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In Sed how can I replace starting from the 7th character to the 15th character.

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# 1  
Old 09-22-2010
In Sed how can I replace starting from the 7th character to the 15th character.
Hi All,

Was wondering how I can do the following....

I have a String as follows

"ACCTRL000005022RRWDKKEEDKDD...."
This string can be in a file called tail.out or in a Variable called $VAR2

Now I have another variable called $VAR1="000004785" (9 bytes long), I need the content of $VAR1 in the string $VAR2

Example:
VAR1=000004785
|
|
VAR2= "ACCTRL000005022RRWDKKEEDKDD...."

So it should look like...
VAR2= "ACCTRL000004785RRWDKKEEDKDD...."

I know this can be done by sed, but I need to know how to replace from the 7th character till the 15th character.

Any help would be appreaciated.

Thanks,
# 2  
Old 09-22-2010
Some ways:
Code:
VAR1="000004785" 
echo "$VAR2" | sed "s/\([^0-9]*\)[0-9]*\(.*\)/\1$VAR1\2/"

or:
Code:
VAR1="000004785" 
echo "$VAR2" | sed "s/\(......\).........\(.*\)/\1$VAR1\2/"

This User Gave Thanks to Franklin52 For This Post:
mohullah
# 3  
Old 09-22-2010
One more (minor variation of Franklin52's second option):
Code:
sed "s/\(.\{6\}\).\{9\}/\1$VAR1/"

Regards,
Alister
This User Gave Thanks to alister For This Post:
mohullah
# 4  
Old 09-22-2010
bash 4
Code:
# VAR1=000004785
# VAR2="ACCTRL000005022RRWDKKEEDKDD...."
# VAR2=${VAR2:0:6}${VAR1}${VAR2:15}
# echo $VAR2
ACCTRL000004785RRWDKKEEDKDD....

This User Gave Thanks to danmero For This Post:
mohullah
# 5  
Old 09-22-2010
Thanks all... it worked as expected. Smilie
# 6  
Old 09-22-2010
by awk substr function.

Code:
VAR1=000004785
VAR2="ACCTRL000005022RRWDKKEEDKDD...." 

VAR3=$( echo $VAR2|awk -v s=$VAR1 '{sub(substr($0,7,9),s)}1' )

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