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I have a file and I don't know how big it's going to be (it could be quite large, but the size will vary greatly). I want to search the last 10 lines or so to see if any of them match a string. I need to do this as quickly and efficiently as possible and was wondering if there's anything better than:

s = "foo"
last_bit = fileObj.readlines()[-10:]
for line in last_bit:
    if line == s:
        print "FOUND"
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2  
Exact Duplicate of stackoverflow.com/questions/136168/tail-a-file-with-python. –  S.Lott Nov 4 '08 at 2:05

16 Answers 16

up vote 22 down vote accepted
# Tail
from __future__ import with_statement

find_str = "FIREFOX"                    # String to find
fname = "g:/autoIt/ActiveWin.log_2"     # File to check

with open(fname, "r") as f:
    f.seek (0, 2)           # Seek @ EOF
    fsize = f.tell()        # Get Size
    f.seek (max (fsize-1024, 0), 0) # Set pos @ last n chars
    lines = f.readlines()       # Read to end

lines = lines[-10:]    # Get last 10 lines

# This returns True if any line is exactly find_str + "\n"
print find_str + "\n" in lines

# If you're searching for a substring
for line in lines:
    if find_str in line:
        print True
        break
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1  
The "if len(l) < 10" is redundant. "print l[:-10]" handles that case. –  Darius Bacon Nov 4 '08 at 0:35
    
@Darius: I really meant if len(l) > 10, fixed –  PabloG Nov 4 '08 at 1:16
2  
lines[:-10] drops the last 10 lines. What you want is lines[-10:]. –  Markus Jarderot Nov 4 '08 at 1:20
    
@MizardX / @ΤΖΩΤΖΙΟΥ: you're right, of course. Thx for the bugfix/comment –  PabloG Nov 4 '08 at 11:31
7  
This will fail if the file has very long lines. The code assumes that the last 10 lines falls within the last 1k of data. There should be a check that there are at least 11 lines, or continue to seek backwards until that condition is true. –  Bryan Oakley Mar 13 '10 at 13:09

Here's an answer like MizardX's, but without its apparent problem of taking quadratic time in the worst case from rescanning the working string repeatedly for newlines as chunks are added.

Compared to the activestate solution (which also seems to be quadratic), this doesn't blow up given an empty file, and does one seek per block read instead of two.

Compared to spawning 'tail', this is self-contained. (But 'tail' is best if you have it.)

Compared to grabbing a few kB off the end and hoping it's enough, this works for any line length.

import os

def reversed_lines(file):
    "Generate the lines of file in reverse order."
    part = ''
    for block in reversed_blocks(file):
        for c in reversed(block):
            if c == '\n' and part:
                yield part[::-1]
                part = ''
            part += c
    if part: yield part[::-1]

def reversed_blocks(file, blocksize=4096):
    "Generate blocks of file's contents in reverse order."
    file.seek(0, os.SEEK_END)
    here = file.tell()
    while 0 < here:
        delta = min(blocksize, here)
        here -= delta
        file.seek(here, os.SEEK_SET)
        yield file.read(delta)

To use it as requested:

from itertools import islice

def check_last_10_lines(file, key):
    for line in islice(reversed_lines(file), 10):
        if line.rstrip('\n') == key:
            print 'FOUND'
            break

Edit: changed map() to itertools.imap() in head(). Edit 2: simplified reversed_blocks(). Edit 3: avoid rescanning tail for newlines. Edit 4: rewrote reversed_lines() because str.splitlines() ignores a final '\n', as BrianB noticed (thanks).

Note that in very old Python versions the string concatenation in a loop here will take quadratic time. CPython from at least the last few years avoids this problem automatically.

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Very nice -- I read down the list of answers until I got here, knowing that the best one would be whichever was savvy enough to use the yield directive –  Brian B Dec 4 '12 at 23:08
    
Fixed a corner case for ya -- sometimes a block ends in a newline, so the tail is its own entry. –  Brian B Dec 5 '12 at 21:12
    
@BrianB, thanks -- can you give a test case where my code breaks? I've reverted your change because it failed on the first thing I tried, '\nhello\n\nworld\n' (with blocksize set to 2). (My thanks are not ironic because I expect you noticed a real case where my code failed instead.) –  Darius Bacon Dec 9 '12 at 19:45
    
@BrianB, I think I see what you saw, and it seems nicest to rewrite the whole function, alas. Done. –  Darius Bacon Dec 9 '12 at 20:49
    
Works, but it is about half as fast as the previous version (as corrected). –  Brian B Dec 13 '12 at 15:02

