150

I have a list of 20 file names, like ['file1.txt', 'file2.txt', ...]. I want to write a Python script to concatenate these files into a new file. I could open each file by f = open(...), read line by line by calling f.readline(), and write each line into that new file. It doesn't seem very "elegant" to me, especially the part where I have to read//write line by line.

Is there a more "elegant" way to do this in Python?

  • 7
    Its not python, but in shell scripting you could do something like cat file1.txt file2.txt file3.txt ... > output.txt. In python, if you don't like readline(), there is always readlines() or simply read(). – jedwards Nov 28 '12 at 19:57
  • 1
    @jedwards simply run the cat file1.txt file2.txt file3.txt command using subprocess module and you're done. But I am not sure if cat works in windows. – Ashwini Chaudhary Nov 28 '12 at 19:59
  • 4
    As a note, the way you describe is a terrible way to read a file. Use the with statement to ensure your files are closed properly, and iterate over the file to get lines, rather than using f.readline(). – Gareth Latty Nov 28 '12 at 20:04
  • @jedwards cat doesn't work when the text file is unicode. – Avi Cohen Aug 8 '13 at 12:11
  • Actual analysis waymoot.org/home/python_string – nu everest Feb 9 '16 at 20:40

11 Answers 11

232

This should do it

For large files:

filenames = ['file1.txt', 'file2.txt', ...]
with open('path/to/output/file', 'w') as outfile:
    for fname in filenames:
        with open(fname) as infile:
            for line in infile:
                outfile.write(line)

For small files:

filenames = ['file1.txt', 'file2.txt', ...]
with open('path/to/output/file', 'w') as outfile:
    for fname in filenames:
        with open(fname) as infile:
            outfile.write(infile.read())

… and another interesting one that I thought of:

filenames = ['file1.txt', 'file2.txt', ...]
with open('path/to/output/file', 'w') as outfile:
    for line in itertools.chain.from_iterable(itertools.imap(open, filnames)):
        outfile.write(line)

Sadly, this last method leaves a few open file descriptors, which the GC should take care of anyway. I just thought it was interesting

  • 7
    This will, for large files, be very memory inefficient. – Gareth Latty Nov 28 '12 at 20:06
  • 1
    @Lattyware: updated for memory efficiency – inspectorG4dget Nov 28 '12 at 20:08
  • 1
    @inspectorG4dget: I wasn't asking you, I was asking eyquem, who complained that your solution wasn't going to be efficient. I'm willing to bet it's more than efficient enough for the OP's use case, and for whatever use case eyquem has in mind. If he thinks it isn't, it's his responsibility to prove that before demanding that you optimize it. – abarnert Nov 28 '12 at 21:16
  • 2
    @dee: a file so large that it's contents don't fit into main memory – inspectorG4dget Aug 2 '15 at 22:59
  • 4
    Just to reiterate: this is the wrong answer, shutil.copyfileobj is the right answer. – Paul Crowley Apr 5 '17 at 17:05
167

Use shutil.copyfileobj.

It automatically reads the input files chunk by chunk for you, which is more more efficient and reading the input files in and will work even if some of the input files are too large to fit into memory:

with open('output_file.txt','wb') as wfd:
    for f in ['seg1.txt','seg2.txt','seg3.txt']:
        with open(f,'rb') as fd:
            shutil.copyfileobj(fd, wfd)
  • 3
    this is the best solution. however i wonder why you specified the chunk size yourself: the docs say that copyfileobj uses chunks by default. – flying sheep Aug 19 '15 at 9:29
  • 1
    for i in glob.glob(r'c:/Users/Desktop/folder/putty/*.txt'): well i replaced the for statement to include all the files in directory but my output_file started growing really huge like in 100's of gb in very quick time. – R__raki__ Oct 5 '16 at 8:32
  • in my opinion this is a much better answer, since the question asked for elegance. – Fabio Aug 11 '17 at 18:48
  • 5
    Note, that is will merge last strings of each file with first strings of next file if there are no EOL characters. In my case I got totally corrupted result after using this code. I added wfd.write(b"\n") after copyfileobj to get normal result – Thelambofgoat Feb 18 at 11:25
  • @flyingsheep I edited the answer to remove the explicit chunk size – Ciro Santilli 新疆改造中心法轮功六四事件 Apr 5 at 11:25
53

