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I was just reading THIS article on Docker , Its an article describing how to dockerize a simple application. The following command is executed:

$ docker run -t -i ubuntu:14.04 /bin/bash, 

and then, The following explanation is given:

Here we’ve again specified the docker run command and launched an ubuntu:14.04 image. But we’ve also passed in two flags: -t and -i. The -t flag assigns a pseudo-tty or terminal inside our new container and the -i flag allows us to make an interactive connection by grabbing the standard in (STDIN) of the container.

I don't understand the meaning of:

-i flag allows us to make an interactive connection by grabbing the standard in (STDIN)

Thank you.

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3 Answers 3

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Docker's -i/--interactive allows you to send commands to the container via standard input ("STDIN"), which means you can "interactively" type commands to the pseudo-tty/terminal created by the -t switch.

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  • 3
    whats the difference between interactively vs non-interactively ? Aug 26, 2015 at 16:56
  • 2
    non-interactive means that you can't pass in text to the tty you allocated with -t. interactive means you can type commands and the tty in the container will receive this text.
    – user559633
    Aug 26, 2015 at 17:01
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    I am still confused. The meaning of -i, according to the docs, is "Keep STDIN open even if not attached". That suggests to me that -i should be unnecessary when STDIN is attached and only be needed when the -d option or an explicit -a not including STDIN is used. However, this is obviously wrong since if I run docker run -t ubuntu cat, it doesn't echo input; I have to add -i to get that; but I don't understand neither why -i is necessary here nor why anyone would want the behavior of -t without -i. Nor do I see if -i is useful with -d or -a, as the docs imply.
    – gmr
    Apr 18, 2016 at 5:59
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+25

I explained here that -i, --interactive keeps STDIN open even if not attached, which you need if you want to type any command at all.

That helps for pipes:

$ echo hello | docker run -i busybox cat
  hello

Meaning: -i does not always need -t (tty), with tty being the text-terminal.

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  • What does "not attached" mean, exactly? Aug 27, 2020 at 8:06
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    @VladimirPanteleev Attached to a tty. See also stackoverflow.com/a/36565383/6309 and stackoverflow.com/a/35462735/6309
    – VonC
    Aug 27, 2020 at 8:25
  • OK, though it would help to clarify what exactly is "attached to a TTY". So, I understand that "not attached" used to mean "-a is not specified", but the meaning of -a changed and now it's less obvious. So, to be more precise, if -d is not specified, lack of -i and -a is the same as -a stdout -a stderr, but with -i, it's the same as -a stdin -a stdout -a stderr. Aug 27, 2020 at 12:13
  • @VladimirPanteleev Yes, -i would asdd the -a stdin indeed. -i keep the the container’s stdin available, either to a pseudo tty (-t), or to any pipe, when run with -d, in background mode.
    – VonC
    Aug 27, 2020 at 12:18
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From the docs:

For interactive processes (like a shell), you must use -i -t together in order to allocate a tty for the container process. -i -t is often written -it as you’ll see in later examples. Specifying -t is forbidden when the client is receiving its standard input from a pipe, as in:

$ echo test | docker run -i busybox cat

The -t flag is how Unix/Linux handles terminal access. Historically, a terminal was a hardline connection, with real pieces of hardware.

Today however, a pseudo-terminal driver is used.

  • Run a container with no flags and by default you have a stdout (standard output) stream.
  • Run with the -i flag, and you get a stdin (standard input) stream added, which accepts text as input.
  • Run with -t, usually with the -i and you have a terminal driver added, which if you want to interact with the process is likely what you want. It basically makes the container start to look and feel like a terminal session.

Running -t without -i, means that you will have the terminal, but your input will not be connected to the terminal input.

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  • In what cases do we need -t without -i? If there is no case, why don't Docker just make -t get stdin automatically?
    – Shuai
    Jul 7, 2021 at 1:58

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