I took mhawke's suggestion to use mmap and wrote a version that uses rfind:

from mmap import mmap
import sys

def reverse_file(f):
    mm = mmap(f.fileno(), 0)
    nl = mm.size() - 1
    prev_nl = mm.size()
    while nl > -1:
        nl = mm.rfind('\n', 0, nl)
        yield mm[nl + 1:prev_nl]
        prev_nl = nl + 1

def main():
    # Example usage
    with open('test.txt', 'r+') as infile:
        for line in reverse_file(infile):
            sys.stdout.write(line)
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Maybe this might be useful:

import os.path

path = 'path_to_file'
os.system('tail -n1 ' + path)
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could be one way, but its not portable. –  ghostdog74 Mar 13 '10 at 13:31

You could also count the lines as you reverse through the file, instead of guessing at a byte offset.

lines = 0
chunk_size = 1024

f = file('filename')
f.seek(0, 2)
f.seek(f.tell() - chunk_size)

while True:
    s = f.read(chunk_size)
    lines += s.count('\n')
    if lines > NUM_OF_LINES:
        break
    f.seek(f.tell() - chunk_size*2)

Now the file is at a good position to run readlines(). You also could cache the strings you read the first time, to eliminate reading the same portion of the file twice.

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This solution will read the file only once, but using 2 file object pointers to be able obtain the last N lines of file without re-reading it:

def getLastLines (path, n):
    # return the las N lines from the file indicated in path

    fp = open(path)
    for i in range(n):
        line = fp.readline()
        if line == '':
            return []

    back = open(path)
    for each in fp:
        back.readline()

    result = []
    for line in back:
        result.append(line[:-1])

    return result




s = "foo"
last_bit = getLastLines(r'C:\Documents and Settings\ricardo.m.reyes\My Documents\desarrollo\tail.py', 10)
for line in last_bit:
    if line == s:
        print "FOUND"
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I think reading the last 2 KB or so of the file should make sure you get 10 lines, and shouldn't be too much of a resource hog.

file_handle = open("somefile")
file_size = file_handle.tell()
file_handle.seek(max(file_size - 2*1024, 0))

# this will get rid of trailing newlines, unlike readlines()
last_10 = file_handle.read().splitlines()[-10:]

assert len(last_10) == 10, "Only read %d lines" % len(last_10)
share|improve this answer
    
you should double check that the file is >= 2KB though –  Jake Nov 3 '08 at 23:24
    
True -- added comment about quick and dirty nature of code –  Ryan Ginstrom Nov 3 '08 at 23:54

Here is a version using mmap that seems pretty efficient. The big plus is that mmap will automatically handle the file to memory paging requirements for you.

import os
from mmap import mmap

def lastn(filename, n):
    # open the file and mmap it
    f = open(filename, 'r+')
    m = mmap(f.fileno(), os.path.getsize(f.name))

    nlcount = 0
    i = m.size() - 1 
    if m[i] == '\n': n += 1
    while nlcount < n and i > 0:
        if m[i] == '\n': nlcount += 1
        i -= 1
    if i > 0: i += 2

    return m[i:].splitlines()

target = "target string"
print [l for l in lastn('somefile', 10) if l == target]
share|improve this answer
    
Nice! I should've thought of mmap. This goes an order of magnitude slower than mine on my test of a really big 1-line file, though, I guess because it checks char-by-char in Python code. –  Darius Bacon Nov 4 '08 at 5:57
    
Yes, I was worried about the "pure Python" loop too. The loop could possibly be made more efficient than the code I've provided. If the mmap object had an rfind() method, it could have been much better! –  mhawke Nov 4 '08 at 23:00
    
FYI: Python v2.6.5's mmap objects have an rfind() method. –  RobM Feb 10 '11 at 17:41
    
tail -r also uses mmap for regular files (see r_reg() function) –  J.F. Sebastian Nov 6 '13 at 5:45

I ran into that problem, parsing the last hour of LARGE syslog files, and used this function from activestate's recipe site... (http://code.activestate.com/recipes/439045/)

!/usr/bin/env python
# -*-mode: python; coding: iso-8859-1 -*-
#
# Copyright (c) Peter Astrand <astrand@cendio.se>

import os
import string

class BackwardsReader:
    """Read a file line by line, backwards"""
    BLKSIZE = 4096

    def readline(self):
        while 1:
            newline_pos = string.rfind(self.buf, "\n")
            pos = self.file.tell()
            if newline_pos != -1:
                # Found a newline
                line = self.buf[newline_pos+1:]
                self.buf = self.buf[:newline_pos]
                if pos != 0 or newline_pos != 0 or self.trailing_newline:
                    line += "\n"
                return line
            else:
                if pos == 0:
                    # Start-of-file
                    return ""
                else:
                    # Need to fill buffer
                    toread = min(self.BLKSIZE, pos)
                    self.file.seek(-toread, 1)
                    self.buf = self.file.read(toread) + self.buf
                    self.file.seek(-toread, 1)
                    if pos - toread == 0:
                        self.buf = "\n" + self.buf

    def __init__(self, file):
        self.file = file
        self.buf = ""
        self.file.seek(-1, 2)
        self.trailing_newline = 0
        lastchar = self.file.read(1)
        if lastchar == "\n":
            self.trailing_newline = 1
            self.file.seek(-1, 2)

# Example usage
br = BackwardsReader(open('bar'))

while 1:
    line = br.readline()
    if not line:
        break
    print repr(line)

It works really well and is much more efficient then anything like fileObj.readlines()[-10:], which makes python read the entire file into memory and then chops the last ten lines off of it.

