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I know there's a million ways of doing this but what is the fastest? This should include scientific notation.

NOTE: I'm not interested in converting the value to Double, i'm only interested in knowing if it's possible. i.e. private boolean isDouble(String value).

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AFAIK, do a Double.parseDouble(String) on it and it throws an exception if it doesn't start with numbers. (Generalizing here). If you want to do regExs and strip out leading non-number chars that's a different story. –  Rcunn87 Dec 19 '11 at 17:19
    
Well, AFAIK, try-catch tends to be rather slow. –  JHollanti Dec 19 '11 at 17:22
1  
I'm going to second Rcunn87 on the regex idea, but make sure you compile it and store it statically so that you can re-use it again and again. –  Tom Dignan Dec 19 '11 at 17:23
    
@JHollanti certainly is, I wonder if some here are thinking "developer time" rather than CPU time. –  Tom Dignan Dec 19 '11 at 17:24
    
@JHollanti Rather slow could still be fast enough. –  helpermethod Dec 19 '11 at 17:24
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6 Answers

up vote 4 down vote accepted

You can check it using the same regular expression the Double class uses. It's well documented here:

http://docs.oracle.com/javase/6/docs/api/java/lang/Double.html#valueOf%28java.lang.String%29

Here is the code part:

To avoid calling this method on an invalid string and having a NumberFormatException be thrown, the regular expression below can be used to screen the input string:

  final String Digits     = "(\\p{Digit}+)";
  final String HexDigits  = "(\\p{XDigit}+)";

        // an exponent is 'e' or 'E' followed by an optionally 
        // signed decimal integer.
        final String Exp        = "[eE][+-]?"+Digits;
        final String fpRegex    =
            ("[\\x00-\\x20]*"+  // Optional leading "whitespace"
             "[+-]?(" + // Optional sign character
             "NaN|" +           // "NaN" string
             "Infinity|" +      // "Infinity" string

             // A decimal floating-point string representing a finite positive
             // number without a leading sign has at most five basic pieces:
             // Digits . Digits ExponentPart FloatTypeSuffix
             // 
             // Since this method allows integer-only strings as input
             // in addition to strings of floating-point literals, the
             // two sub-patterns below are simplifications of the grammar
             // productions from the Java Language Specification, 2nd 
             // edition, section 3.10.2.

             // Digits ._opt Digits_opt ExponentPart_opt FloatTypeSuffix_opt
             "((("+Digits+"(\\.)?("+Digits+"?)("+Exp+")?)|"+

             // . Digits ExponentPart_opt FloatTypeSuffix_opt
             "(\\.("+Digits+")("+Exp+")?)|"+

       // Hexadecimal strings
       "((" +
        // 0[xX] HexDigits ._opt BinaryExponent FloatTypeSuffix_opt
        "(0[xX]" + HexDigits + "(\\.)?)|" +

        // 0[xX] HexDigits_opt . HexDigits BinaryExponent FloatTypeSuffix_opt
        "(0[xX]" + HexDigits + "?(\\.)" + HexDigits + ")" +

        ")[pP][+-]?" + Digits + "))" +
             "[fFdD]?))" +
             "[\\x00-\\x20]*");// Optional trailing "whitespace"

  if (Pattern.matches(fpRegex, myString))
            Double.valueOf(myString); // Will not throw NumberFormatException
        else {
            // Perform suitable alternative action
        }
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Actually in my case the fastest solution was to just if-else through the whole String using flags and whatnots. But that's because in my case the String is most often really, small (like 3 or 4 characters). As a general solution though, i think this is the best. –  JHollanti Dec 19 '11 at 19:15
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There is a handy NumberUtils#isNumber in Apache Commons Lang. It is a bit far fetched:

Valid numbers include hexadecimal marked with the 0x qualifier, scientific notation and numbers marked with a type qualifier (e.g. 123L).

but I guess it might be faster than regular expressions or throwing and catching an exception.

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Have you looked at the source code for that method? I don't see why it would be any faster than a regular expression - it's a jumble of loops, comparisons, flags...probably what goes on under the hood with a regex but it's sure ugly to look at. –  Paul Dec 19 '11 at 17:46
    
@Paul: I had a quick look there (I regret now ;-)) but as long as it works, I don't care. I also don't know whether it will be faster than a regular expression. Remember that regex is a dynamically generated state-machine (although probably very optimized). –  Tomasz Nurkiewicz Dec 19 '11 at 18:00
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The Apache Commons NumberUtil is actually quite fast. I'm guessing it's way faster than any regexp implementation.

