prodedure. I meant when, say an integer, has to be converted from big-endian to little-endian or vice versa, how long this would take. –  Davie Sep 24 '09 at 15:09

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Very fast. It's a single machine language opcode on most architectures. Even on ancient hardware it would execute in only 2-3 clock cycles.

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Even if using perl's pack? –  innaM Sep 24 '09 at 14:46
    
@Manni I can't speak as to how well Perl actually implements it. The hardware itself is capable of doing it extremely fast. In fact, I believe that it's the SPARC architecture where it allows for memory pages to be either be big or little and then you don't even have to execute an instruction to swap. Handled automagically by the retrieval unit. –  Brian Knoblauch Sep 24 '09 at 15:09
    
Can you provide an example opcode or post a link to where I can find an example? Thanks. –  Davie Sep 24 '09 at 16:34
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The XCHG or BSWAP ops on x86 machines. "xchg ah, al" or "bswap eax" IIRC. My assembly is a little rusty, don't do much in it anymore. –  Brian Knoblauch Sep 24 '09 at 16:49

The speed greatly depends on the implementation and the language. Inlined machine code is extremely fast but an implementation running in an interpreted language may be orders of magnitude slower. If it's not inlined, procedure call overhead may take considerably more time than the actual byte swap.

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