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I want such a validation that My String must be contains at least one alphabet.

I am using the following:

String s = "111a11";
boolean flag = s.matches("%[a-zA-Z]%");

flag gives me false even though a is in my string s

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4  
Don't use %. That is for SQL LIKE, not regexp. Use .* instead So just s.matches(".*[a-zA-Z].*"); –  ppeterka Jan 11 '13 at 12:27

2 Answers 2

up vote 5 down vote accepted

The regular expression you want is [a-zA-Z], but you need to use the find() method.

This page will let you test regular expressions against input.

Regular Expression Test Page

and here you have a Java Regular Expressions tutorial.

Java Regular Expressions tutorial

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1  
+1 for find(), I'd give another +1 for the online regex tester... –  ppeterka Jan 11 '13 at 12:32
    
If you consider other languages, you could use boolean m = str.matches(".*[\\p{L}]+.*]") –  dragos2 Dec 20 '13 at 10:16

You can use .*[a-zA-Z]+.* with String.matches() method.

boolean atleastOneAlpha = s.matches(".*[a-zA-Z]+.*");
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