String Concatenation and Autoboxing in Java
Asked Answered
S

3

5

When you concatenate a String with a primitive such as int, does it autobox the value first.

ex.

String string = "Four" + 4;

How does it convert the value to a string in Java?

Softboiled answered 16/9, 2012 at 7:10 Comment(2)
if your talking about c#,look in here : [string concat][1] [1]: #3399104Stylography
Sorry about that in JavaSoftboiled
A
5

To see what the Java compiler produces it is always useful to use javap -c to show the actual bytecode produced:

For example the following Java code:

String s1 = "Four" + 4;
int i = 4;
String s2 = "Four" + i;

would produce the following bytecode:

   0:   ldc     #2; //String Four4
   2:   astore_1
   3:   iconst_4
   4:   istore_2
   5:   new     #3; //class java/lang/StringBuilder
   8:   dup
   9:   invokespecial   #4; //Method java/lang/StringBuilder."<init>":()V
   12:  ldc     #5; //String Four
   14:  invokevirtual   #6; //Method java/lang/StringBuilder.append:(Ljava/lang/
String;)Ljava/lang/StringBuilder;
   17:  iload_2
   18:  invokevirtual   #7; //Method java/lang/StringBuilder.append:(I)Ljava/lan
g/StringBuilder;
   21:  invokevirtual   #8; //Method java/lang/StringBuilder.toString:()Ljava/la
ng/String;
   24:  astore_3
   25:  return

From this we can see:

  • In the case of "Four" + 4, the Java compiler (I was using JDK 6) was clever enough to deduce that this is a constant, so there is no computational effort at runtime, as the string is concatenated at compile time
  • In the case of "Four" + i, the equivalent code is new StringBuilder().append("Four").append(i).toString()
  • Autoboxing is not involved here as there is an StringBuilder.append(int) method which according to the docs is using String.valueOf(int) to create the string representation of the integer.
Apatetic answered 16/9, 2012 at 7:39 Comment(0)
O
4

The java compiler actually creates a StringBuilder1 and invokes the append() method. It can be seen in the byte-code:

22  invokespecial java.lang.StringBuilder(java.lang.String) [40]
...   
29  invokevirtual java.lang.StringBuilder.append(int) : java.lang.StringBuilder [47]
32  invokevirtual java.lang.StringBuilder.toString() : java.lang.String [51]

Nevertheless, the behavior is identical to boxing and then invoking toString(): "Four" + new Integer(4).toString() - which I believe what the language designers had in mind.


(1) To be exact, the compiler is already concatting the string literal and int literal to a single string literal "Four4". You can see it in the byte code in the following line in byte-code:

 0  ldc <String "Four4"> [19]
Outdo answered 16/9, 2012 at 7:24 Comment(0)
D
0

According to http://jcp.org/aboutJava/communityprocess/jsr/tiger/autoboxing.html, autoboxing is done on the primitive type whenever a reference type is needed(such as the Integer class in this case)

So the int will be converted into an Integer then that integer objects toString() method is called and its result is appended to the preceding string.

Durarte answered 16/9, 2012 at 7:34 Comment(0)

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