798

How would you check if a String was a number before parsing it?

  • 33
    All the solutions proposed with regular expresions will not work for hexadecimal numbers. – Oscar Castiblanco Feb 17 '12 at 12:52
  • and passing null string in matches(...) function will throw NullPointer exception. – Hitesh Sahu Apr 14 '16 at 7:31
  • See Max Malysh's answer for a concise Java 8 solution without third-party libraries. – Andy Thomas Apr 28 '16 at 19:50
  • @HiteshSahu null strings seem to be gracefully handled in latest version (including Java 6.x and 7.x) – lifebalance Oct 6 '16 at 6:27
  • All the solutions proposed to use Integer.parseInt() will fail to parse mobile numbers with NumberFormatException. – Not a bug Mar 16 '17 at 7:24

39 Answers 39

1

Parallel checking for very long strings using IntStream

In Java 8, the following tests if all characters of the given string are within '0' to '9'. Mind that the empty string is accepted:

string.chars().unordered().parallel().allMatch( i -> '0' <= i && '9' >= i )
1

I have illustrated some conditions to check numbers and decimals without using any API,

Check Fix Length 1 digit number

Character.isDigit(char)

Check Fix Length number (Assume length is 6)

String number = "132452";
if(number.matches("([0-9]{6})"))
System.out.println("6 digits number identified");

Check Varying Length number between (Assume 4 to 6 length)

//  {n,m}  n <= length <= m
String number = "132452";
if(number.matches("([0-9]{4,6})"))
System.out.println("Number Identified between 4 to 6 length");

String number = "132";
if(!number.matches("([0-9]{4,6})"))
System.out.println("Number not in length range or different format");

Check Varying Length decimal number between (Assume 4 to 7 length)

//  It will not count the '.' (Period) in length
String decimal = "132.45";
if(decimal.matches("(-?[0-9]+(\.)?[0-9]*){4,6}"))
System.out.println("Numbers Identified between 4 to 7");

String decimal = "1.12";
if(decimal.matches("(-?[0-9]+(\.)?[0-9]*){4,6}"))
System.out.println("Numbers Identified between 4 to 7");

String decimal = "1234";
if(decimal.matches("(-?[0-9]+(\.)?[0-9]*){4,6}"))
System.out.println("Numbers Identified between 4 to 7");

String decimal = "-10.123";
if(decimal.matches("(-?[0-9]+(\.)?[0-9]*){4,6}"))
System.out.println("Numbers Identified between 4 to 7");

String decimal = "123..4";
if(!decimal.matches("(-?[0-9]+(\.)?[0-9]*){4,6}"))
System.out.println("Decimal not in range or different format");

String decimal = "132";
if(!decimal.matches("(-?[0-9]+(\.)?[0-9]*){4,6}"))
System.out.println("Decimal not in range or different format");

String decimal = "1.1";
if(!decimal.matches("(-?[0-9]+(\.)?[0-9]*){4,6}"))
System.out.println("Decimal not in range or different format");

Hope it will help manyone.

1

If you guys using the following method to check:

public static boolean isNumeric(String str) {
    NumberFormat formatter = NumberFormat.getInstance();
    ParsePosition pos = new ParsePosition(0);
    formatter.parse(str, pos);
    return str.length() == pos.getIndex();
}

Then what happend with the input of very long String, such as I call this method:

System.out.println(isNumeric("94328948243242352525243242524243425452342343948923"));

The result is "true", also it is a too-large-size number! The same thing will happen if you using regex to check! So I'd rather using the "parsing" method to check, like this:

public static boolean isNumeric(String str) {
    try {
        int number = Integer.parseInt(str);
        return true;
    } catch (Exception e) {
        return false;
    }
}

And the result is what I expected!

  • "it is a too-large-size number" → There is no such thing as a "too-large-size number". Numbers are infinite. 7645 is a number and 92847294729492875982452012471041141990140811894142729051 is also a number. The first can be represented as an Integer and the second can be represented as a BigDecimal. And even if they could not be represented as an object in Java, they are still numbers -- which is what the question asks. – walen Sep 18 '18 at 8:19
  • Also, don't misuse exceptions. Java isn't python. At least use more specific NumberFormatException – Jiří Dec 13 '18 at 15:55
1

Based off of other answers I wrote my own and it doesn't use patterns or parsing with exception checking.

