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first time here as I've finally started to learn programming. Anyway, I'm just trying to print the time in nanoseconds every second here, and I have this:

#!/usr/bin/env bash

while true;
do
 date=(date +%N) ;
 echo $date ;
 sleep  1 ;
done

Now, that simply yields a string of date's, which isn't what I want. What is wrong? My learning has been rather messy, so I hope you'll excuse me for this if it's really simple. Also, I did manage to fine this, that worked on the prompt:

while true ; do date +%N ; sleep 1 ; done

But that obviously doesn't work as a script?

Edit, if anyone sees this: Ahh, this does indeed fix my error. I note you didn't add a ; Is that because I only defined a variable? Also, could you explain what the $ does? I thought it was for calling variables. And I see that the above line will indeed work as a script; I had expected the output of date to not be put on the screen.

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You forgot the question. –  Ignacio Vazquez-Abrams May 2 '10 at 3:33
    
"But that obviously doesn't work as a script." why not? –  Stephen May 2 '10 at 3:45
2  
Actually, none of the semicolons in your script are needed -- they're only needed when you put two commands on the same line. As for the $, it does a bunch of different things depending on what follows it: $var and ${var} expand a variable, $(command) runs a command and substitutes its output, and (in bash only) $((expr)) evaluates a mathematical expression. –  Gordon Davisson May 2 '10 at 7:35
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2 Answers

Change

date=(date +%N) ;

to

date=$(date +%N)
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You can enclose your command between "`" (Backtick) too. For example:

date=`date +%N`

Regards

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Avoid backticks! use $(...) instead. –  gniourf_gniourf Jun 26 '13 at 6:56
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