8

I'm writting a C++ program, and want to use Docker on it. The Dockerfile looks like the following:

FROM gcc:7.2.0
ENV MYP /repo
WORKDIR ${MYP}
COPY . ${MYP}

RUN /bin/sh -c 'make'
ENTRYPOINT ["./program"]
CMD ["file1", "file2"]

This program needs two input files (file1 and file2) and is built and executed with as follows:

docker build -t image .
docker run -v /home/user/tmp/:/repo/dir image dir/file1 dir/file2

These input files are located in the host in /home/user/tmp/. In the original repository (repo/), the executable is located in its root directory, and the output file generated is saved in the same folder (i.e. they look like repo/program and repo/results.md).

When I run the above docker run command, I can see from the standard output that the executable is reading correctly the input files and generating the expected results. However, I hoped the written output file (generated by the program with std::ofstream) to be also saved in the mounted directory /home/user/tmp/, but its not.

How can I access this file? Is there a straightforward way to get it using the docker volume mechanism?

Docker version is 18.04.0-ce, build 3d479c0af6.

EDIT

The relevant code regarding how the program saves the output file result.md is the following:

std::string filename ("result.md"); // in the actual code this name is not hard-coded and depends on intput, but it will not include / chars
std::ofstream output_file;
output_file.open(filename.data(), std::ios::out);
output_file << some_data << etc << std::endl;
...
output_file.close();

In practice, the program is run as program file1 file2, and the output will be saved in the working directory, not matter if its the same where program is placed or not.

13
  • What happens if you manually run the program from within your instance? docker run -v /home/user/tmp/:/repo/dir image bash Are there any errors in docker logs?
    – zero298
    May 15, 2018 at 14:34
  • I'm asking because mounting and running a trivial container and then writing to the mounted host directory worked correctly. I'm wondering if your program is either causing an exception, writing to the wrong location, or possibly not even running. Manually running the program might help diagnose the issue as well as showing the logs.
    – zero298
    May 15, 2018 at 14:36
  • The above command generates an error message returned by the program, which asks for the missing input files. If these input files are given (as in the post but followed by bash), it responds a similar error message. I'm going to look into the logs, but cannot tell you right now because docker ps does not return container names and have never used docker log before. Any way, when I run the command in the post, from the standard output I would say that the binary is being executed as expected. May 15, 2018 at 14:43
  • Are you missing a "-t" in the docker run command? When you say the docker is generating the correct output files, do you know if they are in the correct place (specifically the mapped volume)? Can you "docker run -ti image bash" and verify they are there? I don't think "repo/results.md" is in "/repo/dir" so you should not see it in the mapped volume. May 15, 2018 at 14:58
  • Again, the program asks for the missing input parameters, and if I run docker run -ti -v /home/user/tmp/:/repo/dir image dir/file1 dir/file2 bash the program will also return an error indicating that there are more arguments than expected. Without bash the program runs well, but cannot see the output files with -ti. @zero298 I just come to see the logs and looks fine. May 15, 2018 at 15:07

2 Answers 2

7

You need to be sure to save your file into the mounted directory. Right now, it looks like your file is being saved as a sibling to your program which is right outside of the mounted directory.

Since you mount with:

docker run -v /home/user/tmp/:/repo/dir image dir/file1 dir/file2

/repo/dir is the only folder you will see changes to. But if you are saving files to /repo, they will get saved there, but not seen on the host system after running.

Consider how you open your output file:

std::string filename ("result.md"); // in the actual code this name is not hard-coded and depends on intput, but it will not include / chars
std::ofstream output_file;
output_file.open(filename.data(), std::ios::out);
output_file << some_data << etc << std::endl;
...
output_file.close();

Since you set the output file to "result.md" with no path, it is going to be opened as a sibling to the program.

If you were to run

docker run -it --rm --entrypoint=/bin/bash image

which would open an interactive shell using your image and then run ./program some-file.text some-other-file.txt and then ran ls you would see the output file result.md as a sibling to program. That is outside of your mountpoint, which is why you don't see it on your host machine.


