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I am writing a simple bash script (I am fairly new to bash). I am trying to assign the output of a command to a variable and I can't seem to get it to work properly. See below:

#!/bin/bash

HOST=`hostname`
MEMORY=`prtconf -v |grep Memory |awk '{print $3}'`
echo "os_instance_name "$HOST
echo "physical_machine_ram "$MEMORY

I am able to get the result of hostname properly but my MEMORY variable is not being populated with the output from the command.

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2  
What's the output of prtconf -v |grep Memory |awk '{print $3}'? –  fedorqui Aug 9 '13 at 14:12
2  
does the command prtconf -v |grep Memory |awk '{print $3}' work when entered by itself? –  Floris Aug 9 '13 at 14:12
3  
BTW, grep|awk is silly: prtconf -v|awk '/Memory/ {print $3}' is all you need. –  Jens Aug 9 '13 at 14:18
1  
Does prtconf send its output to stderr? try prtconf -v 2>/dev/null –  glenn jackman Aug 9 '13 at 14:27
1  
@glennjackman - if so, wouldn't it bypass grep and awk? –  Floris Aug 9 '13 at 14:29

2 Answers 2

Try this:

memory=`free -m | grep Mem | awk '{print $2}'`

echo $memory

should return the physical memory in megabytes

Also, $1 in the code that you have provided might be referring to a blank column. Try using $2.

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1  
My guess (based on the prtconf command) is that this is on a Solaris system, which doesn't have free, at least not by default. Not sure if SunFreeware or some other source provides it... –  twalberg Aug 9 '13 at 14:37

Some ideas spring to my mind:

  1. execute the script in debug mode

    $ bash -x myscript.sh
    
  2. Put the variable expansions within the double quotes

    echo "os_instance_name $HOST"
    echo "physical_machine_ram $MEMORY"
    
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