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I'm trying to parse a binary file and when it comes to returning numbers packed in little endian into 16 bits, I am hoping that this would work:

foo(Bin, Bits) when is_binary(Bin) ->
    <<A, B, C, D, _Rest>> = Bin,
    (bar(<<A, B>>, Bits) =/= 0) and (bar(<<C, D>>, Bits) =/= 0).

bar(<<N:16/little-unsigned-integer>>, Bits) ->
    binary:at(Bits, N).

Unfortunately, the matcher doesn't work when Bin is 4 bytes or less. Is there a better way to make it so the rest can be empty? If I could avoid testing binary length in the caller, the better.

share|improve this question
    
What would match C or D if the input is less than 4 bytes long? – sarnold Nov 7 '11 at 6:11

You could do something like:

foo(<<A:16/little-unsigned-integer,B:16/little-unsigned-integer,_Rest/binary>>, Bits) ->
    (binary:at(Bits, A) =/= 0) and (binary:at(Bits, B) =/= 0).

This will not work with a binary which is less than 4 bytes long. What is supposed to happen in that case?

N.B. binary:at/2 works on binaries not bitstrings and the offset is in bytes.

share|improve this answer
    
Thanks for your reply. This is what I needed to get me unstuck. Grokking the binary stuff in Erlang is very rewarding. The function will never be called with less than 4 bytes so this works fine. – John Difool Nov 7 '11 at 17:46

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