Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Given the 2 toString() implementations below, which one is prefered:

public String toString(){
    return "{a:"+ a + ", b:" + b + ", c: " + c +"}";
}

or

public String toString(){
    StringBuilder sb = new StringBuilder(100);
    return sb.append("{a:").append(a)
          .append(", b:").append(b)
          .append(", c:").append(c)
          .append("}")
          .toString();
}

?

More importantly - given we have only 3 properties it might not make a difference, but at what point would you switch from + concat to StringBuilder?

share|improve this question
8  
At what point do you switch to StringBuilder? When it effects memory or performance. Or when it might. If you're really only doing this for a couple strings once, no worries. But if you're going to be doing it over and over again, you should see a measurable difference when using StringBuilder. –  ewall Oct 7 '09 at 15:48

13 Answers 13

up vote 284 down vote accepted

Version 1 is preferable because it is shorter and the compiler will in fact turn it into version 2 - no performance difference whatsoever.

More importantly given we have only 3 properties it might not make a difference, but at what point do you switch from concat to builder?

At the point where you're concatenating in a loop - that's usually when the compiler can't substitute StringBuilder by itself.

share|improve this answer
8  
That's true but the language reference also states that this is optional. In fact, I just did a simple test with JRE 1.6.0_15 and I didn't see any compiler optimization in the decompiled class. –  bruno conde Oct 7 '09 at 16:07
13  
I Just tried the code from the question (compiled on JDK 1.6.0_16) and found the optimization as expected. I'm pretty sure all modern compilers will do it. –  Michael Borgwardt Oct 7 '09 at 16:12
10  
You are correct. Looking at the bytecode I can clearly see the StringBuilder optimization. I was using a decompiler and, some how, it is converting back to concat. +1 –  bruno conde Oct 7 '09 at 16:30
22  
Not to beat a dead horse, but the wording in the spec is: To increase the performance of repeated string concatenation, a Java compiler _may_ use the StringBuffer class or a similar technique to reduce the number of intermediate String objects that are created by evaluation of an expression. The key word there being may. Given that this is officially optional (though most likely implemented) should we not protect ourselves? –  Lucas Aug 14 '12 at 15:57
6  
@Lucas: No, we should not. If the compiler decides not to perform that optimization, it will be because it is not worth it. In 99% of cases, the compiler knows better which optimization is worth it, so as a rule of thumb the dev should not interfere. Of course, your situation may fall into the other 1%, but that can only be checked by (careful) benchmarking. –  sleske Aug 24 '12 at 9:33

The key is whether you are writing a single concatenation all in one place or accumulating it over time.

For the example you gave, there's no point in explicitly using StringBuilder. (Look at the compiled code for your first case.)

But if you are building a string e.g. inside a loop, use StringBuilder.

To clarify, assuming that hugeArray contains thousands of strings, code like this:

...
String result = "";
for (String s : hugeArray) {
    result = result + s;
}

is very time- and memory-wasteful compared with:

...
StringBuilder sb = new StringBuilder();
for (String s : hugeArray) {
    sb.append(s);
}
String result = sb.toString();
share|improve this answer
    
Yes, StringBuilder doesn't need to re-create the String object over and over. –  Olga Sep 3 '13 at 10:15
8  
Dammit I used those 2 function to test a big string I'm working in. 6.51min vs 11secs –  user1722791 Oct 12 '13 at 15:56

I prefer:

String.format( "{a: %s, b: %s, c: %s}", a, b, c );

...because it's short and readable.

I would not optimize this for speed unless you use it inside a loop with a very high repeat count and have measured the performance difference.

I agree, that if you have to output a lot of parameters, this form can get confusing (like one of the comments say). In this case I'd switch to a more readable form (perhaps using ToStringBuilder of apache-commons - taken from the answer of matt b) and ignore performance again.

share|improve this answer
20  
It's actually longer, contains more symbols and has variables a text out of sequence. –  Tom Hawtin - tackline Oct 7 '09 at 16:11
1  
So would you say it's less readable than one of the other aproaches? –  tangens Oct 7 '09 at 16:16
2  
I prefer writing this, because it's easier to add more variables, but I'm not sure it's more readable -- especially as the number of arguments gets large. It also doesn't work for times when you need to add bits at different times. –  Alex Feinman Oct 7 '09 at 16:25
31  
Seems harder to read (for me). Now I have to scan back and forth between {...} and the parameters. –  Steve Kuo Oct 7 '09 at 18:59
2  
I prefer this form to, because it is safe if one of the parameter is null –  rds Jan 22 '13 at 16:13

In most cases, you won't see an actual difference between the two approaches, but it's easy to construct a worst case scenario like this one:

public class Main
{
    public static void main(String[] args)
    {
        long now = System.currentTimeMillis();
        slow();
        System.out.println("slow elapsed " + (System.currentTimeMillis() - now) + " ms");

        now = System.currentTimeMillis();
        fast();
        System.out.println("fast elapsed " + (System.currentTimeMillis() - now) + " ms");
    }

    private static void fast()
    {
        StringBuilder s = new StringBuilder();
        for(int i=0;i<100000;i++)
            s.append("*");      
    }

    private static void slow()
    {
        String s = "";
        for(int i=0;i<100000;i++)
            s+="*";
    }
}

The output is:

slow elapsed 11741 ms
fast elapsed 7 ms

The problem is that to += append to a string reconstructs a new string, so it costs something linear to the length of your strings (sum of both).

