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I am a newbee in Java Bytecode. I was understanding the bytecode through some examples but I got stuck in an example.
These are my java and bytecode file

class SimpleAdd{
    public static void main(char args[]){
        int a,b,c,d;
        a = 9;
        b = 4;
        c = 3;
        d = a + b + c;
        System.out.println(d);
    }
}  
Compiled from "SimpleAdd.java"
class SimpleAdd extends java.lang.Object{
SimpleAdd();
  Code:
   0:   aload_0
   1:   invokespecial   #1; //Method java/lang/Object."<init>":()V
   4:   return

public static void main(char[]);
  Code:
   0:   bipush  9
   2:   istore_1
   3:   iconst_4
   4:   istore_2
   5:   iconst_3
   6:   istore_3
   7:   iload_1
   8:   iload_2
   9:   iadd
   10:  iload_3
   11:  iadd
   12:  istore  4
   14:  getstatic   #2; //Field java/lang/System.out:Ljava/io/PrintStream;
   17:  iload   4
   19:  invokevirtual   #3; //Method java/io/PrintStream.println:(I)V
   22:  return

}  

I just want to know why there is bipush 9 when we have instruction a = 9
And in all other case there is iconst.

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2  
bipush 9 pushes the integer literal 9 onto the stack. istore_1 stores that value into local variable #1. iconst_4 pushes a literal 4 onto the stack, and does it in one byte vs two for the bipush, but there are only the iconst_1 through iconst_5 bytecodes -- no iconst_9. –  Hot Licks Aug 4 '12 at 20:31

4 Answers 4

up vote 14 down vote accepted

iconst can push constant values up to 5.

bipush can push constant values between -128 and 127.

To push 9 you cannot use iconst. There is no iconst_9 instruction.

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iconst_n is defined for n from 0 to 5

There's no iconst_9, so you have to use the equivalent (but less efficent) bipush

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there is no iconst_9 instruction

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the i_const instruction only range from 0~5, so it must spit the instuction by push and store

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