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I am making a program that is supposed to read MIDI input from a set device. In order for the user to set the device they wish for the program to listen to, they should run ./program config and then choose one of the listed options, then the program dies.

In order to start the "listening" process, they are supposed to run ./program start. Now here comes my problem. I can make it print to the console the MIDI message received but I can not figure out how to set the program to run in the background indefinetly and dump all it reads into a .log file. In theory the user should call ./program start in order to start the background process and when they wish to end it, they should do ./program stop.

I tried using fork() as follows:

void command_start(sqlite3 *mDatabase, RtMidiIn *mMidiIn, RtMidiOut *mMidiOut) {
    pid_t mPID = fork();
    if (mPID == -1) {
        puts(ERROR_MESSAGE_BACKGROUND_THREAD_FAIL);
        return;
    } else if (mPID == 0) {
        //store the pid in a file
        mMidiIn->openPort(database_get_input_device());
        mMidiIn->ignoreTypes(false, false, false);
        mMidiIn->setCallback(&callback, mDatabase);
    } else {
        int mStatus;
        (void)waitpid(mPID, &mStatus, 0);
    }
}

void callback(double mTime, std::vector< unsigned char > *mMessage, void *mDB) {
    //dump message to file
}

void command_stop() {
    mMidiIn->closePort();
    kill(database_get_pid(),SIGKILL);
}

However, this is not working. My assumption is that the background process sets the callback function to the MidiIn object and then dies, killing the MidiIn instance with it. How can i keep it alive indefinetly and then manually kill it with either ./program stop or using bash kill. Any suggestions? The background process should still receive the MIDI input even if it does not have a console window attached to it.

--------UPDATE--------

I managed to get it to partially work, with the following code:

void *background_thread_read_midi(void *notUsed) {
    double mStamp;
    std::vector<unsigned char> mMessage;
    RtMidiIn *mMidiIn = 0;
    try { mMidiIn = new RtMidiIn(); }
    catch ( RtMidiError &error ) { error.printMessage(); }
    mMidiIn->openPort(database_get_input_device());
    mMidiIn->ignoreTypes(false, false, false);
    FILE *mFile;
    while (true) {
        mStamp = mMidiIn->getMessage(&mMessage);
        if (mStamp > 0) {
            mFile = fopen("caca.txt", "a");
            fprintf(mFile, "%d, %d, %d\n", (int)mMessage.at(0), (int)mMessage.at(1), (int)mMessage.at(2));
            fclose(mFile);
        }
    }
}

void command_start(sqlite3 *mDatabase, RtMidiIn *mMidiIn, RtMidiOut *mMidiOut) {
    pthread_t mThread;
    pthread_create(&mThread, NULL, background_thread_read_midi, NULL);
    pthread_detach(mThread);
    pthread_exit(0);
}

The thread is working properly if called with: user@pc:/program$ ./MidiCommands --start However, the main thread seems to not be exiting, since the cursor is just blinking on the start of the new line, and if i Ctrl-C out of it, the thread dies too.

If i run user@pc:/program$ ./MidiCommands --start &, then it works fine, unless i close the terminal from which it was launched. How can i get it to launch directly in the background, without having to run it with the & at the end, and also keep running when the terminal is closed?

  • "However, this is not working." What is not working? Please describe exactly what happens. Also, the code you provided clearly would exit immediately after a call to setCallback(), so I have to presume, this is not full code. Please provide MCVE. – SergeyA Jul 12 at 15:31
  • Why are you writing code to fork a background process? Just use the shell to execute it in the background, then you don't have to code it. (and you can make it a service using system level configurations.) – Jay Jul 12 at 15:35
  • @SergeyA By "this is not working" I mean that the file is opened but it gets no input because obviously the code exits just as you said. My question essentially is "How can i keep the process alive for the callback to actually do something?". – Mike Jul 12 at 15:36
  • @Jay I want it to be done within the code so it is as easy as it can be for the user. – Mike Jul 12 at 15:37
  • @Mike, by not exiting? If the code posted is exact, why would you expect it not to exit? What would make it waiting? Forget about fork for a second, let's assume it is a single process. A single process would exit at this point, why forked one would not? – SergeyA Jul 12 at 15:40

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