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I want to pack a byte followed by a long. My buffer can only contain 9 elements. Why can't I pack them into the buffer?

>>> from struct import *
>>> calcsize('qB')
>>> calcsize('Bq')

It returns differently. Why is this?

I'm using Python 2.7.3 by the way.

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1 Answer 1

up vote 1 down vote accepted

In your second example, struct.calcsize assumes 3 bytes of padding after the byte so that the long long can begin on a 4-byte boundary.

If you specify no padding, you'll see they are equivalent:

>>> calcsize ('Bq')
>>> calcsize('=Bq')
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Aha! Thank you, it's seems you're right. I didn't realize that Python couldn't use native sizes by default. – Jon May 15 '13 at 18:43
struct uses native size, byte order, and alignment unless you specify an explicit byte order, in which case standard size and no alignment is used. See the docs for details. – chepner May 15 '13 at 18:46

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