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I have a string that I load throughout my application, and it changes from numbers to letters and such. I have a simple if statement to see if it contains letters or numbers but, something isn't quite working correctly. Here is a snippet.

String text = "abc"; 
String number; 

if (text.contains("[a-zA-Z]+") == false && text.length() > 2) {
    number = text; 
}

Although the text variable does contain letters, the condition returns as true. The and && should eval as both conditions having to be true in order to process the number = text;

==============================

Solution:

I was able to solve this by using this following code provided by a comment on this question. All other post are valid as well!

What I used that worked came from the first comment. Although all the example codes provided seems to be valid as well!

String text = "abc"; 
String number; 

if (Pattern.matches("[a-zA-Z]+", text) == false && text.length() > 2) {
    number = text; 
}
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4  
contains does not take a regexp as input. Use either matches("\\d{2,}") or try with a Pattern and Matcher –  Guillaume Polet May 13 '12 at 22:07
    
Can the string have a decimal value or only integer values? –  Doug Swain May 13 '12 at 22:09
    
Why are you checking text.length() > 2? What's the reason? –  Code Enthusiastic Aug 8 '13 at 16:31

4 Answers 4

up vote 93 down vote accepted

If you'll be processing the number as text, then change:

if (text.contains("[a-zA-Z]+") == false && text.length() > 2){

to:

if (text.matches("[0-9]+") && text.length() > 2) {

Instead of checking that the string doesn't contain alphabetic characters, check to be sure it contains only numerics.

If you actually want to use the numeric value, use Integer.parseInt() or Double.parseDouble() as others have explained below.


As a side note, it's generally considered bad practice to compare boolean values to true or false. Just use if (condition) or if (!condition).

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5  
You probably want to add anchors (e.g. ^[0-9]+$) otherwise abc123def will be considered a number. –  ICR Sep 13 '13 at 21:37
3  
I don't think that's required. matches() returns true if and only if it's a complete match from beginning to end. –  Chthonic Project Dec 12 '13 at 17:59
4  
"^-?\d+\.?\d*$" will compare the whole string and only match if it is a valid number (negatives and decimals included). For example, it will match 1, 10, 1.0, -1, -1.0, etc. It'll also match on "1." but that can often be parsed anyway. –  Chris Dec 4 '14 at 19:59

There are lots of facilities to obtain numbers from Strings in Java (and vice versa). You may want to skip the regex part to spare yourself the complication of that.

For example, you could try and see what Double.parseDouble(String s) returns for you. It should throw a NumberFormatException if it does not find an appropriate value in the string. I would suggest this technique because you could actually make use of the value represented by the String as a numeric type.

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3  
Using an exception as a why to test your input might be a bad idea, exceptions create a big overhead. –  Ofir Luzon Nov 11 '13 at 10:42
    
@OfirLuzon I agree that exceptions are not a great way to handle expected cases that are going to arise. However I think it's hard to tell if there would be a performance hit without more context. –  Doug Swain Nov 12 '13 at 2:02

This code is already written. If you don't mind the (extremely) minor performance hit--which is probably no worse than doing a regex match--use Integer.parseInt() or Double.parseDouble(). That'll tell you right away if a String is only numbers (or is a number, as appropriate). If you need to handle longer strings of numbers, both BigInteger and BigDecimal sport constructors that accept Strings. Any of these will throw a NumberFormatException if you try to pass it a non-number (integral or decimal, based on the one you choose, of course). Alternately, depending on your requirements, just iterate the characters in the String and check Character.isDigit() and/or Character.isLetter().

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You can also use NumberUtil.isNumber(String str) from Apache Commons

source

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