Consider this program. This program will take an input file and an output location. It will read in each line of the infile and wrap it in <p>. /some is the repository directory. /some/res/ is the folder that will be mounted to /repo/res/.

I provide 2 arguments to my program through docker run, the infile and outfile both of which are relative to /repo which is the working directory.

My program then saves to the outfile location which is within the mountpoint (/repo/res/). After docker run finishes, /some/res/out.txt is populated.


Folder structure:

.
├── Dockerfile
├── README.md
├── makefile
├── res
│   └── in.txt
└── test.cpp

Commands run:

docker build -t image .
docker run --rm -v ~/Desktop/some/res/:/repo/res/ image ./res/in.txt ./res/out.txt

Dockerfile:

FROM gcc:7.2.0
ENV MYP /repo
WORKDIR ${MYP}
COPY . ${MYP}

RUN /bin/sh -c 'make'
ENTRYPOINT ["./test"]
CMD ["file1", "file2"]

makefile:

test: test.cpp
    g++ -o test test.cpp

.PHONY: clean

clean:
     rm -f test

test.cpp:

#include <fstream>
#include <iostream>
#include <string>

int main(int argc, char **argv) {
    if (argc < 3) {
        std::cout << "Usage: test [infile] [outfile]" << std::endl;
        return 1;
    }

    std::cout << "All args" << std::endl;
    for (int i = 0; i < argc; i++) {
        std::cout << argv[i] << std::endl;
    }

    std::string line;
    std::ifstream infile(argv[1]);
    std::ofstream outfile(argv[2]);

    if (!(infile.is_open() && outfile.is_open())) {
        std::cerr << "Unable to open files" << std::endl;
        return 1;
    }

    while (getline(infile, line)) {
        outfile << "<p>" << line << "</p>" << std::endl;
    }
    outfile.close();

    return 0;
}

res/in.txt:

hello
world

res/out.txt (after running command):

<p>hello</p>
<p>world</p>
4
  • Very instructive answer. I can reproduce the example and the out.txt file is indeed saved. I only have a more question, regarding a program that would return more than one output file, I guess it would be enough with passing the output path as argument, right? May 15, 2018 at 16:32
  • PS: I want to thank you and the other users that helped solving the issue. Thank you very much!! May 15, 2018 at 16:33
  • 1
    @EuGENE Yes, I'd say that would definitely be a good option. Just be sure to have a check in your program to verify that files can be saved to the location. I suppose the is_open() will still tell you that, but it's something to be aware of.
    – zero298
    May 15, 2018 at 16:34
  • 1
    @EuGENE I rejected your edit. For the example program that I put forth, the docker run command is correct. I just double checked it.
    – zero298
    May 15, 2018 at 16:47
0

I would like yo post the Dockerfile I'm using right now, in the hope it can be useful to somebody. It doesn't need to specify a name or path for output files. Output files are always written in $PWD.

FROM alpine:3.4

LABEL version="1.0"
LABEL description="some nice description"
LABEL maintainer="user@home.com"

RUN apk update && apk add \
  gcc \
  g++ \
  make \
  git \
  && git clone https://gitlab.com/myuser/myrepo.git \
  && cd myrepo \
  && make \
  && cp program /bin \
  && rm -r /myrepo \
  && apk del g++ make git

WORKDIR /tmp

ENTRYPOINT ["program"]

I only need to run:

docker run --rm -v $PWD:/tmp image file1 file2

Inside the image, the working directory is tmp and cannot be changed, which is the one passed to the volume -v option. After running the image, all output files will be saved in the corresponding working directory of the host machine.

1
  • 1
    I think mounting directly to /tmp like that will overwrite anything that was already there and result in unwanted temporary files being saved to the host's file system. /tmp/output would be better.
    – mallwright
    Dec 28, 2021 at 10:29

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