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Given the number n (2 <= n <= 1000), find the lowest nonzero multiple of which is written in base 10 with digits 0 and 1 only. Examples: 2 -> 10, 3 -> 111, 4 -> 100, 7 -> 1001, 11 -> 11, 9 -> 111 111 111.

My idea is not very good: {/* n|2 and n|5 +"000"(max for apparition(2,5)) -> n|3 + "111 " */}

I think, follow the remaining division of numbers consist of numbers n which is formatted 0/1. Thanks for your help!

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Is this homework? If so, please tag it as such. –  NPE Oct 24 '11 at 21:26
4  
Broken English is broken. –  NullUserException Oct 24 '11 at 21:27
1  
It looks like you tried to post some code but it's definitely not Java.. –  Brendan Long Oct 24 '11 at 21:34
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Can you please improve your question, I'm not sure I understand your idea, and I definitely have no idea what the last paragraph should mean. –  Slartibartfast Oct 24 '11 at 21:39
    
is this your question? spoj.pl/problems/ONEZERO –  Purav Shah Oct 25 '11 at 11:24

3 Answers 3

You can use a breadth first search. Start by enqueing 1, since your number must start with a 1, then each time you extract a number x from your queue, see if it's a multiple of n or not. If yes, you have your answer, if not insert x * 10 and x * 10 + 1 in the queue (in that order).

Note that you do not actually have to store the entire strings of 1s and 0s in your queue: it's enough to store the remainder of division by n and some auxiliary information that lets you reconstruct the actual string. Write back if you need more details about this.

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how can i transform 1001 in 1010....then 1011 ....then 1100 –  user1011460 Oct 25 '11 at 8:20

The non-bruteforce approach would be to iterate throught the series of numbers that contain only 0 and 1 then figure out if the number is a multiple of the number in question. This approach will be substantially more efficient than iterating through the multiples of n and determining if it contains only 0 and 1.

IVlad's suggestion is the more efficient way to produce the series (numbers that contain only 0 and 1). However, if you prefer to generate the numbers on-the-fly (no memory overheads of the queue) you can simply iterate through the integers (or use your loop index) and for each value interpret its binary representation as a decimal number.

2 (Decimal) ->  10 (Binary) -> (interpret as decimal 10)
3 (Decimal) ->  11 (Binary) -> (interpret as decimal 11)
4 (Decimal) -> 100 (Binary) -> (interpret as decimal 100)
5 (Decimal) -> 101 (Binary) -> (interpret as decimal 101)
... and so on.

For the conversion, I suspect it can be done by chaining calls to Integer.toBinaryString() and String.parseInt() but there may well be more efficient ways to do that.

Here's an online demo to get you started: http://jsfiddle.net/6j5De/4/

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public static int result(int num)
{
    int i =2;
    while(true)
    {
        int mult = Integer.parseInt(Integer.toString(i++,2));
        if( mult % num == 0) //Check whether it is a multipler of given number or not ?
        {
            return mult;
        }
    }
}
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