21

What's a pythonic approach for reading a line from a file but not advancing where you are in the file?

For example, if you have a file of

cat1
cat2
cat3

and you do file.readline() you will get cat1\n . The next file.readline() will return cat2\n .

Is there some functionality like file.some_function_here_nextline() to get cat1\n then you can later do file.readline() and get back cat1\n?

32

As far as I know, there's no builtin functionality for this, but such a function is easy to write, since most Python file objects support seek and tell methods for jumping around within a file. So, the process is very simple:

  • Find the current position within the file using tell.
  • Perform a read (or write) operation of some kind.
  • seek back to the previous file pointer.

This allows you to do nice things like read a chunk of data from the file, analyze it, and then potentially overwrite it with different data. A simple wrapper for the functionality might look like:

def peek_line(f):
    pos = f.tell()
    line = f.readline()
    f.seek(pos)
    return line

print peek_line(f) # cat1
print peek_line(f) # cat1

You could implement the same thing for other read methods just as easily. For instance, implementing the same thing for file.read:

def peek(f, length=1):
    pos = f.tell()
    data = f.read(length) # Might try/except this line, and finally: f.seek(pos)
    f.seek(pos)
    return data

print peek(f, 4) # cat1
print peek(f, 4) # cat1
  • +1 That's a nice one – Paulo Bu May 30 '13 at 16:15
  • 1
    It doesn't work for me. It return OSError: telling position disabled by next() call – rtrtrt Nov 17 '18 at 23:25
5

You could use wrap the file up with itertools.tee and get back two iterators, bearing in mind the caveats stated in the documentation

For example

from itertools import tee
import contextlib
from StringIO import StringIO
s = '''\
cat1
cat2
cat3
'''

with contextlib.closing(StringIO(s)) as f:
  handle1, handle2 = tee(f)
  print next(handle1)
  print next(handle2)

 cat1
 cat1
  • Nice approach; definitely meets the OP's "Pythonic" request. My only concern would be what to do if a larger (perhaps arbitrary) number of "reads" is required? Just increasing the number of iterators seems like it would get messy very quickly. – Henry Keiter May 30 '13 at 16:04
  • This is a good, Pythonic answer. – kindall May 30 '13 at 16:04
  • Responding to my own concern, I guess you could keep one handle as the "base" and keep recreating/teeing off that as needed: basehandle, readfromme = tee(f) print next(readfromme) basehandle, readfromme = tee(basehandle) print next(readfromme). A little ugly but maybe useful depending on the application. – Henry Keiter May 30 '13 at 16:11
  • @HenryKeiter, if it is known that no more than x "seen" lines would be needed at arbitrary times, one option involves populating an x-sized deque with each line as it is read and using it as a buffer – iruvar May 30 '13 at 16:20
  • @1_CR Sure. I'm more concerned with the case where it isn't known how many times a certain chunk of the file might need to be read. Of course it may be better to use a single f.readlines() in that case, or store the data some other way, but hey. – Henry Keiter May 30 '13 at 16:28
2

Manually doing it is not that hard:

f = open('file.txt')
line = f.readline()
print line
>>> cat1
# the calculation is: - (length of string + 1 because of the \n)
# the second parameter is needed to move from the actual position of the buffer
f.seek((len(line)+1)*-1, 1)
line = f.readline()
print line
>>> cat1

You can wrap this in a method like this:

def lookahead_line(file):
    line = file.readline()
    count = len(line) + 1
    file.seek(-count, 1)
    return file, line

And use it like this:

f = open('file.txt')
f, line = lookahead_line(f)
print line

Hope this helps!

  • Does not work for me: io.UnsupportedOperation: can't do nonzero cur-relative seeks – rtrtrt Nov 17 '18 at 23:29
2

The more_itertools library offers a peekable class that allows you to peek() ahead without advancing an iterable.

with open("file.txt", "r") as f:
    p = mit.peekable(f.readlines())

p.peek()
# 'cat1\n'

next(p)
# 'cat1\n'

We can veiw the next line before calling next() to advance the iterable p. We can now view the next line by calling peek() again.

p.peek()
# 'cat2\n'

See also the more_itertools docs, as peekable allow you to prepend() items to an iterable before advancing as well.

1

Solutions with tell()/seek() will not work with stdin and other iterators. More generic implementation can be as simple as this:

class lookahead_iterator(object):
    __slots__ = ["_buffer", "_iterator", "_next"]
    def __init__(self, iterable):
        self._buffer = [] 
        self._iterator = iter(iterable)
        self._next = self._iterator.next
    def __iter__(self):
        return self 
    def _next_peeked(self):
        v = self._buffer.pop(0)
        if 0 == len(self._buffer):
            self._next = self._iterator.next
        return v
    def next(self):
        return self._next()
    def peek(self):
        v = next(self._iterator)
        self._buffer.append(v)
        self._next = self._next_peeked
        return v

Usage:

with open("source.txt", "r") as lines:
    lines = lookahead_iterator(lines)
    magic = lines.peek()
    if magic.startswith("#"):
        return parse_bash(lines)
    if magic.startswith("/*"):
        return parse_c(lines)
    if magic.startswith("//"):
        return parse_cpp(lines)
    raise ValueError("Unrecognized file")

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