138

How do you clear the string buffer in Java after a loop so the next iteration uses a clear string buffer?

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  • 2
    Another question: why do you use a SB only for one iteration of the loop? Is there another inner iteration? SB is not worthy if you simply want to do A+B+C+D (Java compiler will internally use a SB). It helps if you want to conditionally add parts of strings, but otherwise... simply use "+".
    – helios
    Feb 11, 2010 at 9:09

10 Answers 10

150

One option is to use the delete method as follows:

StringBuffer sb = new StringBuffer();
for (int n = 0; n < 10; n++) {
   sb.append("a");

   // This will clear the buffer
   sb.delete(0, sb.length());
}

Another option (bit cleaner) uses setLength(int len):

sb.setLength(0);

See Javadoc for more info:

10
  • 16
    Something a bit less rubbish would be to just declare the StringBuffer inside the loop. Feb 11, 2010 at 5:33
  • 11
    Ah, I think sb.setLength(0); is cleaner and more efficient than declaring it inside the loop. Your solution goes against the performance benefit of using StringBuffer... Feb 11, 2010 at 5:38
  • 6
    I think the performance benefit comes from the string mutability, not from saving the instantiation. here's a quick test of 1e8 iterations: inside loop (2.97s): ideone.com/uyyTL14w, outside loop (2.87s): ideone.com/F9lgsIxh Feb 11, 2010 at 5:46
  • 6
    Speaking of performance: Unless your code is accessed in a multi-threaded scenario, you should use StringBuilder rather than StringBuffer -- see javadoc: "Where possible, it is recommended that this class be used in preference to StringBuffer as it will be faster under most implementations". Feb 11, 2010 at 7:53
  • 4
    The only benefit of creating the SB outside is not losing the internal (potentially long) char[] of it. If in the first iterator it grew up enough, the second loop will not need to resize any char[]. But for getting the advantage the "clear method" will have to preserve the size of the internal array. setLength does that but it also sets to \u0000 all the not used chars in the SB, so it's less performant that simply creating a new SB with a good initial capacity. Declaring inside the loop is better.
    – helios
    Feb 11, 2010 at 9:08
56

The easiest way to reuse the StringBuffer is to use the method setLength()

public void setLength(int newLength)

You may have the case like

StringBuffer sb = new StringBuffer("HelloWorld");
// after many iterations and manipulations
sb.setLength(0);
// reuse sb
2
25

You have two options:

Either use:

sb.setLength(0);  // It will just discard the previous data, which will be garbage collected later.  

Or use:

sb.delete(0, sb.length());  // A bit slower as it is used to delete sub sequence.  

NOTE

Avoid declaring StringBuffer or StringBuilder objects within the loop else it will create new objects with each iteration. Creating of objects requires system resources, space and also takes time. So for long run, avoid declaring them within a loop if possible.

7
public void clear(StringBuilder s) {
    s.setLength(0);
}

Usage:

StringBuilder v = new StringBuilder();
clear(v);

for readability, I think this is the best solution.

6

I suggest creating a new StringBuffer (or even better, StringBuilder) for each iteration. The performance difference is really negligible, but your code will be shorter and simpler.

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  • 2
    If you have any evidence of such performance difference, please share it. (I'll be also glad to see statistics of where Java is mostly used, and under which definition of "mostly".) Nov 26, 2015 at 11:07
  • 1
    It's well known that allocation (new keyword in Java) is more expensive than just changing some fields of the same object. For "mostly", which you could replave with highly, there's more than 1.5Billion of Android Devices, all using Java.
    – Louis CAD
    Nov 26, 2015 at 11:17
  • 1
    I agree that in some cases, code readability is more important than performance, but in this case, it's only one line of code! And you can run a benchmark which will prove you that allocation and object creation, plus garbage collecting is more expensive than not doing it at all. As we are in a loop, it is more than relevant.
    – Louis CAD
    Nov 26, 2015 at 14:17
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    I also subscribed to Knuth's view, but his point of view is not always true. Adding just one line to potentially gain CPU cycles and memory is absolutely not evil. You are taking the idea too straight. Note that a loop is usually repeated many times. A loop can be repeated thousands of times, which can eat precious megabytes on a mobile (and also on server or computer) if not optimized carefully.
    – Louis CAD
    Nov 26, 2015 at 15:52
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    I think we both stated our viewpoints clearly enough, and I feel that further discussion will not be beneficial to this comments section. If you feel that my answer is incorrect, misleading or incomplete, then you - or anyone - are by all means welcome to edit and/or downvote it. Nov 26, 2015 at 16:01
5
buf.delete(0,  buf.length());
2

Already good answer there. Just add a benchmark result for StringBuffer and StringBuild performance difference use new instance in loop or use setLength(0) in loop.

The summary is: In a large loop

  • StringBuilder is much faster than StringBuffer
  • Create new StringBuilder instance in loop have no difference with setLength(0). (setLength(0) have very very very tiny advantage than create new instance.)
  • StringBuffer is slower than StringBuilder by create new instance in loop
  • setLength(0) of StringBuffer is extremely slower than create new instance in loop.

Very simple benchmark (I just manually changed the code and do different test ):

public class StringBuilderSpeed {
public static final char ch[] = new char[]{'a','b','c','d','e','f','g','h','i'};

public static void main(String a[]){
    int loopTime = 99999999;
    long startTime = System.currentTimeMillis();
    StringBuilder sb = new StringBuilder();
    for(int i = 0 ; i < loopTime; i++){
        for(char c : ch){
            sb.append(c);
        }
        sb.setLength(0);
    }
    long endTime = System.currentTimeMillis();
    System.out.println("Time cost: " + (endTime - startTime));
}

}

New StringBuilder instance in loop: Time cost: 3693, 3862, 3624, 3742

StringBuilder setLength: Time cost: 3465, 3421, 3557, 3408

New StringBuffer instance in loop: Time cost: 8327, 8324, 8284

StringBuffer setLength Time cost: 22878, 23017, 22894

Again StringBuilder setLength to ensure not my labtop got some issue to use such long for StringBuffer setLength :-) Time cost: 3448

0
StringBuffer sb = new SringBuffer();
// do something wiht it
sb = new StringBuffer();

i think this code is faster.

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  • 3
    This will have performance issues. It creates a new object after every iteration Jun 19, 2015 at 14:34
  • @AdityaSingh It's a perfectly reasonable approach. Don't assume performance problems without evidence.
    – shmosel
    Jan 16, 2018 at 23:23
  • 1
    Assuming things based on an understanding of what is going on is the basis of intelligence.
    – rghome
    Dec 4, 2018 at 9:56
0

I used this below code to store password for temporary processing like regex matching and clear it once done. The usual delete method does not reset all the characters, which was not suitable for me. This code satisfied my requirement.

    public static void clear(StringBuilder value) {
        for (int i = 0, len = value.length(); i < len; i++) {
            value.setCharAt(i, Character.MIN_VALUE);
        }
        value.setLength(0);
    }

    public static void main(String[] args) {
        StringBuilder sb = new StringBuilder("clear this password");
        // use & process sb
        clear(sb);
    }
-2

I think the best way to clear StringBuilder is Clear() method.
StringBuilder sb = new StringBuilder(); sb.Clear();

Note: Its work only in .net

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