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How to find line startwith and replace in linux.

 file:/usr/test.pl
 startswith:   "abc.xyz" => "0"
 replace:   "abc.xyz" => "1" 

Note before: "abc.xyz" three spaces

I achieved using python script

newlines = []
with open ('/usr/test.pl', 'r') as f:
    for line in f:
        if "\"abc.xyz\" => \"0\"" in line
        newlines.append("   \"abc.xyz\" => \"1\",\n")
    else:
            newlines.append(line)
with open ('/usr/test.pl', 'w') as f:
    for line in newlines:
        f.write(line)

Same how to achieve in bashscript or sed command.

marked as duplicate by tripleee bash Feb 4 '18 at 14:41

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  • Modifying a script file programmatically is nearly always the wrong approach. You want to refactor your Perl script so it accepts the value for "abc.xyz" as a command-line or input parameter, perhaps with "0" as the default. – tripleee Feb 4 '18 at 14:39
  • Did you try something like sed -i 's/^"abc.xyz" => "0"/"abc.xyz" => "1"/' /usr/test.pl ? Does this works or do you have different requirements ? – Walter A Feb 4 '18 at 14:41

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