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In Python, for a binary file, I can write this:

buf_size=1024*64           # this is an important size...
with open(file, "rb") as f:
   while True:
      data=f.read(buf_size)
      if not data: break
      # deal with the data....

With a text file that I want to read line-by-line, I can write this:

with open(file, "r") as file:
   for line in file:
       # deal with each line....

Which is shorthand for:

with open(file, "r") as file:
   for line in iter(file.readline, ""):
       # deal with each line....

This idiom is documented in PEP 234 but I have failed to locate a similar idiom for binary files.

I have tried this:

>>> with open('dups.txt','rb') as f:
...    for chunk in iter(f.read,''):
...       i+=1

>>> i
1                # 30 MB file, i==1 means read in one go...

I tried putting iter(f.read(buf_size),'') but that is a syntax error because of the parens after the callable in iter().

I know I could write a function, but is there way with the default idiom of for chunk in file: where I can use a buffer size versus a line oriented?

Thanks for putting up with the Python newbie trying to write his first non-trivial and idiomatic Python script.

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2 Answers 2

up vote 15 down vote accepted

I don't know of any built-in way to do this, but a wrapper function is easy enough to write:

def read_in_chunks(infile, chunk_size=1024*64):
    while True:
        chunk = infile.read(chunk_size)
        if chunk:
            yield chunk
        else:
            # The chunk was empty, which means we're at the end
            # of the file
            return

Then at the interactive prompt:

>>> from chunks import read_in_chunks
>>> infile = open('quicklisp.lisp')
>>> for chunk in read_in_chunks(infile):
...     print chunk
... 
<contents of quicklisp.lisp in chunks>

Of course, you can easily adapt this to use a with block:

with open('quicklisp.lisp') as infile:
    for chunk in read_in_chunks(infile):
        print chunk

And you can eliminate the if statement like this.

def read_in_chunks(infile, chunk_size=1024*64):
    chunk = infile.read(chunk_size)
    while chunk:
        yield chunk
        chunk = infile.read(chunk_size)
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1  
+1: Less magic. –  S.Lott Dec 30 '10 at 22:15
    
I had assumed there was some built-in way that I was just overlooking. Since there seems to not be a built-in way, this is is easy to read and straight forward. Thanks! –  dawg Dec 30 '10 at 22:16

Try:

>>> with open('dups.txt','rb') as f:
...    for chunk in iter((lambda:f.read(how_many_bytes_you_want_each_time)),''):
...       i+=1

iter needs a function with zero arguments.

  • f.read won't work because it has 1 argument,
  • In f.read(1024) you call function and pass its return value (data loaded from file) to iter... so iter does not get a function at all.
  • (lambda:f.read(1234)) is a function that will take zero arguments (nothing between lambda and :) and call f.read(1234).

There is equivalence between following:

somefunction = (lambda:f.read(how_many_bytes_you_want_each_time))

and

def somefunction(): return f.read(how_many_bytes_you_want_each_time)

and having one of these before your code you could just write: iter(somefunction, '').

Technically you can skip the parentheses around lambda, python's grammar will accept that.

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Yeah, the sentinel trick with iter() is really neat! (Although I don't like lambdas, so I would have made a function). –  Lennart Regebro Dec 30 '10 at 21:57
    
That works! Thanks. It is hard loosing old idioms (Perl) and learn new ones while still being reasonably productive. –  dawg Dec 30 '10 at 21:57
    
This works... but it's a bit difficult to read in my opinion. –  Jason Baker Dec 30 '10 at 21:58
    
@Lennart Regebro, @Jason Baker: I assumed OP wants to learn why his iter call didn't work. Writing an iterator is what I probably also would do in this case, unless working in an interactive prompt. –  liori Dec 30 '10 at 22:08
7  
functools.partial(f.read, numBytes) should work too in place of the lambda –  Jochen Ritzel Dec 30 '10 at 22:44

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