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I'm connected to my DB from the bash. I do a select count of an array and I want to stock the return in a variable. How can I do that?

I did:

var=`"select count(*) from shop_tab where catalog <> ''" | mysql -h abcdcef.com --port=3306 --user=root --password=hbbfe shop`

The request return a number but it doesn't stock into the variable.

Thanks!

EDIT: It works with this command line:

myvar = $(echo "select count(*) from shop_tab where catalog <> '';" | mysql -h abcdcef.com --port=3306 --user=root --password=hbbfe shop)
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How do you know it is not in the variable? –  Jacob Jul 20 '11 at 9:03
    
What is the content of var after you run this? (echo $var) –  carlpett Jul 20 '11 at 9:04
    
Yes i did echo $var, there is nothing, a blank.. –  user420574 Jul 20 '11 at 9:08
1  
    
You have to do it all on one line, since the variable isn't being exported: var=XmycommandX; echo $var (replace X by the backtick, I don't know how to escape the backtick in the comment box). Also use -e rather than piping. –  Kerrek SB Jul 20 '11 at 9:13

2 Answers 2

An easier way is :

var=$(mysql -h abcdcef.com --port=3306 --user=root --password=hbbfe --batch --skip-column-names -Dshop -e "select count(*) from shop_tab where catalog <> ''")

Moreover, I'll preconize the use of function in order to easily add options to the MySQL command without having to modifying all your script.

function MysqlQuery() {
    mysql -h abcdcef.com --port=3306 --user=root --password=hbbfe --batch --skip-column-names -D "$1" -e "$2";
}

va=$(MysqlQuery Shop "SELECT COUNT(*) FROM shop_tab WHERE catalog <> ''")
vaABC=$(MysqlQuery Shop "SELECT COUNT(*) FROM shop_tab WHERE catalog <> 'abc'")
vadef=$(MysqlQuery Shop "SELECT COUNT(*) FROM shop_tab WHERE catalog <> 'def'")
# ...

I find this more readable too...

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I think you are forgetting an echo in the pipe? Like this:

var=`echo "select count(*) from shop_tab where catalog <> ''" | mysql -h abcdcef.com --port=3306 --user=root --password=hbbfe shop`
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1  
Well spotted! One more reason not to do any piping at all and instead use mysql -e. –  Kerrek SB Jul 20 '11 at 9:14

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