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Lets say I called replaceAll() on a big string that replaced 1,000 matching instances. Does it mean that 1,000 strings were created and reassigned in process because of string immutability? Is there any faster alternatives?

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up vote 12 down vote accepted

If you dig into String, you'll see that it delegates replaceAll() to Pattern & Matcher and Matcher.replaceAll() uses a StringBuilder to store the eventually returned value.

So no, String.replaceAll() does not create more than a small number of objects.

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Keep in mind that creating a new Pattern may be expensive. Depending on how often it's being called, it may be more efficient to create the Pattern once and create a Matcher from that. As always, profiling your app will tell you if this is necessary or a premature optimization. – AngerClown Aug 10 '09 at 13:48

you can try with a StringBuffer/StringBuilder, since they are mutable CharSequences:

CharSequence veryBigString = new StringBuilder();
Pattern.compile(regex).matcher(veryBigString).replaceAll(replacement);
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It doesn't matter if veryBigString is mutable; replaceAll() will still create a new StringBuffer to do the work, and return the result as a new String. Was that your point? – Alan Moore Aug 9 '09 at 7:10

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