42

This question already has an answer here:

I have a gpa program, and it works with the equalsIgnoreCase() method which compares two strings, the letter "a" to the user input, which checks if they put "a" or not. But now I want to add an exception with an error message that executes when a number is the input. I want the program to realize that the integer input is not the same as string and give an error message. Which methods can I use to compare a type String variable to input of type int, and throw exception?

marked as duplicate by Tunaki java Nov 6 '16 at 23:49

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • 7
    Pattern.compile("[0-9]+").matches(string), perhaps? – Louis Wasserman Jan 8 '13 at 1:08
  • So do you want to match only integers or any number? – arshajii Jan 8 '13 at 1:20
  • i dont want them entering any number basically, just string – user1944277 Jan 8 '13 at 1:24

11 Answers 11

65

Many options explored at http://www.coderanch.com/t/405258/java/java/String-IsNumeric

One more is

public boolean isNumeric(String s) {  
    return s != null && s.matches("[-+]?\\d*\\.?\\d+");  
}  

Might be overkill but Apache Commons NumberUtils seems to have some helpers as well.

  • 2
    I would change the last "+" to a "*" so that 123. becomes valid input (nothing after decimal delimiter is valid input) – peterh Dec 3 '15 at 5:33
  • 3
    I would add a check for NULL ... otherwise it will crash – Stefan Michev Apr 26 '17 at 8:11
  • @StefanMichev people should stop passing null arguments. It's not right for every method in the world to have a null, empty or whatever check. – Buffalo Jun 7 '18 at 7:31
  • This is easy code but millions of Java programmers have to write it. It should be in that standard library. – Yetti99 Apr 8 at 16:04
32

If you are allowed to use third party libraries, suggest the following.

https://commons.apache.org/proper/commons-lang/javadocs/api-2.6/org/apache/commons/lang/math/NumberUtils.html

NumberUtils.isDigits(str:String):boolean
NumberUtils.isNumber(str:String):boolean
  • 2
    You don't need 3rd party anything: loop: if(Character.isDigit(c)) – Roger F. Gay Apr 12 '15 at 13:51
  • 5
    Beware! isNumeric and isDigits only tackle pure numbers. i.e., they will return false for 7,574. (comma-separated numbers). – Kashif Nazar Dec 3 '15 at 7:18
  • 1
    isNumber(str:String) is Deprecated – Federico Traiman Apr 27 '17 at 13:12
7

Use this

public static boolean isNum(String strNum) {
    boolean ret = true;
    try {

        Double.parseDouble(strNum);

    }catch (NumberFormatException e) {
        ret = false;
    }
    return ret;
}
  • 1
    try to catch other exceptions also :) if you sent a Null object string, this fails – prime Nov 28 '15 at 7:29
6

You can also use ApacheCommons StringUtils.isNumeric - http://commons.apache.org/proper/commons-lang/javadocs/api-2.6/org/apache/commons/lang/StringUtils.html#isNumeric(java.lang.String)

  • 5
    why the down vote? – Rudi Sep 5 '13 at 12:42
  • I didn't vote you down, but you don't need to add more software. In Java SE: loop: if(Character.isDigit(c)) – Roger F. Gay Apr 12 '15 at 13:52
  • 2
    Beware! isNumeric only tackles pure numbers. i.e., it will return false for 7,574. (comma-separated numbers). – Kashif Nazar Dec 3 '15 at 7:20
  • Why does it return true for question marks? commons.apache.org/proper/commons-lang/apidocs/org/apache/… – pete Jul 14 '16 at 22:13
5

Use below method,

public static boolean isNumeric(String str)  
{  
  try  
  {  
    double d = Double.parseDouble(str);  
  }  
  catch(NumberFormatException nfe)  
  {  
    return false;  
  }  
  return true;  
}

If you want to use regular expression you can use as below,

public static boolean isNumeric(String str)
{
  return str.matches("-?\\d+(\\.\\d+)?");  //match a number with optional '-' and decimal.
}
  • 1
    Try-and catching an excpetion has such a huge overhead though. – WorldSEnder Oct 5 '15 at 2:14
  • Coding by exception is a known anti-pattern. See en.wikipedia.org/wiki/Coding_by_exception and softwareengineering.stackexchange.com/questions/189222/… – mcalmeida Jan 26 '18 at 17:11
  • The method of using Double.parseDouble() isn't acceptable for internationalized coding situations. It will work reasonably well in the USA, but number strings with valid doubles in other countries will not necessarily parse correctly. For example, in some locales, the thousands separator can be a space " ", and "123 456" will cause a NumberFormatException even though it's a parseable number. – Kenny Wyland Jul 6 '18 at 0:17
5

Simple method:

public boolean isBlank(String value) {
    return (value == null || value.equals("") || value.equals("null") || value.trim().equals(""));
}


public boolean isOnlyNumber(String value) {
    boolean ret = false;
    if (!isBlank(value)) {
        ret = value.matches("^[0-9]+$");
    }
    return ret;
}
3
public static boolean isNumeric(String string) {
    if (string == null || string.isEmpty()) {
        return false;
    }
    int i = 0;
    int stringLength = string.length();
    if (string.charAt(0) == '-') {
        if (stringLength > 1) {
            i++;
        } else {
            return false;
        }
    }
    if (!Character.isDigit(string.charAt(i))
            || !Character.isDigit(string.charAt(stringLength - 1))) {
        return false;
    }
    i++;
    stringLength--;
    if (i >= stringLength) {
        return true;
    }
    for (; i < stringLength; i++) {
        if (!Character.isDigit(string.charAt(i))
                && string.charAt(i) != '.') {
            return false;
        }
    }
    return true;
}
2

I wrote this little method lastly in my program so I can check if a string is numeric or at least every single char is a number.

private boolean isNumber(String text){
    if(text != null || !text.equals("")) {
        char[] characters = text.toCharArray();
        for (int i = 0; i < text.length(); i++) {
            if (characters[i] < 48 || characters[i] > 57)
                return false;
        }
    }
    return true;
}
1

You can use Character.isDigit(char ch) method or you can also use regular expression.

Below is the snippet:

public class CheckDigit {

private static Scanner input;

public static void main(String[] args) {

    System.out.print("Enter a String:");
    input = new Scanner(System.in);
    String str = input.nextLine();

    if (CheckString(str)) {
        System.out.println(str + " is numeric");
    } else {
        System.out.println(str +" is not numeric");
    }
}

public static boolean CheckString(String str) {
    for (char c : str.toCharArray()) {
        if (!Character.isDigit(c))
            return false;
    }
    return true;
}

}

0

Here's how to check if the input contains a digit:

if (input.matches(".*\\d.*")) {
    // there's a digit somewhere in the input string 
}
  • hey, thanks, this helped, but m program still terminates after the exception throws. if I take out the exception, it runs perfectly...just the way I requested even if theres a number. any idea on how to still keep the prgm running after I thorw the exception – user1944277 Jan 8 '13 at 1:37
  • Wrap the code throwing the ex ration in a try-catch, catching the exception thrown. – Bohemian Jan 8 '13 at 1:49
  • I already tried just wrapping my entirepart of the code which prompts inputs in a try catch, but it didn't work, can u clarify using my posted code above – user1944277 Jan 8 '13 at 2:04
  • What code posted where? I can't see any code. – Bohemian Jan 8 '13 at 4:18
0

To check for all int chars, you can simply use a double negative. if (!searchString.matches("[^0-9]+$")) ...

[^0-9]+$ checks to see if there are any characters that are not integer, so the test fails if it's true. Just NOT that and you get true on success.

Not the answer you're looking for? Browse other questions tagged or ask your own question.