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I have a regular expression ^(?=.*?[A-Za-z])\S*$ which indicates that the input should contain alphabets and can contain special characters or digits along with the alphabets. But it is not allowing white spaces since i have used \S.

Can some one suggest me a reg exp which should contain alphabets and it can contain digits or special characters and white space but alphabets are must and the last character should not end with a white space

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1 Answer 1

up vote 4 down vote accepted

Quite simply:

^(?=.*?[A-Za-z]).*$

Note that in JavaScript . doesn't match new lines, and there is no dot-all flag (/s). You can use something like [\s\S] instead if that is an issue:

^(?=[\s\S]*?[A-Za-z])[\s\S]*$

Since you only have a single lookahead, you can simplify the pattern to:

^.*[A-Za-z].*$

Or, even simpler:

[A-Za-z]

[A-Za-z] will match if it finds a letter anywhere in the string, you don't really need to search the rest from start to end.


To also validate the last character isn't a whitespace, it is probably easiest to use the lookahead again (as it basically means AND in regular expressions:

^(?=.*?[A-Za-z]).*\S$
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[A-Za-z] works but i also need a check so that the last character is not a space –  user475685 Mar 29 '11 at 9:40
    
@User - .*\S$ at the end of each patten can validate that: [A-Za-z].*\S$, for example. Can you please edit the question to add this requirement? –  Kobi Mar 29 '11 at 9:42
    
thank you very much –  user475685 Mar 29 '11 at 9:44
    
@User - no problem. Good luck! –  Kobi Mar 29 '11 at 9:47
    
just one more thing, i am not able to assign ^.*[A-Za-z].*\S$ to a variable and then use it –  user475685 Mar 29 '11 at 10:14
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