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Am I missing something, or does StringBuilder lack the same "replace all occurences of a string A with string B" function that the normal String class does? The StringBuilder replace function isn't quite the same. Is there any way to this more efficiently without generating multiple Strings using the normal String class?

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download.oracle.com/javase/1.5.0/docs/api/java/lang/… I don't know if I'm missing something, but that function doesn't seem to exist. –  garsh0p Aug 12 '10 at 23:02
    
sorry, I thought we were talking about c#, silly mistake :) –  Claudio Redi Aug 12 '10 at 23:04
    
What makes you think, that object allocation is a less efficient way to do it? Depending on how many characters need to be copied by each "in-place" replacement step, it might just as well out-perform the in-place operation. –  Dirk Aug 12 '10 at 23:09
    
String.replaceAll the thing with regexs? I wouldn't worry about the overhead of converting between StringBuilder and String. –  Tom Hawtin - tackline Aug 12 '10 at 23:33

6 Answers 6

Well, you can write a loop:

public static void replaceAll(StringBuilder builder, String from, String to)
{
    int index = builder.indexOf(from);
    while (index != -1)
    {
        builder.replace(index, index + from.length(), to);
        index += to.length(); // Move to the end of the replacement
        index = builder.indexOf(from, index);
    }
}

Note that in some cases it may be faster to use lastIndexOf, working from the back. I suspect that's the case if you're replacing a long string with a short one - so when you get to the start, any replacements have less to copy. Anyway, this should give you a starting point.

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2  
+1 This works perfectly with one fix. The paretheses are missing from the from.length() and to.length(). –  Jim Tough Dec 8 '10 at 17:31
1  
@Jim: Fixed, thanks. –  Jon Skeet Dec 8 '10 at 19:17
1  
Note that in case if from and to have different length this solution would move buffer tail on each replace. This can be quite ineffective for long buffer with many replacement occurrences. Ron Romero's answer doesn't have this shortcoming but involves single regexp search. What would be faster depends on use case, I guess. –  Vadzim Dec 6 '13 at 13:43

You could use Pattern/Matcher. From the Matcher javadocs:

 Pattern p = Pattern.compile("cat");
 Matcher m = p.matcher("one cat two cats in the yard");
 StringBuffer sb = new StringBuffer();
 while (m.find()) {
     m.appendReplacement(sb, "dog");
 }
 m.appendTail(sb);
 System.out.println(sb.toString());
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this is exactly what I was looking for. Tnx! –  dierre Apr 14 '13 at 15:54
1  
This is almost the same as Matcher#replaceAll(). –  rehevkor5 Sep 3 at 19:13

Look at JavaDoc of replaceAll method of String class:

Replaces each substring of this string that matches the given regular expression with the given replacement. An invocation of this method of the form str.replaceAll(regex, repl) yields exactly the same result as the expression

java.util.regex.Pattern.compile(regex).matcher(str).replaceAll(repl)

As you can see you can use Pattern and Matcher to do that.

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java.util.regex.Pattern.matcher(CharSequence s) can use a StringBuilder as an argument so you can find and replace each occurence of your pattern using start() and end() without calling builder.toString()

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Use the following:

/**
* Utility method to replace the string from StringBuilder.
* @param sb          the StringBuilder object.
* @param toReplace   the String that should be replaced.
* @param replacement the String that has to be replaced by.
* 
*/
public static void replaceString(StringBuilder sb,
                                 String toReplace,
                                 String replacement) {      
    int index = -1;
    while ((index = sb.lastIndexOf(toReplace)) != -1) {
        sb.replace(index, index + toReplace.length(), replacement);
    }
}
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Even simple one is using the String ReplaceAll function itself. You can write it as

StringBuilder sb = new StringBuilder("Hi there, are you there?")
System.out.println(Pattern.compile("there").matcher(sb).replaceAll("niru"));
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