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I need to find the largest power of 2 less than the given number.
And I stuck and can't find any solution.

Code:

public class MathPow
{
   public int largestPowerOf2 (int n)
   {
        int res = 2;        
        while (res < n) {
                res =(int)Math.pow(res, 2);
        }

        return res;
   }
}

This doesn't work correctly.

Testing output:

Arguments Actual Expected
-------------------------
9         16     8       
100       256    64      
1000      65536  512     
64        256    32      

How to solve this issue?

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What don't you add System.out.println(res); in while to see the value of res? –  johnchen902 Jun 29 '13 at 10:08
    
Is zero an expected input? Or 1? –  harold Jun 29 '13 at 10:11

9 Answers 9

up vote 8 down vote accepted

Change res =(int)Math.pow(res, 2); to res *= 2; This will return the next power of 2 greater than res.
The final result you are looking for will therefore finally be res / 2 after the while has ended.

To prevent the code from overflowing the int value space you should/could change the type of res to double/long, anything that can hold higher values than int. In the end you would have to cast one time.

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This does't help: 9 16 8 (as column testing output) –  nazar_art Jun 29 '13 at 10:09
1  
divide by 2 as i wrote. –  luk2302 Jun 29 '13 at 10:10
    
largestPowerOf2(Integer.MAX_VALUE) will runs into infinity loop! Also for any number >= Integer.MAX_VALUE / 2 + 2 –  johnchen902 Jun 29 '13 at 10:13
    
good point. i modified the code. –  luk2302 Jun 29 '13 at 10:14
1  
This is the accepted answer and most voted, while there is a method in Integer class (and it's much faster) –  bestsss Jul 2 '13 at 19:22
Integer.highestOneBit(n-1);

For n <= 1 the question doesn't really make sense. What to do in that range is left to the interested reader.

The's a good collection of bit twiddling algorithms in Hacker's Delight.

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That's good, somehow I missed that method. –  harold Jun 29 '13 at 11:37
2  
This is the correct answer and one more link: graphics.stanford.edu/~seander/bithacks.html -- no java but most of bit-twiddling is applicable to java just as well. and HD is a mandatory read. –  bestsss Jul 2 '13 at 19:24

You can use this bit hack:

v--;
v |= v >> 1;
v |= v >> 2;
v |= v >> 4;
v |= v >> 8;
v |= v >> 16;
v++;
v >>= 1;
share|improve this answer
    
Here is a demo on ideone. –  dasblinkenlight Jun 29 '13 at 10:16
    
v = Integer.MAX_VALUE returns -1073741824. Also for all v >= Integer.MAX_VALUE / 2 + 2 –  johnchen902 Jun 29 '13 at 10:16
    
@dasblinkenlight If v is unsigned it throws error - variable v might not have been initialized –  nazar_art Jun 29 '13 at 10:20
    
@nazar_art int v = n; ... return v;, I suppose. –  johnchen902 Jun 29 '13 at 10:22
1  
@assylias, Hacker's Delight might found to your liking, other than that Integer.highestOneBit(n) does it since 1.5. –  bestsss Jul 2 '13 at 19:26

There's a nice function in Integer that is helpful, numberOfLeadingZeros.

With it you can do

0x80000000 >>> Integer.numberOfLeadingZeros(n - 1);

Which does weird things when n is 0 or 1, but for those inputs there is no well-defined "highest power of two less than n".

edit: this answer is even better

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1  
I traveled from 2 to Integer.MAX_VALUE and the code seems correct. –  johnchen902 Jun 29 '13 at 10:36
    
@johnchen902 nice, thanks for testing –  harold Jun 29 '13 at 10:41
public class MathPow
{
   public int largestPowerOf2 (int n)
   {
        int res = 2;        
        while (res < n) {
                res =res*2;
        }

        return res;
   }
}
share|improve this answer

Why not use logs?

public int largestPowerOf2(int n) {
    return (int)Math.pow(2, Math.floor(Math.log(n) / Math.log(2));
}

log(n) / log(2) tells you the number of times 2 goes into a number. By taking the floor of it, gets you the integer value rounding down.

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You are squaring res each time, meaning you calculate 2^2^2^2 instead of 2^k.
Change your evaluation to this:

int res = 2;
while (res * 2 < n) {
    res *= 2;
}

upd Of course, you need to check for overflow of int, in that case checking while (res <= (n - 1) / 2) seems better.

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if while (res < n / 2) then input 9 get 4! –  johnchen902 Jun 29 '13 at 10:21
    
does <= n/2 works? –  TulaGingerbread Jun 29 '13 at 10:23
    
Then input 8 get 8! –  johnchen902 Jun 29 '13 at 10:26
    
@TulaGingerbread It needs to be while (res <= (n - 1) / 2). –  tom Jun 29 '13 at 10:28
    
@tom, yeah, just got it myself –  TulaGingerbread Jun 29 '13 at 10:28

Find the first set bit from left to right and make all other set bits 0s.

If there is only 1 set bit then shift right by one.

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this is the best approach, faster and you would have numbers so big –  user2511414 Jun 29 '13 at 11:55
p=2;
while(p<=n)
{
    p=2*p;
}
p=p/2;
share|improve this answer
1  
This would not work for something like 2147483600. –  user1071777 Aug 8 at 16:45

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