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1  
Fails if bar is empty. I have some trouble following the code, too. –  Darius Bacon Nov 4 '08 at 4:07

First, a function that returns a list:

def lastNLines(file, N=10, chunksize=1024):
    lines = None
    file.seek(0,2) # go to eof
    size = file.tell()
    for pos in xrange(chunksize,size-1,chunksize):
        # read a chunk
        file.seek(pos,2)
        chunk = file.read(chunksize)
        if lines is None:
            # first time
            lines = chunk.splitlines()
        else:
            # other times, update the 'first' line with
            # the new data, and re-split
            lines[0:1] = (chunk + lines[0]).splitlines()
        if len(lines) > N:
            return lines[-N:]
    file.seek(0)
    chunk = file.read(size-pos)
    lines[0:1] = (chunk + lines[0]).splitlines()
    return lines[-N:]

Second, a function that iterates over the lines in reverse order:

def iter_lines_reversed(file, chunksize=1024):
    file.seek(0,2)
    size = file.tell()
    last_line = ""
    for pos in xrange(chunksize,size-1,chunksize):
        # read a chunk
        file.seek(pos,2)
        chunk = file.read(chunksize) + last_line
        # split into lines
        lines = chunk.splitlines()
        last_line = lines[0]
        # iterate in reverse order
        for index,line in enumerate(reversed(lines)):
            if index > 0:
                yield line
    # handle the remaining data at the beginning of the file
    file.seek(0)
    chunk = file.read(size-pos) + last_line
    lines = chunk.splitlines()
    for line in reversed(lines):
        yield line

For your example:

s = "foo"
for index, line in enumerate(iter_lines_reversed(fileObj)):
    if line == s:
        print "FOUND"
        break
    elif index+1 >= 10:
        break

Edit: Now gets the file-size automaticly
Edit2: Now only iterates for 10 lines.

share|improve this answer
    
A nit: you don't stop searching after checking 10 lines unsuccessfully. –  Darius Bacon Nov 4 '08 at 0:54
    
Yeah, that's cool. See my answer for another way to do it, more reusable. –  Darius Bacon Nov 4 '08 at 2:00
    
Although, looking at it now, I realize my head() function goes through all 10 lines even if the key is found sooner; I should've used itertools.imap() instead of map(). –  Darius Bacon Nov 4 '08 at 2:03

If you're on a unix box, os.popen("tail -10 " + filepath).readlines() will probably be the fastest way. Otherwise, it depends on how robust you want it to be. The methods proposed so far will all fall down, one way or another. For robustness and speed in the most common case you probably want something like a logarithmic search: use file.seek to go to end of the file minus 1000 characters, read it in, check how many lines it contains, then to EOF minus 3000 characters, read in 2000 characters, count the lines, then EOF minus 7000, read in 4000 characters, count the lines, etc. until you have as many lines as you need. But if you know for sure that it's always going to be run on files with sensible line lengths, you may not need that.

You might also find some inspiration in the source code for the unix tail command.

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If you are running Python on a POSIX system, you can use 'tail -10' to retrieve the last few lines. This may be faster than writing your own Python code to get the last 10 lines. Rather than opening the file directly, open a pipe from the command 'tail -10 filename'. If you are certain of the log output though (for example, you know that there are never any very long lines that are hundreds or thousands of characters long) then using one of the 'read the last 2KB' approaches listed would be fine.

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I would be cautious with this, because shell calls have much more overhead than a direct access. –  Svante Nov 4 '08 at 5:35
1  
This is quite old, but I was not actually advocating a shell call. I was recommending calling the script with piped output from tail, rather than calling the script to read the whole file itself. –  Myrddin Emrys Mar 22 '10 at 22:06

I think I remember adapting the code from this blog post from Manu Garg when I had to do something similar.

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Personally I'd be tempted to break out to the shell and call tail -n10 to load the file. But then I'm not really a Python programmer ;)

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You could read chunks of 1,000 bytes or so from the end of the file into a buffer until you have 10 lines.

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read the last few Ks of the file, and split that into lines to return only the last 10.

it's quite unlikely the start of that chunk to fall on a line boundary, but you'll discard the first lines anyway.

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