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i'm using expect to automate some bash scripts. All goes right until i need to execute a sourced script; then i get this error:

couldn't execute "source": no such file or directory
while executing
"spawn "source""
(file "./setNAME.exp" line 2)

I use expect in a basic way (spawn/expect/send/interact); the problem is with spawn. Let me show a very easy example:

Script to read a name, echo the value and export to the environment as 'NAME':

/home/edu/scripts [] cat
echo "Your name?"
read name
export NAME=$name
echo "Provided NAME is $name"

If you execute with 'source' then the input value will be exported as environment variable. Just what i need:

/home/edu/scripts [] source
Your name?
Provided NAME is Dennis

/home/edu/scripts [] echo $NAME

Let's to use expect to avoid interaction, setting 'edu' as the name:

/home/edu/scripts [] cat setNAME.exp
expect "Your name?"
send edu\r

/home/edu/scripts [] setNAME.exp
Your name?
Provided NAME is edu

/home/edu/scripts [] echo $NAME

But the name, obviously, is still Dennis: 'edu' is shown at sh script output but not exported as NAME because expect script spawns the script WITHOUT source (or dot before script).

The problem is that I CAN'T DO THIS because i get the error commented at the beginning.

Any ideas to solve/afford this need ?

In my case the script is much more complex and other solutions are also invalid, for example things like this:

source << EOF

That's the reason i'm trying to use expect...

Thanks a lot!

share|improve this question
excellent first question, Sorry, not an expect expert, but did you try spawn source setname.csh? Good luck. – shellter Jul 12 '13 at 14:46
Yes of course that the first thing i did (sorry I didn't explain well). I don't understand the reason but surely there is one. I tried with quotes too: spawn "source <script>", but same results... – eramos Jul 14 '13 at 11:30
try turning on all shell debugging levels, in csh it is set -vx (and probably similar in expect). Then you can see each line as it is executed both before and after variable values are assigned. That may give you a clue. As this is a simple script, you also might try implementing just this much in bash, edit your question with those results and tag with bash. You'll get a lot more help then. Good luck. – shellter Jul 14 '13 at 13:18
Ok, i modified the original question using bash instead of csh. I tried sh/ksh/bash with the same result. Hope the new tag helps to found a solution. I debug (set -x in ksh/bash and -xv in csh) but no idea of what's happening. – eramos Jul 14 '13 at 22:44

1 Answer 1

source is a shell builtin, not a system command, so you first need to spawn a shell then send the source command to it. That shell will then have the value in the NAME variable

share|improve this answer
ok, it works, thank u very much. Summing up: the hint is to spawn /bin/sh, and then send "source <script>\r". – eramos Jul 18 '13 at 14:45

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