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I need to "shorten" a string in a loop before passing it again and again to be matched by a java.regex.Pattern. Probably a trivial situation for some deeply involved in parsing and text processing.

I am faced with the situation that I have to use:

string=string.substring(shortenHowMuch); //Need to shorten it from the beginning

...which low level developers very well know, that is copying the entire string into another address of the memory. Even with HotSpot's optimisations in place (which I am aware of), I still need to make sure the code runs in maximum possible performance variant on all possible Java VMs.

Edit: Later I found out, that my statement above, that it is copying the string, is wrong. So my very question should go "to hell" :) Anyway, read if you like :) .substring does not copy, but instead it does share a reference to a char[], very interesting :)

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6  
It would be more helpful for you to post real code that you are trying if possible, than to demonstrate the problem with a theoretical explanation. –  Rohit Jain Dec 22 '12 at 13:36
    
Well, one obvious answer to the question posed in the title is that a StringBuffer is not the same thing as a String. –  Jack Maney Dec 22 '12 at 13:37
2  
what doesn't work ?? –  jWeaver Dec 22 '12 at 13:37
1  
@JackManey: but StringBuffer and StringBuilder both implement CharSequence, which is the argument to Pattern's static .matcher() method –  fge Dec 22 '12 at 13:38
3  
"that is copying the entire string into another address of the memory" actually substring copies only reference to char[] table that stores content of original String. This way new String only needs information about start and end indexes that should it use. –  Pshemo Dec 22 '12 at 13:39

2 Answers 2

up vote 3 down vote accepted

You did not explain what exactly happened when you used StringBuilder so I cannot answer why. But actually you don't need StringBuilder because String.substring is optimized and it does not copy the internal char array. This is what happens internally

public String substring(int beginIndex, int endIndex) {
        ..... 
        return ((beginIndex == 0) && (endIndex == count)) ? this :
            new String(offset + beginIndex, endIndex - beginIndex, value);
 }

// Package private constructor which shares value array for speed.
String(int offset, int count, char value[]) {
    this.value = value;
    this.offset = offset;
    this.count = count;
}
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Yeaaaah! :) Indeed. I can see now in jdk code. It does share a reference to a char[] :) I didn't know this, rly :) So obvious to do, but did not guess, and didn't bother to check :) Thank you, this was my answer. –  PatlaDJ Dec 22 '12 at 15:52

Hard to say without seeing the code but can you instead make your pattern more general? Something like ".*original-pattern"?

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A bad regex seems to be the most likely cause of the asker wanting to shorten the string repeatedly. –  Jan Dvorak Dec 22 '12 at 13:58
1  
This is even worse performance-wise, since .* will swallow the whole string before reverting to match the rest of the regex. But then we have no idea what the input looks like etc, so... –  fge Dec 22 '12 at 14:17

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