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String.matches gives different result (I think it has good reason, but I don't know why).

See my example below:

Complex program:

...
line.matches(pattern) -> false
...

Simple program:

String line = "blabla"; //copy pasted during debug of Complex program
String pattern = "bl.*"; //copy pasted during debug of Complex program

line.matches(pattern) -> true

Q: How can I find out what makes the match wrong in the Complex program?

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closed as not constructive by Anony-Mousse, NINCOMPOOP, jlordo, Bohemian, Endoro Jun 12 '13 at 6:50

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12  
Debugger: "Heeeey!". –  Maroun Maroun Jun 11 '13 at 12:33
    
Simple println() would also do! –  Ravi Thapliyal Jun 11 '13 at 12:34
2  
@RaviThapliyal println MUST DIE. Learn how to use logging! –  Anony-Mousse Jun 11 '13 at 12:35
1  
@Anony-Mousse Yeah, I agree. But, the OP feels his code is already complex! :) –  Ravi Thapliyal Jun 11 '13 at 12:38
1  
@Anony-Mousse Yes, I completely agree with you. I was just of the opinion that even a simple println() in OP's supposedly complex program could have given him a better insight into why it isn't matching the pattern. I'm not proposing println() over logging. You just have read a tad more into my one-liner. –  Ravi Thapliyal Jun 11 '13 at 12:56

1 Answer 1

It is very probably that you are yet another programmer who fell trap to how Java's .matches() operates -- and which lead many people to consider that method's name a misnomer.

Read this, imprint this into your head using red iron:

Java's .matches() method behaves as if the regex given as an argument were surrounded by the beginning-of-input ^ and end-of-input $ anchors. As a result, it tries and matches the regex on the whole input.

This is unlike the definition of "regex matching" adopted by the vast majority of programming languages using regexes (and which yours truly agrees with), where a regex can match anywhere in the input. As you will see from the many comments below, others do not agree.

That is:

"foobar".matches("foobar") == true
"foobar and something else".matches("foobar") == false

Real regex matching in Java is done using .find(); and String doesn't have it. You have to use a Pattern and a Matcher:

final Pattern p = Pattern.compile("foobar");
final Matcher m = p.matcher("foobar and something else");
m.find(); // true!
m.matches(); // false!

I.e. matches() will actually use the pattern "^foobar$".

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I've just looked at the sources, and what you say about the .matches() method is not true. Can you link any sources? –  jlordo Jun 11 '13 at 12:40
2  
Sorry but it is true. Just try it! –  fge Jun 11 '13 at 12:42
1  
I guess we'll have to agree to disagree on this one. You're trying to say, that "abc".matches("b") should be true, but abc simply does not match the pattern b. The pattern b can be found in abc, but it does not match the complete expression abc. So the find method is there to find a pattern in a string, and the matches method is there to check whether an expression matches a pattern. –  jlordo Jun 11 '13 at 12:56
1  
Yes indeed. For me, "b" matches "b" in "abc"! –  fge Jun 11 '13 at 12:58
2  
Ohwell, edited the answer to reflect the fact that there are people who don't agree with 35+ years of regex practice ;) –  fge Jun 11 '13 at 13:11

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