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This code works fine :

final String result = myString.replaceAll("<tag1>", "{").replaceAll("<tag2>", "}");

but I have to parse big files, so I'm asking me if I can have a Pattern.compile("REGEX"); before the while :

Patter p = Pattern.compile("REGEX");
while(scan.hasNextLine()){
     final String myWorkLine = scan.readLine();
     p.matcher(s).replaceAll("$1"); // or other value
     ..;
}

I expect faster result because regex compilation is maid once and only once.

EDIT

I want to put (if it is possible) the replaceAll(..).replaceAll(..) model in a Pattern, and have tag1==>{, and tag2==>}.

Question : is outside loop Pattern model faster than inside loop replaceAll.replaceAll model?

share|improve this question
    
What do you need exactly? Is it that you need all <tag1> and <tag2> to be replaced with { and } respectively? –  Vaman Kulkarni Jul 5 '12 at 14:44

2 Answers 2

To answer your original question: yes, you could do that, and indeed it would be faster than your original code, if you apply the same regular expression(s) multiple times in a loop. Your loop should be rewritten like this:

Pattern p1 = Pattern.compile("REGEX1");
Pattern p1 = Pattern.compile("REGEX1");
while (scan.hasNextLine()) {
    String myWorkLine = scan.readLine();
    myWorkLine = p1.matcher(myWorkLine).replaceAll("replacement1");
    myWorkLine = p2.matcher(myWorkLine).replaceAll("replacement2");
    ...;
}

But, if your're not using regular expressions, as your first example suggests ("<tag1>"), then don't use String.replaceAll(String regex, String replacement), as it is slower because of the regular expression. Instead use String.replace(CharSequence target, CharSequence replacement), as it doesn't work with regular expression and is much faster.

Example:

"ABAP is fun! ABAP ABAP ABAP".replace("ABAP", "Java");

See: Java Docs for String.replace

It's not nice changing your question that radically, but ok, here again an answer for your regular expression:

String s1
       = "You can <bold>have nice weather</bold>, but <bold>not</bold> always!";
//EDIT: the regex was 'overengineered', and .?? should have been .*?
//String s2 = s1.replaceAll("(.*?)<bold>(.*?)</bold>(.??)", "$1{$2}$3");
String s2 = s1.replaceAll("<bold>(.*?)</bold>", "{$1}");

System.out.println(s2);

Output: You can {have nice weather}, but {not} always!

Here the loop with this new regex, and yes, this would be faster than original loop:

//EDIT: the regex was 'overengineered'
Pattern p = Pattern.compile("<bold>(.*?)</bold>");
while (scan.hasNextLine()) {
    String myWorkLine = scan.readLine();
    myWorkLine = p.matcher(myWorkLine).replaceAll("{$1}");
    ...;
}

EDIT:
Here the description of Java RegEx syntax constructs

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Thanks for your patience - I've not found the good writing the first time. The last regex in Pattern works fine and it is exactly what I've searched without result. [I did not know the "(.??)"] –  cl-r Jul 5 '12 at 15:30
1  
You're welcome. OMG, that ".??" was a mistake, stupid me. Should have been ".*?". I corrected it. And OMG OMG I overcomplicated the regex! The before/after matching groups are necessary only when working with ^ and $ (i.e. begin/end of line). I edited & simplified the examples, and added a link to Java regex definitions. Sorry. –  Victor Jul 5 '12 at 17:08
    
No stupid : make mistakes and forget them is human stuff, correct home made is master eyes signature. With such a mistake, I believe you have definitively give me the keys to understand 'special constructs regex'; and it is me THE stupid, not able to find the final solution, so simple - ich danke Ihnen sehr. –  cl-r Jul 6 '12 at 6:40

replaceAll uses regex Patterns. From the java.lang.String source code:

public String replaceAll(String regex, String replacement) {
    return Pattern.compile(regex).matcher(this).replaceAll(replacement);
}

Edit1: Please stop changing what you're asking. Pick a question and stick with it.

Edit2:

If you're really sure you want to do it this way, compiling a regex outside of the loop, in the simplest case you'd need two different patterns:

Pattern tag1Pattern = Pattern.compile("<tag1>");
Pattern tag2Pattern = Pattern.compile("<tag2>");
while( scan.hasNextLine() ) {
    String line = scan.readLine();
    String modifiedLine = tag1Pattern.matcher(line).replaceAll("{");
    modifiedLine = tag2Pattern.matcher(line).replaceAll("}");
    ...
}

You're still applying the pattern matcher twice per line, so if there's any performance hits that's why.

Without knowing what your data looks like, it's hard to give you a more precise answer or better regex. Unless you've edited your question (again) while I was writing this.

share|improve this answer
    
My problem is to find the good "REGEX" inside the Pattern.compile to make two different replacements. –  cl-r Jul 5 '12 at 15:03

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