34

I have a folder with 20+ video files and I need to merge them to make one long video file. How can I achieve this using FFMPEG in Python?

I know the following command

ffmpeg -vcodec copy -isync -i \ "concat:file1.mp4|file2.mp4|...|fileN.mp4" \

outputfile.mp4

But I'd rather not type all the names of the 20+ files.

7 Answers 7

45

This is what I've ended up using...

find *.mp4 | sed 's:\ :\\\ :g'| sed 's/^/file /' > fl.txt; ffmpeg -f concat -i fl.txt -c copy output.mp4; rm fl.txt

It's ugliness pains me but it seems to work ok and it handles spaces in the file names. Also, not sure why OP was asking about python - no need to use something lovely like python when some dirty old bash/sed will do the trick! ;)

ps: I know this is an old post but if googling "ffmpeg concat" brought me here it will probably bring other poor souls here too. Note the above will probably only work if all your files have the same settings/codecs.

pps: @Stackdave says he managed to delete his video folder with this back in the day! I've really no idea how that could have happened and I've had no complaints since but as always when copying and pasting randomish snippets of bash you found on the internet Caveat Emptor!

4
  • 3
    i've deleted all my files on the folder video with your script ! warning
    – stackdave
    Nov 4, 2017 at 16:43
  • 4
    Sorry to hear that Dave! reddit.com/r/ProgrammerHumor/comments/7u92m8/… Feb 1, 2018 at 14:56
  • If filename has spaces and special characters, this won't work. At least on Linux. Guarang's answer worked though.
    – gimmegimme
    Dec 8, 2023 at 15:23
  • This bash code removes spaces and special characters for file in *; do safe_name=${file//[^a-zA-Z0-9._-]/_}; if [ "$safe_name" != "$file" ]; then mv "$file" "$safe_name"; echo "Renamed '$file' to '$safe_name'"; fi; done
    – M.Viking
    Feb 11 at 8:29
29

can be a single line bash command:

for f in *.mp4 ; do echo file \'$f\' >> list.txt; done && ffmpeg -f concat -safe 0 -i list.txt -c copy stitched-video.mp4 && rm list.txt

make sure all video files are exactly the same frame size and audio-video codecs.

Else you may convert them while concatenating:

for f in *.mp4 ; do echo file \'$f\' >> list.txt; done && ffmpeg -f concat -safe 0 -i list.txt -s 1280x720 -crf 24 stitched-video.mp4 && rm list.txt
3
  • 1
    Thanks llogan. Fixed. Aug 6, 2019 at 22:16
  • This works for me. Always safe to convert and concat with second command. Thank You.
    – Dami
    May 5, 2020 at 5:18
  • Thanks! I had a list of videos like video-1.mp4, video-2.mp4, video-10.mp4..., and the files needed to be sorted. Here a version sorting the files with mixed strings a numbers: rm list.txt; for f in *.mp4 ; do echo file \'$f\' >> list.txt; done && sort -V list.txt > list-sort.txt && ffmpeg -f concat -safe 0 -i list-sort.txt -c copy stitched-video.mp4 ; rm list.txt list-sort.txt
    – soywiz
    Jan 25, 2021 at 22:02
11

Here's a Windows batch file to concatenate all .avi files in a directory:

for %%f in (*.avi) do (
    echo file %%f >> list.txt
)
ffmpeg -f concat -safe 0 -i list.txt -c copy output.avi
del list.txt

See Concatenate in ffmpeg docs.

2
  • Thank unfortunately, the file i'm dealing with has spaces in it's file name. echo file "%%f" >> list.txt was not enough. cmd stops once it encounters the first space character.
    – gimmegimme
    Apr 24, 2021 at 17:32
  • 2
    NVM, the following helped, superuser.com/questions/1574718/… . Instead of double quotes, use single quote, echo file '%%f' >> list.txt, then after the for function block AND before the statement "ffmpeg -f concat -safe...", place the following statement on its own line, sed -i "s/\"/'/g" list.txt
    – gimmegimme
    Apr 24, 2021 at 18:03
8

Use this:

cat *.mp4  | ffmpeg  -i pipe: -c:a copy -c:v copy all.mp4

Another solution:

create a text file like this:

mylist.txt

file '/path/to/file1'
file '/path/to/file2'
file '/path/to/file3'

and use ffmpeg concat:

ffmpeg -f concat -i mylist.txt -c copy all.mp4

more infos

1
  • 4
    windows not woking
    – Billy
    Feb 9, 2021 at 16:01
2

If ffmpeg won't like the *.mp4 you can just do this in place of the file list;

ls -1 *.mp4 | perl -0pe 's/\n/|/g;s/\|$//g'

but I think your example is not following specification, so you may want this:

for F in *.mp4 ; do
    ffmpeg -i $F -c copy -bsf:v h264_mp4toannexb -f mpegts $(echo $F | perl -pe 's/mp4$/ts/g');
done
ffmpeg -i "concat:$(ls -1 *.ts | perl -0pe 's/\n/|/g;s/\|$//g')" -c copy -bsf:a aac_adtstoasc outputfile.mp4

also see this similar question

1
  • 1
    Or just echo *.mp4 | tr ' ' '|', if your files have no spaces in their names. Mar 8, 2015 at 2:34
1

Windows OS solution:

  1. Open cmd.exe in destination folder
  2. Paste and run this code
chcp 65001
(for %i in (*.mp4) do @echo file '%i') > my_video_list.txt
ffmpeg -safe 0 -f concat -i my_video_list.txt -c copy output.mp4

1
  • I didn't use the chcp 65001 part, but the other two commands worked perfectly for my needs.
    – Troy Gizzi
    Feb 11 at 17:54
-1

I know that original question is about Python, but Google have brought me here, when I asked about.. actually I don't remember exact query.

First, file should have following format:

file 'filename1.mp4'
file 'filename2.mp4' 
file 'filename3.mp4'

and so on.

And next, solution in Java (Mac):

public static void joinVideos(String folderPath) throws Exception {
    File folderFile = new File(folderPath);
    //File[] files = folderFile.listFiles();
    //On Mac filter out .DS_Store
    File[] files = folderFile.listFiles(new FilenameFilter() {
        @Override
        public boolean accept(File dir, String name) {
            return !name.equals(".DS_Store");
        }
    });
    StringBuilder fileListBuilder = new StringBuilder();
    for (File file : files) {
        fileListBuilder.append("file '").append(file.getName()).append("'\n");
    }
    ReadWriteUtil.writeTxt(fileListBuilder.toString(), folderPath + File.separator + "list.txt");

    ProcessBuilder processBuilder = new ProcessBuilder("/usr/local/bin/ffmpeg", "-f", "concat", "-i", "list.txt", "-c", "copy", "output.mp4");
    File errorFile = new File(folderPath + File.separator + "error.txt");
    processBuilder.redirectError(errorFile);

    Process process = processBuilder.directory(new File(folderPath)).start();

    int exitCode = process.waitFor();
    String error = ReadWriteUtil.readFileAsString(errorFile);
    System.out.println("error: " + error);
    System.out.println("VideoJoiner Finished with exit code: " + exitCode);
    System.out.println("videos joined");

}

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.