It checks for a maximum of one minus sign and checks for a maximum of one decimal point.

Here are some examples and their results:

"1", "-1", "-1.5" and "-1.556" return true

"1..5", "1A.5", "1.5D", "-" and "--1" return false

Note: If needed you can modify this to accept a Locale parameter and pass that into the DecimalFormatSymbols.getInstance() calls to use a specific Locale instead of the current one.

 public static boolean isNumeric(final String input) {
    //Check for null or blank string
    if(input == null || input.isBlank()) return false;

    //Retrieve the minus sign and decimal separator characters from the current Locale
    final var localeMinusSign = DecimalFormatSymbols.getInstance().getMinusSign();
    final var localeDecimalSeparator = DecimalFormatSymbols.getInstance().getDecimalSeparator();

    //Check if first character is a minus sign
    final var isNegative = input.charAt(0) == localeMinusSign;
    //Check if string is not just a minus sign
    if (isNegative && input.length() == 1) return false;

    var isDecimalSeparatorFound = false;

    //If the string has a minus sign ignore the first character
    final var startCharIndex = isNegative ? 1 : 0;

    //Check if each character is a number or a decimal separator
    //and make sure string only has a maximum of one decimal separator
    for (var i = startCharIndex; i < input.length(); i++) {
        if(!Character.isDigit(input.charAt(i))) {
            if(input.charAt(i) == localeDecimalSeparator && !isDecimalSeparatorFound) {
                isDecimalSeparatorFound = true;
            } else return false;
        }
    }
    return true;
}
0

I think the only way to reliably tell if a string is a number, is to parse it. So I would just parse it, and if it's a number, you get the number in an int for free!

0

If you want to do the check using a regex you should create a final static Pattern object, that way the regex only needs to be compiled once. Compiling the regex takes about as long as performing the match so by taking this precaution you'll cut the execution time of the method in half.

final static Pattern NUMBER_PATTERN = Pattern.compile("[+-]?\\d*\\.?\\d+");

static boolean isNumber(String input) {
    Matcher m = NUMBER_PATTERN.matcher(input);
    return m.matches();
}

I'm assuming a number is a string with nothing but decimal digits in it, possibly a + or - sign at the start and at most one decimal point (not at the end) and no other characters (including commas, spaces, numbers in other counting systems, Roman numerals, hieroglyphs).

This solution is succinct and pretty fast but you can shave a couple of milliseconds per million invocations by doing it like this

static boolean isNumber(String s) {
    final int len = s.length();
    if (len == 0) {
        return false;
    }
    int dotCount = 0;
    for (int i = 0; i < len; i++) {
        char c = s.charAt(i);
        if (c < '0' || c > '9') {
            if (i == len - 1) {//last character must be digit
                return false;
            } else if (c == '.') {
                if (++dotCount > 1) {
                    return false;
                }
            } else if (i != 0 || c != '+' && c != '-') {//+ or - allowed at start
                return false;
            }

        }
    }
    return true;
}
0

Try this:

public  boolean isNumber(String str)
{       
    short count = 0;
    char chc[]  = {'0','1','2','3','4','5','6','7','8','9','.','-','+'};
    for (char c : str.toCharArray())
    {   
        for (int i = 0;i < chc.length;i++)
        {
            if( c  == chc[i]){
                count++;        
            }
         }                      
    }
    if (count != str.length() ) 
        return false;
    else
        return true;
}
  • 2
    This will return true if you pass it "++++"... – Water Mar 30 '15 at 0:44
-1
String text="hello 123";
if(Pattern.matches([0-9]+))==true
System.out.println("String"+text);
-3
import java.util.Scanner;

public class TestDemo {
    public static void main(String[] args) {
        boolean flag = true;
        Scanner sc = new Scanner(System.in);
        System.out.println("Enter the String:");
        String str = sc.nextLine();

        for (int i = 0; i < str.length(); i++) {
            if(str.charAt(i) > 48 && str.charAt(i) < 58) {
                flag = false;
                break;
            }
        }

        if(flag == true) {
            System.out.println("String is a valid String.");
        } else {
            System.out.println("String contains number.");
        }
    }
}

protected by Makoto Nov 29 '15 at 8:34

Thank you for your interest in this question. Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).

Would you like to answer one of these unanswered questions instead?

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