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I have this little problem that has been bugging me for the past hour or so.

string = b'-'
t = struct.pack(">h%ds" % len(string), len(string), string)
print(t)

the result of this pack is b'\x00\x01-'

The problem I'm having is that I can't figure out how to unpack the result b'\x00\x01-' so that it's just '-', Yes. I know I can just remove the crap in the front but it gets a little bit more complicated. I tried to simplify it here. Hopefully someone can assist me. :)

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What is user? –  Santa Mar 2 '11 at 0:07
    
fixed. it's string. –  dbdii407 Mar 2 '11 at 0:08
    
Maybe I totally misunderstand, but docs.python.org/library/struct.html#struct.unpack –  ide Mar 2 '11 at 0:09

5 Answers 5

Normally you wouldn't use struct.pack to put a length header and the value together. Instead you would just do struct.pack(">h", len(data)), send that over the line (for example in network protocol) and then send the data. No need to create a new bytes buffer.

In your case, you could simply do:

dataLength, = struct.unpack(">h", t[:2])
data = t[2:2+dataLength]

but as I said, if you have a socket-based application for instance, it would be like so:

header = receive(2)
dataLength, = struct.unpack(">h", header)
data = receive(dataLength)
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import struct
string = b'-'
fmt=">h%ds" % len(string)

Here you are packing both the length and the string:

t = struct.pack(fmt, len(string), string)
print(repr(t))
# '\x00\x01-'

So when you unpack, you should expect to get two values back, i.e., the length and the string:

length,string2=struct.unpack(fmt,t)
print(repr(string2))
# '-'

In general, if you don't know how the string was packed, then there is no sure-fire way to recover the data. You'd just have to guess!

If you know the data is composed of the length of the string, and then the string itself, then you could try trial-and-error:

import struct
string = b'-'
fmt=">h%ds" % len(string)
t = struct.pack(fmt, len(string), string)
print(repr(t))

for endian in ('>','<'):
    for fmt,size in (('b',1),('B',1),('h',2),('H',2),('i',4),('I',4),
                     ('l',4),('L',4),('q',8),('Q',8)):
        fmt=endian+fmt
        try:
            length,=struct.unpack(fmt,t[:size])
        except struct.error:
            pass
        else:
            fmt=fmt+'{0}s'.format(length)
            try:
                length,string2=struct.unpack(fmt,t)
            except struct.error:
                pass
            else:
                print(fmt,length,string2)
# ('>h1s', 1, '-')
# ('>H1s', 1, '-')

It might be possible to compose an ambiguous string t which has multiple valid unpackings which would lead to different string2s, however. I'm not sure.

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Okay. Now what if you don't know the actual length of string? –  dbdii407 Mar 2 '11 at 0:26

Let's just imagine that data is a big chunk of bytes and you have successfully parsed out the first posn bytes. The documentation for this chunk of bytes says that the next item is a string of bytes preceded by a 16-bit signed (unlikely but you did say h format) bigendian integer. Here's what to do:

nbytes, = struct.unpack('>h', data[posn:posn+2]
posn += 2
the_string = data[posn:posn+nbytes]
posn += nbytes

and now you're positioned ready for the next item.

Note: If you are writing code restricted to Python 2.5 or later, you can use unpack_from()

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The struct module is designed for fixed-format blocks of data. However you can use the following code:

import struct
t=b'\x00\x01-'
(length,)=struct.unpack_from(">h", t)
(text,)=struct.unpack_from("%ds"%length, t, struct.calcsize(">h"))
print text
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struct.calcsize(">h") is a rather verbose way of writing 2 –  John Machin Mar 2 '11 at 8:08

How exactly are you unpacking?

>>> string = b'-'
>>> format = '>h%ds' % len(string)
>>> format
'>h1s'
>>> struct.calcsize(format)
3

For unpack(fmt, string), len(string) must equal struct.calcsize(fmt). So it's not possible for an unpacked data to be just '-'.

But:

>>> t = b'\x00\x01-'
>>> length, data = struct.unpack(format, t)
>>> length, data
(1, '-')

Now you can use data.

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