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Dear all! I find a question with ipython.

When I input

!ls -l | awk '{print $$1}' 

It gives me:

drwxr-xr-x  2 ckivip ckivip  4096 Oct 11 20:38 Desktop

drwxr-xr-x  6 ckivip ckivip  4096 Oct 11 22:57 Documents

drwxrwxr-x  3 ckivip ckivip  4096 Oct 11 12:53 Downloads

drwxr-xr-x  6 ckivip ckivip  4096 Sep 29 18:22 Epigenetics

drwxr-xr-x  2 ckivip ckivip  4096 Sep 20 14:59 Music

drwxr-xr-x 23 ckivip ckivip  4096 Oct 10 11:02 Pictures

drwxr-xr-x  8 ckivip ckivip  4096 Sep 20 15:21 Project

drwx------  5 ckivip ckivip  4096 Sep 25 21:31 R

drwxr-xr-x  5 ckivip ckivip  4096 Oct  9 19:23 Share

However, when I input

!ls -l | awk '{print $1}' 

It gives me:

drwxr-xr-x

drwxr-xr-x

drwxrwxr-x

drwxr-xr-x

drwxr-xr-x

drwxr-xr-x

drwxr-xr-x

drwx------

It's so annoying about the "$" symbol. And the most ugly thing is that I also can't transport the variables in python to shell using '$' when I use 'awk' function. How can I deal with it?

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IPython lets you use $var to put Python variables into the command, so you have to double it up if you want to pass a literal $ to the command. You can also use {var}, which might work in more cases. –  Thomas K Oct 13 '12 at 10:04
    
In the first situation,I use double '$'. However, it gives me the wrong answer. In the second situation, I use only one '$'. And it gives me the right answer. Why? @Thomas K –  xiuxing Oct 13 '12 at 10:41
    
Oh, because that whole bit is inside {} brackets (and it's not a valid Python expression), it gets passed through as is. So you don't need to double it up. –  Thomas K Oct 14 '12 at 15:20

1 Answer 1

I'm not familiar with ipython but to address the part about passing the values of shell variables to awk: you do that with 'awk -v variable=value', so if you have a shell variable "$1" that contains the value "3" and you want awk to print the 3rd field of your input based on that, then the syntax is:

awk -v f="$1" '{ print $f }'

so in the above you could try:

!ls -l | awk -v f="$1" '{print $f}'

or if doubling the shell "$"s is required:

!ls -l | awk -v f="$$1" '{print $f}'

Hope that helps.

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