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Can you provide a benchmark that replaces this guess with hard facts? –  joergl Oct 26 '12 at 14:14
    
Also I see isDigits and isNumber in org.apache.commons.lang.math.NumberUtils, but nothing to check for isDouble. So what method were you suggesting to use? –  David Dossot Dec 3 '12 at 22:45
    
isNumber checks for all numbers (look at the docu...) Valid numbers include hexadecimal marked with the 0x qualifier, scientific notation and numbers marked with a type qualifier (e.g. 123L) –  Seega Dec 11 '13 at 9:54
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I think trying to convert it to a double and catching the exception would be the fastest way to check...another way I can think of, is splitting the string up by the period ('.') and then checking that each part of the split array contains only integers...but i think the first way would be faster

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How is throwing and catching fast? Not to mention bad practice? And using a period is not locale safe. –  JHollanti Mar 7 '13 at 0:12
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I have tried below code block and seems like throwing exception more faster

String a = "123f15512551";
        System.out.println(System.currentTimeMillis());
        a.matches("^\\d+\\.\\d+$");
        System.out.println(System.currentTimeMillis());

        try{
            Double.valueOf(a);
        }catch(Exception e){
            System.out.println(System.currentTimeMillis());
        }

Output:

1324316024735
1324316024737
1324316024737
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You can't rely on doing it once to determine a benchmark. There's just too much variation that could happen, and you don't know the resolution of the milli's clock. –  corsiKa Dec 19 '11 at 17:36
    
@glowcoder You are right too many possible variation, also maybe hardware. About milli`s: isnt it a long value including all millis since 1.1.1970? –  HRgiger Dec 19 '11 at 17:46
    
What @glowcoder said - do it a million times with a pre-compiled pattern and get back to us. –  Paul Dec 19 '11 at 17:48
1  
Try using System.nanoTime() instead of currentTimeMillis(). –  Paul Dec 19 '11 at 17:49
1  
Yes in Java it's milli's from epoch. But that's not what I mean by resolution. Consider the following: ideone.com/KOOP3 Notice how the time milli's go up by 1? Now copy that code and run it on your machine. On mine they go up by between 15-16 per tick. –  corsiKa Dec 19 '11 at 17:54
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Exceptions shouldn't be used for flow control, though Java's authors made it difficult to not use NumberFormatException that way.

The class java.util.Scanner has a method hasNextDouble to check whether a String can be read as a double.

Under the hood Scanner uses regular expressions (via pre-compiled patterns) to determine if a String can be converted to a integer or floating point number. The patterns are compiled in the method buildFloatAndDecimalPattern which you can view at GrepCode here.

A pre-compiled pattern has the added benefit of being faster than using a try/catch block.

Here's the method referenced above, in case GrepCode disappears one day:

private void buildFloatAndDecimalPattern() {
    // \\p{javaDigit} may not be perfect, see above
    String digit = "([0-9]|(\\p{javaDigit}))";
    String exponent = "([eE][+-]?"+digit+"+)?";
    String groupedNumeral = "("+non0Digit+digit+"?"+digit+"?("+
                            groupSeparator+digit+digit+digit+")+)";
    // Once again digit++ is used for performance, as above
    String numeral = "(("+digit+"++)|"+groupedNumeral+")";
    String decimalNumeral = "("+numeral+"|"+numeral +
        decimalSeparator + digit + "*+|"+ decimalSeparator +
        digit + "++)";
    String nonNumber = "(NaN|"+nanString+"|Infinity|"+
                           infinityString+")";
    String positiveFloat = "(" + positivePrefix + decimalNumeral +
                        positiveSuffix + exponent + ")";
    String negativeFloat = "(" + negativePrefix + decimalNumeral +
                        negativeSuffix + exponent + ")";
    String decimal = "(([-+]?" + decimalNumeral + exponent + ")|"+
        positiveFloat + "|" + negativeFloat + ")";
    String hexFloat =
        "[-+]?0[xX][0-9a-fA-F]*\\.[0-9a-fA-F]+([pP][-+]?[0-9]+)?";
    String positiveNonNumber = "(" + positivePrefix + nonNumber +
                        positiveSuffix + ")";
    String negativeNonNumber = "(" + negativePrefix + nonNumber +
                        negativeSuffix + ")";
    String signedNonNumber = "(([-+]?"+nonNumber+")|" +
                             positiveNonNumber + "|" +
                             negativeNonNumber + ")";
    floatPattern = Pattern.compile(decimal + "|" + hexFloat + "|" +
                                   signedNonNumber);
    decimalPattern = Pattern.compile(decimal);
}
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