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I'm currently working on one of my assignments, and am looking for some help with the logic for one of my functions.

First off I have a array of numbers to be categorized, then a number interval, this number determines in which position each of the numbers being plotted goes into array2.

ie.

int interval = 2;

for(int i = 0; i < array1.length; i++) {
    if((array1[i] > 0) && (array1[i] < interval)) {
        array2[0]++;
    }
}

However, the number from array1 is 3. I would then need another if statement like so:

...
}else if((array1[i] > 2) && (array1[i] < interval * 2)) {
    array2[1]++;
}else if((array1[i] > 

As you can start to see the problem with this is that I would need to continue for an infinite range of numbers. So my question is what is an easier way of achieving this goal? Or is there already a library which I can utilize to do so?

I'm sorry if I didn't make this clear enough, also I would prefer if code wasn't given to me. I would appreciate if someone would be able to tell me a more effective way about going about this, thanks in advance!

EDIT:

Assuming that the interval is set to 2, and the numbers from array1 are between 0 and 10, I would need to create a code that would do such:

2 < numFromArray1 > 0 == array2[0]++
4 < numFromArray1 > 2 == array2[1]++
6 < numFromArray1 > 4 == array2[2]++
8 < numFromArray1 > 6 == array2[3]++
10 < numFromArray1 > 8 == array2[4]++

However, the numbers from array1 can be positive or negative, whole or decimal.

share|improve this question
    
How large your number number can be. And also you are losing the condition: - array1[i] == interval. – Rohit Jain Oct 25 '12 at 18:27
    
I don't understand the problem. Can you post a more detailed explanation? Give a sample run? Also, what is 'number number'? – Konstantin Naryshkin Oct 25 '12 at 18:28
    
I ment to say this: array1 = Set of numbers to be categorized number = 3 would be a random number taken from array1 – Matt Brzezinski Oct 25 '12 at 18:30
    
it seems too difficult to implement here. But is possible. – Roman C Oct 25 '12 at 18:33
    
@user1327636 you need to make the pattern clear. From your two cases, the pattern is very ambiguous. Could be arithmetic progression, geometric progression or even something completely random. Give at least five else if blocks following the if block, in order of dealing with increasing number value. – ADTC Oct 25 '12 at 18:36
up vote 2 down vote accepted

Assuming I understood the question correct, and the interval would be 3, than occurrences of 0, 1 and 2 would increase array2[0], occurences of 3, 4 and 5 would increase array2[1] and so on, this would be a solution:

EDIT sorry, you did not want to see code. I can repost it, if you want. Think about a real easy way to determine which category a number will be in. I'll try to give a hint.

Interval = 3;
0,1,2 -> category 0
3,4,5 -> category 1
6,7,8 -> category 2

Once you know the category, it is easy to increment the desired number in array2.

It would look something like that:

for(int i = 0; i < array1.length; i++) {
    int category = // determine category here
    // increase correct position of array2
}

After some dicussion, here is my code:

for(int i = 0; i < array1.length; i++) {
    int category = array1[i] / interval;
    array2[category]++;
}

My solution won't work for negative numbers. Also it is not specified how to handle them

share|improve this answer
    
I think I've figured it out with your method, correct me if I'm wrong. If the interval size is 2, and I have an array of numbers from 1-10. I would do something like: array1[i] / interval = category - 1; – Matt Brzezinski Oct 25 '12 at 19:04
    
I think you mean category = array1[i] / interval; And why do you subtract 1? Other than that, this is it, please also post your final code for us to look at, and accept my answer if it really helped ;) – jlordo Oct 25 '12 at 19:06
    
That's what I had ment, I just didn't bother to right it as a proper code. I would subtract by one because that would give the proper category as arrays start off at the 0th element, not the first. So, assuming like in my previous examples with an interval of two and numbers from 1-10 1/2 = 0.5 == Category 0 2/2 = 1 == Category 0 3/2 = 1.5 == Category 1 Because category 0 would be a number when divided by the interval would equal to between 0 and 1, category 1 would be any number when divided is between 1 and 2. – Matt Brzezinski Oct 25 '12 at 19:11
    
@jlordo. Your category range is not what OP is looking for. See the Original Post. He has posted the range. You might edit your post. – Rohit Jain Oct 25 '12 at 19:14
    
@Rohit Jain: I read "2 < numFromArray1 > 0 == array2[0]++" as increment array2[0] if numFromArray1 is less than two and greater (or equals) as zero. Also read OPs comments on my solution, seems to be the right direction. – jlordo Oct 25 '12 at 19:18

Use a nested loop. Obviously it's not infinitely many possibilities for interval because array2 has a fixed size. So if you loop through all the cells in array2, and then do some math to figure out what your conditions need to be... I won't give complete code (you asked me not to, but it would look something like:

for ( ... ) {
    for ( ... ) { 
        if (array1[i] > /* do some math here */ && ... ) {
            array2[/* figure out what this should be too */]++;
        }
    }
 }

Hopefully you can figure it out from this.