So - to your question:

The second approach would be faster, but it's less readable and harder to maintain. As I said, in your specific case you would probably not see the difference.

share|improve this answer
    
Don't forget about .concat(). I would surmise the elapsed time to be anywhere from 10 to 18 ms making it negligible when using short strings like the original post example. –  Droo Oct 7 '09 at 16:15
4  
While you're right about +=, the original example was a sequence of +, that the compiler transforms to a single string.concat call. Your results don't apply. –  Blindy Jun 28 '10 at 19:21
    
@Blindy & Droo :- You both are right.Using .concate in such scenario is best workaround,as += creates new object every time loop routine executes. –  perilbrain Dec 21 '11 at 20:55
    
do you know that his toString() is not called in a loop? –  Omry Yadan Mar 5 '13 at 2:18
    
I've tried this example to test the speed. So my results are: slow elapsed 29672 ms; fast elapsed 15 ms. So the answer is obvious. But if it would be 100 iterations - time is the same - 0 ms. If 500 iterations - 16 ms and 0 ms. And so on. –  Ernestas Gruodis Aug 27 '13 at 14:38

Or, if you don't have time to do your own analysis there is always the internets to help

http://kaioa.com/node/59

share|improve this answer

Apache Commons-Lang has a ToStringBuilder class which is super easy to use. It does a nice job of both handling the append-logic as well as formatting of how you want your toString to look.

public void toString() {
     ToStringBuilder tsb =  new ToStringBuilder(this);
     tsb.append("a", a);
     tsb.append("b", b)
     return tsb.toString();
}

Will return output that looks like com.blah.YourClass@abc1321f[a=whatever, b=foo].

Or in a more condensed form using chaining:

public void toString() {
     return new ToStringBuilder(this).append("a", a).append("b", b").toString();
}

Or if you want to use reflection to include every field of the class:

public String toString() {
    return ToStringBuilder.reflectionToString(this);
}

You can also customize the style of the ToString if you want.

share|improve this answer
6  
Nice answer but to which question? –  ceving Jun 17 '13 at 16:28

Since Java 1.5, simple one line concatenation with "+" and StringBuilder.append() generate exactly the same bytecode.

So for the sake of code readability, use "+".

2 exceptions :

  • multithreaded environment : StringBuffer
  • concatenation in loops : StringBuilder/StringBuffer
share|improve this answer

Rather than answer your question (sorry!) I'll suggest that you find out for yourself by benchmarking the two solutions. You could even examine the bytecode emitted by javap...

In general, you should do whatever's the easiest to read, understand, and modify until profiling has identified some piece of code as a bottleneck.

share|improve this answer
    
-1: Instead of answering the question, telling the user to just figure it out on their own. –  JMD Aug 8 at 20:20

Make the toString method as readable as you possibly can!

The sole exception for this in my book is if you can prove to me that it consumes significant resources :) (Yes, this means profiling)

Also note that the Java 5 compiler generates faster code than the handwritten "StringBuffer" approach used in earlier versions of Java. If you use "+" this and future enhancements comes for free.

share|improve this answer

I also had clash with my boss on the fact whether to use append or +.As they are using Append(I still cant figure out as they say every time a new object is created). So I thought to do some R&D.Although I love Michael Borgwardt explaination but just wanted to show an explanation if somebody will really need to know in future.

/**
 *
 * @author Perilbrain
 */
public class Appc {
   public Appc()
   {
       String x="no name";
       x+="I have Added a name"+"We May need few more names"+Appc.this;
       x.concat(x);
      // x+=x.toString(); --It creates new StringBuilder object before concatenation so avoid if possible
       //System.out.println(x);
   }
   public void Sb()
   {
       StringBuilder sbb=new StringBuilder("no name");
       sbb.append("I have Added a name");
       sbb.append("We May need few more names");
       sbb.append(Appc.this);
       sbb.append(sbb.toString());
      // System.out.println(sbb.toString());

