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byte b = 5;
int n = 33;
b<<n
b>>n

I know how to calculate it: If this is a left shift, then we need to multiply the number by 2 to power n and for right shift we have to divide the number by 2 to power n.

If n is small number I can calculate. Can someone explain me how to calculate it manually if n is large (like here it's 33) or is there any other method?

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4 Answers 4

If your right operand is larger than 31 then you can use a long instead of an int. Its values are between -2^63 and 2^63 - 1.

And beware of >>, it does not do what you intuitively think it does. It carries the sign bit!

For instance, on a short which reads:

1000 0101

right shifting by 3 will give the completely counterintuitive result:

1111 0001

instead of:

0001 0001

If you want "real" right shifting, use >>> instead.

If it is even bigger than that, you have to use a BigInteger:

final BigInteger b1 = new BigInteger("5");

BigInteger has .shiftLeft() and .shiftRight() methods (the equivalents of Java's << and >>> -- note the triple > -- on integer primitive types). Note that these operations will return a new BigInteger! So, don't do:

b1.shiftLeft(33);

this will NOT affect the value of b1. Do:

final BigInteger b2 = b1.shiftLeft(33);
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1  
Actually i want to calculate it manually .. –  ankita gahoi Jun 22 '13 at 10:27
    
Uh, that is not what your question says at all :/ –  fge Jun 22 '13 at 10:27
1  
And what do you call "calculate manually" anyway? –  fge Jun 22 '13 at 10:28
    
Not using any IDE like eclipse. –  ankita gahoi Jun 22 '13 at 10:29
2  
Eh? That has nothing to do!! –  fge Jun 22 '13 at 10:30

Use long instead of byte.

long b = 5;
int n = 33;
System.out.println(b<<n);//n should be between 0 to 63
System.out.println(b>>n);//since you are using long,the operation returns long

if left operand is long,the right operand should be between 0 to 63

but if left operand is not long,the right operand should be between 0 to 31

If your right operand can be bigger than 63, use BigInteger


NOTE

Only integral types(int,long,byte,short) are allowed as operands for shift operators

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Well, basically, you must know what shifting means.

If you have a number 5 which is represented in memory like 0000101 (bits; byte has 8 bits), to shift left (multiply) looks like this:

00000101 << 1 = 00001010 = 10 (decimal) //shifting bits to the left
00000101 << 3 = 00101000 = 40 (decimal)

to shift right (divide):

00000101 >> 1 = 00000010 = 2 (decimal) //shifting bits to the right
00000101 >> 3 = 00000000 = 0 (decimal)

So you could do it using the loop and a mathematical multiply / divide:

To shift left - multiply:

byte b= 5;
long number= (byte)b;
int n= 33;
for (int i=0; i<n; i++) {
    number= number * 2;
}

b = (byte)number;

Same goes for right, just divide instead of multiply in the for loop.

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Manually, you still have to multiply it by 2^n for a left shift. And guess what, to do it manually for a right shift, you still have to divide by 2^n and round down the result. So here is to do it manually in detail:

  1. Take pen and paper.
  2. Write down the number you want to shift.
  3. Convert it to binary base representation.
  4. Add n zeroes behind it.
  5. Convert the number back.

Or if you don't want to use the binary representation:

  1. Take pen and paper.
  2. Write down the number you want to shift.
  3. Calculate 2^n manually. It goes like: 1, 2, 4, 8, 16, 32, 64, 128, 256, 512, 1024, 2048, 4192, ...
  4. Multiply the number by the one you just calculated using this technique. It is called Long Multiplication.
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