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private String unusedDigits = new String("0123456789*#");
unusedDigits = unusedDigits.replaceFirst("1", "");
//...
unusedDigits = unusedDigits.replaceFirst("*", ""); // <--- problem

Am a Java beginner. Why am I facing problem when using replaceFirst() with "*" ? It goes to some different code flow (which is related to some synchronized). If I comment that statement then things work fine !

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up vote 2 down vote accepted

In replaceFirst(), The first parameter is a regex. You can use Pattern.quote("*") instead:

unusedDigits = unusedDigits.replaceFirst(Pattern.quote("*"), "");
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thanks. actually "*" is a variable (I used string literal for simplicity) and this answer suits best – iammilind Jun 20 '11 at 7:11
    
Glad I could help. – MByD Jun 20 '11 at 7:15

You should escape the * character, as it is a special regex character:

unusedDigits = unusedDigits.replaceFirst("\\*", "");
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replaceFirst requires regular expression as an argument. '*' is a special character in regex so you should use

unusedDigits = unusedDigits.replaceFirst("\\*", ""); 

to replace it.

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replaceFirst takes a regular expression as it's first argument. Since * is a special character you need to escape it.

Try this:

unusedDigits = unusedDigits.replaceFirst("\\*", "");
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replaceFirst argument is a regex, and * has a specific meaning in regex, so to escape the regex part change to

unusedDigits = unusedDigits.replaceFirst("\\*", "");
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can above code work with $ sign ..? – Jay Thakkar Apr 15 '14 at 11:28
    
(This is my Code) String x ="${data} m,.m,.m,"; String y = x.replaceFirst("${data}", "Amaan"); System.out.println(y); – Jay Thakkar Apr 15 '14 at 11:41
    
hey i got solution by akhatra..String x ="${data} m,.m,.m,"; String y = x.replaceFirst("\\$\\{data\\}", "Amaan"); System.out.println(y); – Jay Thakkar Apr 15 '14 at 11:54

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