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My input files could be arbitrary, and so I will use

f = open("in-file", 'rb')

The chunk size is about 4K Bytes, and so I will use

What I want to do is to read chunks by chunks from the file. Moreover, as chunk is actually a $2^15$-bit (4KB) sequence, when reading a chunk, I need to transform it into a decimal value for further computation.

For example, if the first chunk is of form 0000...10, what I want is having another variable keeping the corresponding decimal value, eg., x=2.

From Convert string to list of bits and viceversa I know that its code can help me read chunks by chunks.

def tobits(s):
    result = []
    for c in s:
        bits = bin(ord(c))[2:]
        bits = '00000000'[len(bits):] + bits
        result.extend([int(b) for b in bits])
    return result

However, I don't know how to transform the output list into decimal value. Could someone give me some sample code? Thank you.

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Your question is a little unclear: Is the "chunk" a bunch of bytes that you want the numeric value of? Or is it text, that is, a number written in base 2 using the characters 1 and 0? – millimoose Jan 17 '13 at 17:06
(Understand that there is usually no such thing as a "decimal" number in a program's memory, it's all some sort of binary representation.) – millimoose Jan 17 '13 at 17:09
yes, chunks are a sequence of bits of a file. For example, if chunk size is set to be 2, and if a file happens to be of form 10010100, then this file has 4 chunks, which are 00, 01, 01, 10. – user4478 Jan 17 '13 at 17:09
Is int('10010100', 2) what you're looking for? The 2 means from base 2 (i.e. binary). – Thomas K Jan 17 '13 at 17:13
@user4478 What I was really asking was whether when you say that the file contains 01000001, are you saying that when opened in a text editor, I'd see an A, and not the string 01000001. (It might seem a silly question, but the word "binary representation" is ambiguous enough to cause confusion.) – millimoose Jan 17 '13 at 17:27

2 Answers 2

up vote 0 down vote accepted

If I understand the question right, you want something like the following:

def bytes_to_long(bytes):
    result = 0l
    for c in bytes:
        result *= 256
        result += ord(c)
    return result

That said, it's likely this is going to be somewhat slow, 4kB is a fairly big long and a lot of garbage ones are going to be created. You could probably improve this by using struct.unpack() and processing more than one byte per iteration, but then you have to deal with the right endianness and everything. On Python 3 you also probably don't need the ord() since it should return the bytes type from IO methods.

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By referencing I found that the following code probably will run faster because it seems to be no arithmetic involved.

def ByteToHex( byteStr ):
    return ''.join( [ "%02X " % ord( x ) for x in byteStr ] ).strip()

Therefore, the task of, for example, reading 2-byte chunks as decimal numbers can be accomplished by the following code:

in_file=open("in-file", "rb")
piece =
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