2

The link to the problem on codechef is:

http://www.codechef.com/problems/DCE05

The problem is:

The contestants have to stand in a line. They are given the numbers in the order in which they stand, starting from 1. The captain then removes all the contestants that are standing at an odd position.

Initially, standing people have numbers - 1,2,3,4,5...

After first pass, people left are - 2,4,...

After second pass - 4,....

And so on.

You want to board the ship as a crew member. Given the total number of applicants for a position, find the best place to stand in the line so that you are selected.

Input

First line contains the number of test cases t (t<=10^5). The next t lines contain integer n, the number of applicants for that case. (n<=10^9)

Output

Display t lines, each containing a single integer, the place where you would stand to win a place at TITANIC.

Example

Input:

2

5

12

Output:

4

8

I noticed a pattern:

For 1 : Output=1 (2^0)
For 2 : Output=2 (2^1)
For 3 : Output=2 (2^1)
For 4 : Output=4 (2^2)
For 5 : Output=4 (2^2)
For 6 : Output=4 (2^2)
For 7 : Output=4 (2^2)
For 8 : Output=8 (2^3) ans so on

So the answer every time is the nearest power of 2 which is <=number.

Here's my code:

import java.io.*;

public class Main {


    public static void main(String[] args) throws NumberFormatException, IOException 
    {
        BufferedReader br = new BufferedReader(new InputStreamReader(System.in));

        int n=Integer.parseInt(br.readLine());
        int x=0;
        int output[]=new int[n];

        for(int i = 0; i < n; i++) 
        {
            output[i]=(int) Math.pow(2, Math.floor(Math.log(Integer.parseInt(br.readLine()))/Math.log(2))); 
        }
        for(int i=0; i<n;i++)
        {
            System.out.println(output[i]);

        }
    }
}

Approach 1: I used Math.pow() to calculate powers of two in a loop until is becomes <= number , which I suppose was very inefficient.

Approach 2: I replaced Math.pow() with *2 in loop. (Still time exceeded)

Approach 3: I replaced multiplication by 2 with left shift in loop. (Still time exceeded)

Approach 4: I replaced loop with that log 2 logic, I found on stackverflow). (Still time exceeded)

Still it's showing time exceeded. What is the fastest way to do this?

  • @downvoter : Care to leave a comment? – I am not a robot May 16 '15 at 15:46
  • Rounding down to the nearest power of two == extracting the highest set bit, see Integer.highestOneBit – harold May 16 '15 at 16:24
  • @harold Still time limit exceeding :( – I am not a robot May 16 '15 at 16:48
  • Well I have to blame something else for that, highestOneBit barely takes any time – harold May 16 '15 at 16:52
  • @harold the code I am writing is: for(int i=0; i<n;i++) { input=Integer.parseInt(br.readLine()); System.out.println(Integer.highestOneBit(input)); } – I am not a robot May 16 '15 at 16:54
2

Be ensured that Integer.highestOneBit is the fastest part of your code. Even your original version was most probably way faster than parsing and formatting. I tried myself and succeeded with

final StringBuilder sb = new StringBuilder();
for (int i = 0; i < n; i++) {
    if (sb.length() > 100000) {
        System.out.print(sb);
        sb.delete(0, sb.length());
    }

    final int x = Integer.parseInt(br.readLine());
    final int y = Integer.highestOneBit(x);
    sb.append(y).append("\n");
}
System.out.print(sb);

The computation is trivial, so I guessed the problem was the output and added some buffering. There's probably a simpler way, but I don't care.

Another possibility is that the site works non-deterministically and I was just lucky.

  • Can you explain your code a bit more? The stop variable mainly : final boolean stop = i == n; – I am not a robot May 17 '15 at 5:36
  • @Nivedita You continue as long as i < n, I stop whenever i == n. So we're looping exactly the same. The whole idea is to write into the sb instead of printing and printing only when the sb gets big or at the end. My implementation of the idea may look confusing to you; feel free to run your own (you can leave the loop as it was and add a print command after the loop and it'll be probably simpler and clearer than my code). +++ Update: I've just did it. +++ Btw., it's quite possible that the whole if can be dropped - I just wanted to make sure I don't run out of memory. – maaartinus May 17 '15 at 5:45

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