By the way, if you aren't required to use an array for array2, consider learning about LinkedList<?>for a data structure that can grow in size as you need it to.

http://docs.oracle.com/javase/1.4.2/docs/api/java/util/LinkedList.html

http://www.dreamincode.net/forums/topic/143089-linked-list-tutorial/

share|improve this answer

Here's what you can do to consider all cases: -

  • First find out what is the maximum value in your array: - array1.

  • Your range should be 0 to maxValueInArray1

  • Then inside your outer for loop, you can have another, that will run from 0 to the (maximum value) / 2. Because, you don't want to check for maximum value * 2 in your interval

  • And then for each value, you can check for the range, if it is in that range, use array2[j]

For E.G: -

for (...) // Outer loop {
    for (int j = 0; j <= maximumValueinArray1 / 2; j++) {
        // Make a range for each `j`
        // use the `array2[j]` to put value in appropriate range.
    }
}

In your inner loop, you might check for this condition, based on following reasoning: -

For interval = 2, and say maximumValueinArray1 is max, your range looks like: -

  0 * interval ----- (1 * interval)  --> in `array2[0]` (0 to 2)
  1 * interval ----- (2 * interval)  --> in `array2[1]` (2 to 4)
  2 * interval ----- (3 * interval)  --> in `array2[2]` (4 to 6)

and so on.

 ((max / 2) - 1) * interval ----- (max / 2) * interval  (`max - 2` to max)

So, try relating these conditions, with the inner loop I posted, and your problem will be solved.

share|improve this answer
    
@user1327636.. Take a look at the answer. I think you will get an idea of what you should do. – Rohit Jain Oct 25 '12 at 19:12

I'm not sure what exactly you're trying to do, but from your code snippets, I can come up with this inner for loop:

//OUTDATED CODE - please see code block in EDIT below
//for(int i = 0; i < array1.length; i++) {
//    for (int j = 0; j < 100000; j++) { //or Integer.MAXVALUE or whatever
//        if ((array1[i] > (j*2)) && (array1[i] < interval * ((j*2)==0?2:(j*2)) )) {
//            array2[j]++;
//        }
//    }
//}

EDIT: Owing to your recent edit, this is more suitable and you don't have to run an inner loop!:

  1. Loop through array1
  2. For each element in array1, find array2 index by taking floor of element / interval
  3. Add 1 to array2 element at found index.

DON'T LOOK AT THE CODE BELOW =)

for(int i = 0; i < array1.length; i++) {
    int index = Math.floor(array1[i] / interval);
    array2[index]++;

    //the rest are actually not necessary as you just need to get the index
    //and the element will be within range, left inclusive (lower <= value < upper)

    //int lower_range = Math.floor(array1[i] / interval) * interval;
    //    //or int lower_range = index * interval;
    //int upper_range = Math.ceil(array1[i] / interval) * interval;

    //if ((array1[i] > lower_range) && (array1[i] < upper_range)) {
    //    array2[index]++;
    //}
}
share|improve this answer
1  
Dude. He specifically asked not to be given complete code. – durron597 Oct 25 '12 at 18:30
    
Yea didn't notice :( Well my code could be wrong since his snippets aren't clear of what the math part should be. He only gave 2 cases and it's very hard to judge the pattern from it. – ADTC Oct 25 '12 at 18:32
    
Also, your conditions are not correct. You should multiply your j with interval rather than 2. – Rohit Jain Oct 25 '12 at 18:45
    
As I said before, the question doesn't make it clear what the pattern is. I was making a guess at the pattern. You're probably right but the original asker will have to confirm. – ADTC Oct 25 '12 at 18:50
    
@ADTC. I would prefer if code wasn't given to me. -> This is what OP wrote somewhere in the post. – Rohit Jain Oct 25 '12 at 19:04

The relationships and pattern are hard to figure out. My attempt in interpreting what you want:

How about something like:

if ( array1[i] < interval * (interval - 2) ) {
    array2[interval-2]++;
}
share|improve this answer
    
what if your condition fails? which element in array2 would you increment? – jlordo Oct 25 '12 at 18:33

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