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Is it possible to execute shell script in command line like this :

counter=`ps -ef | grep -c "myApplication"`; if [ $counter -eq 1 ] then; echo "true";
>

Above example is not working I get only > character not the result I'm trying to get, that is "true"

When I execute ps -ef | grep -c "myApplication I get 1 output. Is it possible to create result from single line in a script ? thank you

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Yes but it doesn't work –  London Feb 13 '11 at 18:52
2  
you need ; then instead of then; –  glenn jackman Feb 14 '11 at 11:27

5 Answers 5

up vote 12 down vote accepted

It doesn't work because you missed out fi to end your if statement.

counter=`ps -ef | grep -c "myApplication"`; if [ $counter -eq 1 ]; then echo "true"; fi

You can shorten it further using:

if [ $(ps -ef | grep -c "myApplication") -eq 1 ]; then echo "true"; fi

Also, do take note the issue of ps -ef | grep ... matching itself as mentioned in @DigitalRoss' answer.

update

In fact, you can do one better by using pgrep:

if [ $(pgrep -c "myApplication") -eq 1 ]; then echo "true"; fi
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if pgrep myApplication 2>/dev/null; then ... No need for brackets or command substitution. The bracket around the "m" isn't needed either since pgrep doesn't match itself unless you tell it to. –  Dennis Williamson Feb 13 '11 at 21:32
    
That won't be accurate if he wants to match exactly one instance. Good point about pgrep not matching self. Updated example. Thanks. –  Shawn Chin Feb 13 '11 at 21:43
    
In the first code example, is the semi-color after then in the wrong place? –  egrunin Nov 30 '12 at 16:58
    
It is. Thanks. (fixed) –  Shawn Chin Nov 30 '12 at 17:20
    
-c for pgrep is not a valid switch at least for version 3.2.8 of procps. It's not working in my case... –  Oktav Oct 15 '13 at 12:38

Yes, with syntax issues fixed

That almost worked. The correct syntax is:

counter=`ps -ef | grep -c "myApplication"`; if [ $counter -eq 1 ]; then echo "true"; fi

But note that in an expression of this sort involving ps and grep, the grep will usually match itself because the characters "grep -c Myapplication" show up in the ps listing. There are several ways around that, one of them is to grep for something like [M]yapplication.

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Other responses have addressed your syntax error, but I would strongly suggest you change the line to:

test $(ps -ef | grep -c myApplication) -eq 1 && echo true

If you are not trying to limit the number of occurrences to exactly 1 (eg, if you are merely trying to check for the output line myApplication and you expect it never to appear more than once) then just do:

ps -ef | grep myApplication > /dev/null && echo true

(If you need the variable counter set for later processing, neither of these solutions will be appropriate.)

Using short circuited && and || operators is often much clearer than embedding if/then constructs, especially in one-liners.

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I was struggling to combine both multiple lines feed into command and getting its results into a variable (not a file) and come up with this solution:

    FRA_PARAM="'db_recovery_file_dest'"
    FRA=$(
    sqlplus -S "/as sysdba" <<EOF
set echo off head off feed off newpage none pages 1000 lines 1000
select value from v\$parameter where name=$FRA_PARAM;
exit;
EOF
        )

Please note that single-quotes word was substituted, because otherwise I was receiving its autosubstitution to double quotes... ksh, HP-UX.

Hopefully this will be helpful for somebody else too.

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I am using Mac OS and following worked very well

manjeet$ counter=ps -ef | grep -c "myApplication"; if [ $counter -eq 1 ]; then echo "true";fi; true

Space is needed after [ and before ]

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