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I'm trying to create a KSH script in which I'm trying to create an array which will hold the contents of a text file, which contains a list of string values, and send the array to an SQL function in the KSH script. Here's what I've done so far:

export text_file=$HOME/values.log
while read **line**; 

       do
       CmResTypUpd 
   done < $text_file

The ResTypUpd does the following:

CmResTypUpd () {
            sqlplus -s $db_user/$db_pass@$db_inst <<EOF

            SET VERIFY OFF
            SET HEADING OFF
            SET PAGESIZE 200
            SET LINESIZE 200
            SET FEEDBACK OFF

            update My_Table set Column_Field_To_Change='NEW_VALUE' where IND1_COLUMN_VALUE='SomethingSomething' and IND2_COLUMN_VALUE='**$line**';
            commit;
   exit;

    EOF

            }

What I get is that the script hangs and does nothing.

Also, the script should be able to run cross-platform, meaning on any Unix or Linux.

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you need to make your code more readable –  Majid L Mar 18 '13 at 15:21

1 Answer 1

up vote 0 down vote accepted

You need to pass your line as parameter to the function

export text_file=$HOME/values.log 
while read line; do CmResTypUpd "$line"; done < $text_file

And your function:

CmResTypUpd () {
    [...]
    update My_Table set Column_Field_To_Change='NEW_VALUE' 
    where IND1_COLUMN_VALUE='SomethingSomething' and IND2_COLUMN_VALUE='$1';
    [...]
}

And also the variable **line** should be line

share|improve this answer
    
Hi Majid, I tried to run it but still seemed stuck. so I debugged it and turns out the issue is in the calling of the var which holds the text file and its path. If I try to replace the text_file var with real value it works. I will try to run now the whole script with the log file value instead of its var but its weird, it should work with variable too, no? –  user2182889 Mar 18 '13 at 16:11
    
Hi Majid, Thanks very much :) it worked beautifully. About the other issue with the variable, I solved it by calling the text_file var into a new var and used the new var in the while loop. Thanks again, LW –  user2182889 Mar 18 '13 at 16:25
    
yes it should work with variable too.. maybe your $HOME variable contains spaces or special characters ? –  Majid L Mar 18 '13 at 16:50

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