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I have a text file which contains a time stamp on each line. My goal is to find the time range. All the times are in order so the first line will be the earliest time and the last line will be the latest time. I only need the very first and very last line. What would be the most efficient way to get these lines in python.

Note: These files are relatively large in length, about 1-2 million lines each and I have to do this for several hundred files.

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6 Answers

up vote 17 down vote accepted

docs for io module

with open(fname, 'rb') as fh:
    first = next(fh).decode()

    fh.seek(-1024, 2)
    last = fh.readlines()[-1].decode()

The variable value here is 1024: it represents the average string length. I choose 1024 only for example. If you have an estimate of average line length you could just use that value times 2.

Since you have no idea whatsoever about the possible upper bound for the line length, the obvious solution would be to loop over the file:

for line in fh:
    pass
last = line

You don't need to bother with the binary flag you could just use open(fname).

ETA: Since you have many files to work on, you could create a sample of couple of dozens of files using random.sample and run this code on them to determine length of last line. With an a priori large value of the position shift (let say 1 MB). This will help you to estimate the value for the full run.

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As long as the lines aren't longer than 1024 characters. –  FogleBird Jul 27 '10 at 18:08
    
There is no guarantee that the lines aren't longer than 1024 characters, there may be some other junk besides the timestamps on the line. –  pasbino Jul 27 '10 at 18:10
    
@pasbino: do you have some upper bound? –  SilentGhost Jul 27 '10 at 18:11
    
@pasbino: You can still use a similar approach in a loop until you find a full line. –  FogleBird Jul 27 '10 at 18:12
    
Unfortunately, I have not seen every line of these files. From a quick glance some of these lines seem extremely long. I don't think I can estimate an upper bound safely. –  pasbino Jul 27 '10 at 18:14
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Here's a modified version of SilentGhost's answer that will do what you want.

with open(fname, 'rb') as fh:
    first = next(fh)
    offs = -100
    while True:
        fh.seek(offs, 2)
        lines = fh.readlines()
        if len(lines)>1:
            last = lines[-1]
            break
        offs *= 2
    print first
    print last

No need for an upper bound for line length here.

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Open the file to read bytes and read the first line using the builtin readline(). Then seek to the end of file and step backwards until you find the line's preceding EOL and read the last line from there.

with open(file, "rb") as f:
    first = f.readline()     # Read the first line.
    f.seek(-2, 2)            # Jump to the second last byte.
    while f.read(1) != "\n": # Until EOL is found...
        f.seek(-2, 1)        # ...jump back the read byte plus one more.
    last = f.readline()      # Read last line.


Jumping to the second last byte instead of the last one prevents that you return directly because of a trailing EOL. While you're stepping backwards you'll also want to step two bytes since the reading and checking for EOL pushes the position forward one step.

When using fseek the format is fseek(offset, whence=0) whence signifies to what the offset is relative to:
0 = Relative to beginning of file
1 = Realtive to current position in file
2 = Relative to end of file

Running it through timeit 10k times on a file with 6k lines totalling 200kB gave me 1.62s vs 6.92s when comparing to the for-loop beneath that was suggested earlier. Using a 1.3GB sized file, still with 6k lines, a hundred times resulted in 8.93 vs 86.95.

with open(file, "rb") as f:
    first = f.readline()     # Read the first line.
    for last in f: pass      # Loop through the whole file reading it all.
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This is the most concise solution, and I like it. The nice part about not guessing a blocksize is that it works well with small test files. I added a few lines and wrapped it in a function I fondly call tail_n. –  MarkHu Jun 27 at 3:56
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First open the file in read mode.Then use readlines() method to read line by line.All the lines stored in a list.Now you can use list slices to get first and last lines of the file.

    a=open('file.txt','rb')
    lines = a.readlines()
    first_line = lines[:1]
    last_line = lines[-1]
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I was searching exactly this, i dont need first and last line, so lines[1,-2] gives the text between title and footer. –  guneysus Oct 31 '13 at 23:14
1  
This option cannot handle empty files. –  Val Neekman Mar 25 at 13:25
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Can you use unix commands? I think using head -1 and tail -n 1 are probably the most efficient methods. Alternatively, you could use a simple fid.readline() to get the first line and fid.readlines()[-1], but that may take too much memory.

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Hmm would creating a subprocess to execute these commands be the most efficient way then? –  pasbino Jul 27 '10 at 18:10
3  
If you do have unix then os.popen("tail -n 1 %s" % filename).read() gets the last line nicely. –  Michael Dunn Jul 27 '10 at 18:49
1  
+1 for head -1 and tail -1. fid.readlines()[-1] is not a good solution for huge files. –  Joao Figueiredo Sep 14 '11 at 18:23
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Getting the first line is trivially easy. For the last line, presuming you know an approximate upper bound on the line length, os.lseek some amount from SEEK_END find the second to last line ending and then readline() the last line.

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I do not have an approximate upper bound on line length –  pasbino Jul 27 '10 at 18:11
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