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I am trying to iterate through a list and take each part of the list, encode it and join the result up when it is all done. As an example, I have a string which produces a list with each element being 16 characters in length.

message = (u'sixteen-letters.sixteen-letters.sixteen-letters.sixteen-letters.')
result = split16(message, 16)
msg = ';'.join(encode(result.pop(0)) for i in result)

The encode function takes a 16 byte string and returns the result. However with the way it is written, it only encodes half of the elements in the list.

If I try comprehension:

result = [encode(split16(message, 16) for message in list_of_messages)]
result = ''.join(result)

It results in the whole list being sent at once. What I need to do is send each element to the encode function separately, get the result then join them together.

Is there an easy way of achieving this?

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your list comprehension is syntactically wrong –  SilentGhost Oct 15 '09 at 11:07
    
Thanks SilentGhost, tested your code and works perfectly. –  rescue Oct 15 '09 at 11:16
    
@rescue: Don't comment on your own question. Please fix your question to have the correct code. –  S.Lott Oct 15 '09 at 11:29
    
"The encode function takes a 16 byte string" - don't you mean 16 char string? 1 char is not necessarily 1 byte, especially since you are using unicode strings. –  MAK Oct 15 '09 at 11:42
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3 Answers

up vote 1 down vote accepted

Are you trying to do something like this?

';'.join(encode(i) for i in message.split('.'))

of course it could be just

';'.join(encode(i) for i in result)

if your split16 function complicated enough.

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I am a bit confused about what you are exactly trying to do, which is compounded by a missing paren in the code you posted:

result = [encode(split16(message, 16) for message in list_of_messages]

Should that be:

result = [encode(split16(message, 16) for message in list_of_messages)]

or:

result = [encode(split16(message, 16)) for message in list_of_messages]

I think the second will do what you want.

This code:

msg = ';'.join(encode(result.pop(0)) for i in result)

is failing because at every step you are iterating through result, but shortening it at every step with pop. It should just be:

msg = ';'.join(encode(i) for i in result)
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I'm not quite clear what you are after, but

msg=";".join(map(encode,(message[i:i+16] for i in range(0,len(message),16))))
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