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I am exceptionally new to programming, but I am working on improving my skills as a programmer. Currently, I am working on a problem I gave myself where I am trying to take a variable number and make each of its digits a separate number in an array. I don't care about the order of the digits, so if they are reversed, then it doesn't matter to me. I know people have asked this question numerous times, but they always seem to use a lot of things that I don't understand. Since my school doesn't offer any Java courses, I only know what I have learned on my own, so if you could explain any terms you use in the code that aren't extremely trivial, that would be wonderful. Right now, I have written:

int number = 1234567890;
    while (number > 0) {
        System.out.println(number%10);
        number = number/10; 

This works fine for printing the digits individually, but I can't figure out how to add them to the array. I greatly appreciate any help you can give, and please keep in mind that I much prefer simplicity over small size. Thank you in advance!

P.S. Some responses I've seen for similar questions include what I think are arrays of strings. In order for the part of the program that I have working to still work, I think that I need to use an array of integers. If you're curious, the rest of the code is used to determine if the numbers in the array are all different, in order to achieve the final result of determining if a number's digits are all distinct. It looks like this:

int repeats=0;
int[] digitArray;
digitArray = new int[10];
for (int i = 0; i < digitArray.length; i++) 
    for (int j = 0; j < digitArray.length; j++)
        if ((i != j) && (digitArray[i]==digitArray[j])) unique = unique+1;
System.out.println(unique==0);
share|improve this question
    
In this case, we don't know size ahead of time, so I think arraylist would be good here. If you use arraylist, all you need to do would be yourList.add(number%10); because of autoboxing, java5 onwards it will work. –  Nambari Feb 7 '13 at 3:48
    
I don't really know what an arraylist is... Is it like an array, but with a different name and a dynamic size? –  Matthew Tyler Feb 7 '13 at 3:56
1  
Yes, it is dynamic array which is backed by array.docs.oracle.com/javase/6/docs/api/java/util/ArrayList.html –  Nambari Feb 7 '13 at 3:58
    
@MatthewTyler.. Exactly. I have added a link to the documentation in the first line of my answer. You can check that. –  Rohit Jain Feb 7 '13 at 3:58
    
This is really an awesome place! I'll look into that list array. It looks like it could not only help me solve this problem, but could also be quite helpful in the future. Thank you so much for all of your help. –  Matthew Tyler Feb 7 '13 at 4:01

2 Answers 2

up vote 5 down vote accepted

number.toString().length() will return the number of digits. That is the same as the length of your needed array. Then you use your code as before, yet instead of printing you add the digit to the array.

int number = 1234567890;
int len = Integer.toString(number).length();
int[] iarray = new int[len];
int index;
    for (index = 0; index < len; index++) {
        iarray[index] = number % 10;
        number /= 10;
}
share|improve this answer
    
Wow! That was a quick reply. That is really helpful, too. My only question is, Why are you using "Integer" instead of "int", which is what I usually use? –  Matthew Tyler Feb 7 '13 at 3:57
1  
@MatthewTyler.. You can work with an int too. Integer is not necessarily required here. In fact, you should use int wherever possible. And only use Integer, where you can't manage without it, e.g. in a generic ArrayList declaration, where you can't have - ArrayList<int>, but only ArrayList<Integer> –  Rohit Jain Feb 7 '13 at 3:59
    
@RohitJain.. I see. I've never heard of using Integer before, so I think I'll stick with int whenever possible. –  Matthew Tyler Feb 7 '13 at 4:03
    
I use Integer because int does not have a toString() method meaning you would have to use an ArrayList instead of a simple array. –  Max Dietz Feb 7 '13 at 14:33
    
@MaxDietz What this have to do with the toString method in Integer? And how will it affect the use of int[] instead of Integer[]? –  Rohit Jain Feb 8 '13 at 4:46

I would rather suggest you to use an ArrayList, since to use an array, you would have to allocate the size in advance, for which you need to know the number of digits in your number, which you don't know.

So, either work with an array, and do the iteration over the number twice - once for finding size, and next for doing actual work. Else, move ahead with an ArrayList.

Adding an element to an ArrayList is quite simple. You just need to call - List#add(E) method with appropriate parameter.

So, here's an extension of your solution: -

// Declare a List<Integer>, since it will store integers only.
List<Integer> digits = new ArrayList<Integer>():

int number = 1234567890;
while (number > 0) {
    int digit = number % 10;  // Store digit in a variable
    number = number/10;

    // Add digit to the list
    digits.add(digit);
}

Alternatively, if you want to have only unique digits in your List, then you should use a HashSet, which automatically removes the duplicates.

share|improve this answer
    
Thanks for the helpful and speedy reply! Do you think you could explain the HashSet a bit more? That function intrigues me, because it seems like it could potentially make my code much simpler. –  Matthew Tyler Feb 7 '13 at 3:59
1  
See the documentation - docs.oracle.com/javase/7/docs/api/java/util/HashSet.html . A HashSet is nothing but a Set, that stores just unique element. You know sets in mathematics right? It's just that. You can get more details in docs. –  Rohit Jain Feb 7 '13 at 4:01
    
I greatly appreciate all of the help you have thus far given, but if you could show me how I would implement the HashSet function into the actual code, then that would be absolutely superb. Thank you for your time. –  Matthew Tyler Feb 7 '13 at 4:04
    
@MatthewTyler.. Just replace the declaration of ArrayList with a HashSet. It goes like this: - Set<Integer> digits = new HashSet<Integer>();. And the rest is same. –  Rohit Jain Feb 7 '13 at 4:16
1  
@MatthewTyler.. Because you can't store too large number in an int. Try using long type for your original number. –  Rohit Jain Feb 7 '13 at 4:23

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