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I have a file ( size : 20 mb | binary file ) that needs to be parsed every 820 bytes and that very content of 820 saved into a new file with the name of the file being the string(ASCII) between the 2byte and the 16byte mark.

0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16
    ^ THE FILENAME COMES FROM HERE    ^

Ok, now that the challenge is explained (I hope) what I do have for now is this:

#!/usr/bin/python

with open("file", "rb") as f:
    byte = f.read()
    if byte > 820:
        print "Reach the 1 record mark on the File you have defined "

But I can also see a possibility here:

for f.read(820) in file:
   a = f.read()
   b = open("Iam_from_2_to_16_byte_string", w)
   b.write(a)
   b.close

Well what I dont know is how to iterate for the first 820 bytes and then the next 820 bytes and the next until the end of the file and ofc the hardest part that is grabbing every time I do that new file the 2 to 16 byte buffer and use it as a filename in every new file I have with the 820 bytes .

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2 Answers

The iter() function can be passed a function and a sentinel, use that to read a file in 820 byte chunks:

for chunk in iter(lambda: f.read(820), ''):
    # chunk is now 820 bytes long, until the last chunk which *could* be shorter.

Every iteration, the lambda function will be called, reading 820 bytes, until f.read(820) returns an empty string (signifying EOF).

The chunk is just a string, so you can use slicing to get your filename:

filename = chunk[2:16]

Used together:

with open("file", "rb") as f:
    for chunk in iter(lambda: f.read(820), ''):
        open(chunk[2:16], 'wb').write(chunk)
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1  
Very nice - that form of iter is often overlooked :) +1 –  Jon Clements Nov 30 '12 at 11:31
    
true it was a nice example thanks –  PythonNewbie Nov 30 '12 at 11:57
    
Glad to have been of help! Feel free to accept my answer if you feel it was useful to you. :-) –  Martijn Pieters Nov 30 '12 at 11:59
    
hmmm i get a error Martijn do you know why ? drdos@poison:~/work$ python 1.py Traceback (most recent call last): File "1.py", line 5, in <module> open(chunk[2:16], 'wb').write(chunk) IOError: [Errno 21] Is a directory: '112011142635//' drdos@poison:~/work$ the code i have is this : code with open('/home/drdos/work/PTSIBS01.PDA', "rb") as f: for chunk in iter(lambda: f.read(820), ''): open(chunk[2:16], 'wb').write(chunk) code –  PythonNewbie Nov 30 '12 at 12:08
    
@PythonNewbie: What does print chunk[2:16] give you? Sounds like the chunk is smaller than 820 bytes. –  Martijn Pieters Nov 30 '12 at 12:11
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Python's file method read() has an option argument that sets the number of bytes to read. It also leaves the filepointer at the end of the bytes read, so that any next call will start after the last byte previously read:

n = 820
with open("file", "rb") as f:
    while True:
        data = f.read(n)
        if not data:
            break
        # do stuff with data.
        # for example, get a filename
        filename = str(data[2:16])

That iterates over the file contents in steps of 820, until it reaches EOF.

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god damn it ! u are good u made a solution in less then minutes that was quick thanks :) –  PythonNewbie Nov 30 '12 at 11:29
    
hi, i try to run it with my script but doesnt create the different files with the 820 bytes and fileaname i want the c0de i have now is : n = 820 with open('/home/drdos/work/01.PDA', "rb") as f: while True: data = f.read(n) if not data: break filename = str(data[2:16]) x = open("file_#{filename}", 'wb').write(data) –  PythonNewbie Nov 30 '12 at 12:17
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