71

I am passing argument in Expect through the command line in a shell script.

I tried this

#!/usr/bin/expect -f
    
set arg1 [lindex $argv 0]
    
spawn lockdis -p
expect "password:" {send "$arg1\r"}
expect "password:" {send "$arg1\r"}
expect "$ "

But it's not working. How can I fix it?

0
108

If you want to read from arguments, you can achieve this simply by

set username [lindex $argv 0];
set password [lindex $argv 1];

And print it

send_user "$username $password"

That script will print

$ ./test.exp user1 pass1
user1 pass1

You can use Debug mode

$ ./test.exp -d user1 pass1
2
  • 9
    While this works, be careful using it as your process will appear with the arguments, username and password, when doing something like "ps aux"
    – joebeeson
    Oct 30 '15 at 13:53
  • can we loop the argument list and put them in array?
    – Vivek
    Sep 7 '17 at 7:34
8

A better way might be this:

lassign $argv arg1 arg2 arg3

However, your method should work as well. Check that arg1 is retrieved. For example, with send_user "arg1: $arg1\n".

1
  • The code above is for TCL which expect is using, and doesn't make sense for Bash.
    – spbnick
    Dec 8 '18 at 9:31
3

I like the answer provided with this guide.

It creates a parse argument process.

#process to parse command line arguments into OPTS array
proc parseargs {argc argv} {
    global OPTS
    foreach {key val} $argv {
        switch -exact -- $key {
            "-username"   { set OPTS(username)   $val }
            "-password"   { set OPTS(password)   $val }
        }
    }
}
parseargs $argc $argv
#print out parsed username and password arguments
puts -nonewline "username: $OPTS(username) password: $OPTS(password)"

The above is just a snippet. It's important to read through the guide in full and add sufficient user argument checks.

2
#!/usr/bin/expect
set username [lindex $argv 0]
set password [lindex $argv 1]
log_file -a "/tmp/expect.log"
set timeout 600
spawn /anyscript.sh
expect "username: " { send "$username\r" }
expect "password: " { send "$password\r" }
interact
-2

Note, sometimes argv 0 is the name of the script you are calling. So if you run it that way, argv 0 doesn't work.

For me I run

expect script.exp  password

That makes argv 1 = password and argv 0 = script.exp.

-3

Arguments with spaces are fine, assuming the argument you want is the first after the script name ($0 is script name, $1 is the first argument, etc.)

Make sure you use "$ARG", not $ARG as it will not include the whitespace, but break them up into individual arguments. Do this in your Bash script:

#!/bin/bash

ARG="$1"
echo WORD FROM BASH IS: "$ARG" #test for debugging

expect -d exp.expect "$ARG"

exit 0

Also, as the first answer states, use debug mode, (the -d flag). It will output your argv variables as Expect sees them and should show you what is going on.

3
  • The expect script is missing
    – Timo
    Mar 27 '18 at 18:57
  • 1
    It isn’t, “missing” it works the same way for any expect script that would be called via bash. Though in this example it would need to be called, “exp.expect.” There was no need for a downvote, my answer explains how to handle what was in question.
    – eulerworks
    Aug 13 '18 at 14:08
  • 1
    ok, I expected the content of your script which references the parameters from outside as the others showed in their examples.
    – Timo
    Aug 15 '18 at 6:40

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