   }

}

and disassembly of above class comes out as

 .method public <init>()V //public Appc()
  .limit stack 2
  .limit locals 2
met001_begin:                                  ; DATA XREF: met001_slot000i
  .line 12
    aload_0 ; met001_slot000
    invokespecial java/lang/Object.<init>()V
  .line 13
    ldc "no name"
    astore_1 ; met001_slot001
  .line 14

met001_7:                                      ; DATA XREF: met001_slot001i
    new java/lang/StringBuilder //1st object of SB
    dup
    invokespecial java/lang/StringBuilder.<init>()V
    aload_1 ; met001_slot001
    invokevirtual java/lang/StringBuilder.append(Ljava/lang/String;)Ljava/lan\
g/StringBuilder;
    ldc "I have Added a nameWe May need few more names"
    invokevirtual java/lang/StringBuilder.append(Ljava/lang/String;)Ljava/lan\
g/StringBuilder;
    aload_0 ; met001_slot000
    invokevirtual java/lang/StringBuilder.append(Ljava/lang/Object;)Ljava/lan\
g/StringBuilder;
    invokevirtual java/lang/StringBuilder.toString()Ljava/lang/String;
    astore_1 ; met001_slot001
  .line 15
    aload_1 ; met001_slot001
    aload_1 ; met001_slot001
    invokevirtual java/lang/String.concat(Ljava/lang/String;)Ljava/lang/Strin\
g;
    pop
  .line 18
    return //no more SB created
met001_end:                                    ; DATA XREF: met001_slot000i ...

; ===========================================================================

;met001_slot000                                ; DATA XREF: <init>r ...
    .var 0 is this LAppc; from met001_begin to met001_end
;met001_slot001                                ; DATA XREF: <init>+6w ...
    .var 1 is x Ljava/lang/String; from met001_7 to met001_end
  .end method
;44-1=44
; ---------------------------------------------------------------------------


; Segment type: Pure code
  .method public Sb()V //public void Sb
  .limit stack 3
  .limit locals 2
met002_begin:                                  ; DATA XREF: met002_slot000i
  .line 21
    new java/lang/StringBuilder
    dup
    ldc "no name"
    invokespecial java/lang/StringBuilder.<init>(Ljava/lang/String;)V
    astore_1 ; met002_slot001
  .line 22

met002_10:                                     ; DATA XREF: met002_slot001i
    aload_1 ; met002_slot001
    ldc "I have Added a name"
    invokevirtual java/lang/StringBuilder.append(Ljava/lang/String;)Ljava/lan\
g/StringBuilder;
    pop
  .line 23
    aload_1 ; met002_slot001
    ldc "We May need few more names"
    invokevirtual java/lang/StringBuilder.append(Ljava/lang/String;)Ljava/lan\
g/StringBuilder;
    pop
  .line 24
    aload_1 ; met002_slot001
    aload_0 ; met002_slot000
    invokevirtual java/lang/StringBuilder.append(Ljava/lang/Object;)Ljava/lan\
g/StringBuilder;
    pop
  .line 25
    aload_1 ; met002_slot001
    aload_1 ; met002_slot001
    invokevirtual java/lang/StringBuilder.toString()Ljava/lang/String;
    invokevirtual java/lang/StringBuilder.append(Ljava/lang/String;)Ljava/lan\
g/StringBuilder;
    pop
  .line 28
    return
met002_end:                                    ; DATA XREF: met002_slot000i ...


;met002_slot000                                ; DATA XREF: Sb+25r
    .var 0 is this LAppc; from met002_begin to met002_end
;met002_slot001                                ; DATA XREF: Sb+9w ...
    .var 1 is sbb Ljava/lang/StringBuilder; from met002_10 to met002_end
  .end method
;96-49=48
; ---------------------------------------------------------------------------

From the above two codes you can see Michael is right.In each case only one SB object is created.

share|improve this answer

Can I point out that if you're going to iterate over a collection and use StringBuilder, you may want to check out Apache Commons Lang and StringUtils.join() (in different flavours) ?

Regardless of performance, it'll save you having to create StringBuilders and for loops for what seems like the millionth time.

share|improve this answer

For simple strings like that I prefer to use

"string".concat("string").concat("string");

In order, I would say the preferred method of constructing a string is using StringBuilder, String#concat(), then the overloaded + operator. StringBuilder is a significant performance increase when working large strings just like using the + operator is a large decrease in performance (exponentially large decrease as the String size increases). The one problem with using .concat() is that it can throw NullPointerExceptions.

share|improve this answer
7  
Using concat() is likely to perform worse than '+' since the JLS allows '+' to be converted to a StringBuilder, and most likely all JVM's do so or use a more efficient alternative - the same is not likely to be true of concat which must create and discard at least one complete intermediate string in your example. –  Lawrence Dol Oct 7 '09 at 17:27

My rule of thumb (since my .NET days) has been to use StringBuilder for any more than 3 concatenations. Instantiating the StringBuilder (or StringBuffer) object takes time. So it doesn't make sense to me to use it when I'm only concatenating 2 or 3 items.

However, some of these posts make me question this strategy altogether. I didn't realize the compiler was converting this stuff to StringBuilders anyway.

share|improve this answer
    
Looks like a comment. –  ceving Jun 17 '13 at 16:31

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.