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We have a string input and the following combinations are valid (e.g. sunday, *sunday*, sun*day*, *sun*day, su*nda*y) If it contains only a single asterisk, then it is a bad input.

So given the above input, how do I check to see if the string contains multiple asterisks.

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3  
At least two or exactly two? –  Mark Byers Jul 28 '10 at 7:45
    
It should be exactly two –  Achaius Jul 28 '10 at 9:12

6 Answers 6

up vote 4 down vote accepted

You could use String.matches with a regular expression:

"^.*(?:\\*.*){2}$"

If you want exactly two asterisks:

"^[^*]*(?:\\*[^*]*){2}$"

Though for this task it might be simpler just to iterate over the string and count the asterisks.

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Could anyone please explain this regular expression? –  ederollora Mar 11 at 18:43
int asterisk1 = input.indexOf('*');
boolean hasTowAsterisks = asterisk1 != -1 && input.indexOf('*', asterisk1+1) != -1;

Edit: this solution assumed that the requirement was "has at least two asterisks".

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At least two ways:

  • regex

    String regex = ".*\\*.*\\*.*";
    boolean valid = input.matches(regex);
    
  • loop

    int asterisks = 0;
    for (int i = 0; i < input.length(); i ++) {
        if (input.charAt(i) == '*') {
            asterisks++;
        }
    }
    
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You could remove the .* from the front and end of the regex and use find() instead. That might actually be a bit faster. –  Joachim Sauer Jul 28 '10 at 11:41

Here's a non-regex alternative that works with any literal string:

public static boolean containsNoneOrTwo(String haystack, String needle) {
    int index = haystack.indexOf(needle);
    return (index == -1) ||
        haystack.indexOf(needle, index+1) == haystack.lastIndexOf(needle);
}

Essentially the algorithm is:

containsNoneOrTwo(haystack, needle)
   = haystack contains no needle OR
        haystack's second needle is also its last
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And to modify it to check for exactly two asterisk, just change the third line to return (index != -1) &&. –  Joachim Sauer Jul 28 '10 at 10:45
boolean hasTwoAsteriks(String str) {
int i;
if((i = str.indexOf("*")) != -1) {
  if ((i = str.indexOf("*", i+1)) != -1)
    return true;
return false;
}
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For completeness (although several good answers have been provided, I like Mark's and Joachim's best), here are two versions based on String.split(regex) and String.split(regex, limit):

(Edit, bug fix:)

boolean containsAtLeastTwoAsterisks = ("_" + myString + "_").split("\\*", 3).length == 3;

boolean containsExactlyTwoAsterisks = ("_" + myString + "_").split("\\*").length == 3;

I wrote a little benchmark based on our answers (I know, benchmarks don't mean much, but they are fun, and mine is probably crap, I know.) Anyway, here are the results for a sample run:

*********************************************************************************

Testing strings with one or less asterisk

Processor: bhups
Finished. Duration: 40 ms, errors: 0

Processor: Bozho (loop version)
Finished. Duration: 33 ms, errors: 0

Processor: Bozho (regex version)
Finished. Duration: 806 ms, errors: 0

Processor: Joachim Sauer
Finished. Duration: 24 ms, errors: 0 <-- winner

Processor: Mark Byers
Finished. Duration: 1068 ms, errors: 0

Processor: seanizer
Finished. Duration: 408 ms, errors: 0

*********************************************************************************

Testing strings with exactly two asterisks

Processor: bhups
Finished. Duration: 14 ms, errors: 0 <-- winner

Processor: Bozho (loop version)
Finished. Duration: 21 ms, errors: 0

Processor: Bozho (regex version)
Finished. Duration: 693 ms, errors: 0

Processor: Joachim Sauer
Finished. Duration: 14 ms, errors: 0 <-- winner

Processor: Mark Byers
Finished. Duration: 491 ms, errors: 0

Processor: seanizer
Finished. Duration: 340 ms, errors: 0

*********************************************************************************

Testing strings with more than two asterisks (not all processors will be included)

Skipping processor bhups

Processor: Bozho (loop version)
Finished. Duration: 63 ms, errors: 0  <-- winner

Skipping processor Bozho (regex version)

Skipping processor Joachim Sauer

Processor: Mark Byers
Finished. Duration: 1555 ms, errors: 0

Processor: seanizer
Finished. Duration: 860 ms, errors: 0

Seems like non-regex is a lot faster than regex. That's what you'ld expect, I guess.

EDIT: fixed wrong winner. sorry, joachim

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Is 33 < 24? ;-) –  Joachim Sauer Jul 28 '10 at 10:47
    
you're right, I found it myself just before reading your comment. fixed it. –  Sean Patrick Floyd Jul 28 '10 at 10:56

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