That's exactly what fileinput is for:

import fileinput
with open(outfilename, 'w') as fout, fileinput.input(filenames) as fin:
    for line in fin:
        fout.write(line)

For this use case, it's really not much simpler than just iterating over the files manually, but in other cases, having a single iterator that iterates over all of the files as if they were a single file is very handy. (Also, the fact that fileinput closes each file as soon as it's done means there's no need to with or close each one, but that's just a one-line savings, not that big of a deal.)

There are some other nifty features in fileinput, like the ability to do in-place modifications of files just by filtering each line.


As noted in the comments, and discussed in another post, fileinput for Python 2.7 will not work as indicated. Here slight modification to make the code Python 2.7 compliant

with open('outfilename', 'w') as fout:
    fin = fileinput.input(filenames)
    for line in fin:
        fout.write(line)
    fin.close()
  • 3
    +1, I did not know fileinput existed, definitely the best way of doing this. – Gareth Latty Nov 28 '12 at 20:21
  • @Lattyware: I think most people who learn about fileinput are told that it's a way to turn a simple sys.argv (or what's left as args after optparse/etc.) into a big virtual file for trivial scripts, and don't think to use it for anything else (i.e., when the list isn't command-line args). Or they do learn, but then forget—I keep re-discovering it every year or two… – abarnert Nov 28 '12 at 20:24
  • 1
    @abament I think for line in fileinput.input() isn't the best way to choose in this particular case: the OP wants to concatenate files, not read them line by line which is a theoretically longer process to execute – eyquem Nov 28 '12 at 20:30
  • 1
    @eyquem: It's not a longer process to execute. As you yourself pointed out, line-based solutions don't read one character at a time; they read in chunks and pull lines out of a buffer. The I/O time will completely swamp the line-parsing time, so as long as the implementor didn't do something horribly stupid in the buffering, it will be just as fast (and possibly even faster than trying to guess at a good buffer size yourself, if you think 10000 is a good choice). – abarnert Nov 28 '12 at 20:46
  • 2
    Example code not quite valid for Python 2.7.10 and later: stackoverflow.com/questions/30835090/… – CnrL Sep 25 '15 at 13:43
6

What's wrong with UNIX commands ? (given you're not working on Windows) :

ls | xargs cat | tee output.txt does the job ( you can call it from python with subprocess if you want)

  • 14
    Coz these might not work in windows. – Ashwini Chaudhary Nov 28 '12 at 20:02
  • 15
    because this is a question about python. – ObscureRobot May 21 '15 at 17:58
  • 2
    Nothing wrong in general, but this answer is broken (don't pass the output of ls to xargs, just pass the list of files to cat directly: cat * | tee output.txt). – Clément Nov 10 '17 at 1:24
  • If it can insert filename as well that would be great. – Deqing Oct 11 '18 at 6:07
  • @Deqing To specify input file names, you can use cat file1.txt file2.txt | tee output.txt – GoTrained Jul 25 at 6:43
6

I don't know about elegance, but this works:

    import glob
    import os
    for f in glob.glob("file*.txt"):
         os.system("cat "+f+" >> OutFile.txt")
  • 5
    you can even avoid the loop: import os; os.system("cat file*.txt >> OutFile.txt") – lib Feb 13 '15 at 14:36
  • 6
    not crossplatform and will break for file names with spaces in them – flying sheep Aug 19 '15 at 10:09
  • 3
    This is insecure; also, cat can take a list of files, so no need to repeatedly call it. You can easily make it safe by calling subprocess.check_call instead of os.system – Clément Nov 10 '17 at 1:22
2

An alternative to @inspectorG4dget answer (best answer to date 29-03-2016). I tested with 3 files of 436MB.

