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we have running tomcat server and in server.xml file we have password=secret I want to search and replace my password with xxxxxxx string. how do i craft regex for it? following is line where password i located in server.xml file

<Resource auth="Container" description="Database connection for Production" driverClassName="oracle.jdbc.OracleDriver" factory="org.apache.commons.dbcp.BasicDataSourceFactory" maxActive="25" maxIdle="5" maxWait="5000" name="jdbc/osdb" password="secret" type="javax.sql.DataSource" url="jdbc:oracle:thin:@DB0001" username="admin"/>
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up vote 3 down vote accepted

Would something like:

sed -i 's/password="[a-zA-Z0-9]\+"/password="foo"/g' server.xml

do the job for you or are you expecting there to be other lines like password="xyz" ?

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Voila!!!! Awesome!! –  Satish Feb 16 '12 at 21:03
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You don't even need [a-zA-Z0-9] as he already gave you the string to replace ("secret"). –  Mike Feb 16 '12 at 21:03
    
[a-zA-Z0-9] is required because we have 2/3 different passwords in same file. ("secret") was example :) –  Satish Feb 16 '12 at 21:23
1  
@Pollett I suggest you use [[:alnum:]] over [a-zA-Z0-9] as not only is it shorter but it also works across all locales –  SiegeX Feb 17 '12 at 8:53
    
I have encounter is new problem. I have few passwords which has special character like #!@%^& so [a-zA-Z0-9] regex doesn't working there. How do i match special character in regexp –  Satish Apr 13 '12 at 13:52
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