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I parse some logs and in some case user name shown as FirstName.LastName in the other cases it shown as FLastName. I am just wonder if it is possible to parse both to names to FLastName. For example Joe.Doe and JDoe should both yeild JDoe. Thank you.

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3 Answers 3

This will do it:

(.)(?:[^\.]*\.)(.+)$

Basically it grabs the first character and then allows for multiple characters followed by a dot and then grabs the rest. The replacement string would be:

$1$2

But that depends on your regex tool that you're using.

Try it on RegExr (thanks stema, I didn't know about this site).

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It can not match JDoe because the . is not optional. –  stema May 13 '11 at 18:38
    
That is not true, the last part (.+) will catch the JDoe case. –  Josh M. May 13 '11 at 18:41
    
Your regex does not match JDoe, but because it does not match, nothing will be replaced, everything is fine. @anubhava opened my eyes (thanks ;-)). –  stema May 13 '11 at 18:54
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Not sure what regex platform you are using but this will work in sed:

sed 's/\([a-z[A-Z]\).*\.\(.*\)$/\1\2/'

For strings "FirstName.LastName and FLastName it gives output:

FLastName
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It can not match JDoe because the . is not optional. –  stema May 13 '11 at 18:37
    
Correct and that is by purpose, If you run above JDoe will remain JDoe and that is what you want anyway. –  anubhava May 13 '11 at 18:45
    
Ahh, ok if you see it that way, than you are right. –  stema May 13 '11 at 18:48
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My solution, (but the other two will work as well)

^([a-zA-Z])(?:.*\.)?(.*)$

See online here on Regexr

It matches the first letter, then the following part till the dot is optional. At last matches the string till the end. The first letter is in group 1 and the LastName is in group 2.

So replace with $1$2 (or \1\2, depending on your regex engine)

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