@inspectorG4dget solution: 162 seconds

The following solution : 125 seconds

from subprocess import Popen
filenames = ['file1.txt', 'file2.txt', 'file3.txt']
fbatch = open('batch.bat','w')
str ="type "
for f in filenames:
    str+= f + " "
fbatch.write(str + " > file4results.txt")
fbatch.close()
p = Popen("batch.bat", cwd=r"Drive:\Path\to\folder")
stdout, stderr = p.communicate()

The idea is to create a batch file and execute it, taking advantage of "old good technology". Its semi-python but works faster. Works for windows.

2

If you have a lot of files in the directory then glob2 might be a better option to generate a list of filenames rather than writing them by hand.

import glob2

filenames = glob2.glob('*.txt')  # list of all .txt files in the directory

with open('outfile.txt', 'w') as f:
    for file in filenames:
        with open(file) as infile:
            f.write(infile.read()+'\n')
2
outfile.write(infile.read()) # time: 2.1085190773010254s
shutil.copyfileobj(fd, wfd, 1024*1024*10) # time: 0.60599684715271s

A simple benchmark shows that the shutil performs better.

1

Check out the .read() method of the File object:

http://docs.python.org/2/tutorial/inputoutput.html#methods-of-file-objects

You could do something like:

concat = ""
for file in files:
    concat += open(file).read()

or a more 'elegant' python-way:

concat = ''.join([open(f).read() for f in files])

which, according to this article: http://www.skymind.com/~ocrow/python_string/ would also be the fastest.

  • 9
    This will produce a giant string, which, depending on the size of the files, could be larger than the available memory. As Python provides easy lazy access to files, it's a bad idea. – Gareth Latty Nov 28 '12 at 20:05
1

If the files are not gigantic:

with open('newfile.txt','wb') as newf:
    for filename in list_of_files:
        with open(filename,'rb') as hf:
            newf.write(hf.read())
            # newf.write('\n\n\n')   if you want to introduce
            # some blank lines between the contents of the copied files

If the files are too big to be entirely read and held in RAM, the algorithm must be a little different to read each file to be copied in a loop by chunks of fixed length, using read(10000) for example.

  • 1
    Why read in length based chunks rather than line-by-line? – Gareth Latty Nov 28 '12 at 20:06
  • @Lattyware Because I'm quite sure the execution is faster. By the way, in fact, even when the code orders to read a file line by line, the file is read by chunks, that are put in cache in which each line is then read one after the other. The better procedure would be to put the length of read chunk equal to the size of the cache. But I don't know how to determine this cache's size. – eyquem Nov 28 '12 at 20:17
  • That's the implementation in CPython, but none of that is guaranteed. Optimizing like that is a bad idea as while it may be effective on some systems, it may not on others. – Gareth Latty Nov 28 '12 at 20:20
  • 1
    Yes, of course line-by-line reading is buffered. That's exactly why it's not that much slower. (In fact, in some cases, it may even be slightly faster, because whoever ported Python to your platform chose a much better chunk size than 10000.) If the performance of this really matters, you'll have to profile different implementations. But 99.99…% of the time, either way is more than fast enough, or the actual disk I/O is the slow part and it doesn't matter what your code does. – abarnert Nov 28 '12 at 20:20
  • Also, if you really do need to manually optimize the buffering, you'll want to use os.open and os.read, because plain open uses Python's wrappers around C's stdio, which means either 1 or 2 extra buffers getting in your way. – abarnert Nov 28 '12 at 20:25
0
def concatFiles():
    path = 'input/'
    files = os.listdir(path)
    for idx, infile in enumerate(files):
        print ("File #" + str(idx) + "  " + infile)
    concat = ''.join([open(path + f).read() for f in files])
    with open("output_concatFile.txt", "w") as fo:
        fo.write(path + concat)

if __name__ == "__main__":
    concatFiles()

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