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child = pexpect.spawn ('/bin/bash')
child.sendline('ls')
print(child.readline())
print child.before, child.after

All I get with this code in my output is

ls

ls 

But when my code is

child = pexpect.spawn('ls')
print(child.readline())
print child.before, child.after

Then it works, but only for the first 2 prints. Am I using the wrong send command? I tried send, write, sendline, and couldn't find anymore.

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plz check this questions :- stackoverflow.com/questions/15818328/… –  Reegan Miranda Jul 15 '13 at 7:22

3 Answers 3

In pexpect the before and after attributes are populated after an expect method. The most common thing used in this situation is waiting for the prompt (so you'll know that the previous command finished execution). So, in your case, the code might look something like this:

child = pexpect.spawn ('/bin/bash')
child.sendline('ls')
#If you are using pxssh you can use this
#child.prompt()
child.expect("Your bash prompt here")
print(child.before)
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#!/usr/bin/env python

import pexpect
child = pexpect.spawn("ssh root@172.16.0.120c -p 2222")
child.logfile = open("/tmp/mylog", "w")
child.expect(".*assword:")
child.send("XXXXXXX\r")
child.expect(".*\$ ")
child.sendline("ls\r")
child.expect(".*\$ ")

go to open your logfile:- go to terminal

$gedit /tmp/mylog
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I think all you need is:

p = pexpect.spawn('ls')
p.expect(pexpect.EOF)
print(p.before)

or

p = pexpect.spawn('/bin/ls')
p.expect(pexpect.EOF)
print(p.before)

or

p = pexpect.spawn('/bin/bash -c "ls"')
p.expect(pexpect.EOF)
print(p.before)

or even

print(pexpect.run('ls'))
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