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I have the following array

String[] arrKey  = new String[] {"A","B","C","D","E",......"Y","Z"};

I would like to search the array and give me the index of where the letter is. Say for example I want to search for the letter "E" and when I search the array it should give me the position of "E" so I should get index position 4. I don't want to do this in a loop. Is it possible? I have been looking all around and can't find an answer.

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You could write a recursive method if you don't want to use an explicit loop. –  Jesper Nov 8 '12 at 15:07
1  
No, it's impossible without loop. –  Roman C Nov 8 '12 at 15:08
    
Are you looking for a solution which is self contained and doesn't use loops or any other API call? –  Santosh Gokak Nov 8 '12 at 15:27

6 Answers 6

I don't want to do this in a loop.

There has to be a loop somewhere - either in your code or library code.

So yes, you can use

int index = Arrays.asList(arrKey).indexOf("E");

... but that will loop under the covers.

If you know that your array is sorted to start with, you can use:

int index = Arrays.binarySearch(arrKey, "E");

That will be more efficient - but it's still a loop...

Of course, if you know that your array is always A-Z, then you can do it without a loop - but I assume your real case is more generalized...

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What I meant about a loop is I didn't want to do a for loop. The above could be what I'm looking for. Will need to text. –  Dino Nov 8 '12 at 16:29
    
Thanks Jon, When I try the above: int index = Arrays.asList(arrKey).indexOf("E"); I get -1 as my answer regardless of which one letter I use. When I try this one : int index = Arrays.binarySearch(arrKey, "E"); I get this error: Exception in thread "main" java.lang.ClassCastException: java.lang.Character cannot be cast to java.lang.String I assume it has to do with the type of array? –  Dino Nov 8 '12 at 18:17
    
@Dino: Then you must have a different array to the one you showed us. It sounds like you don't really have a String array. –  Jon Skeet Nov 8 '12 at 19:58
    
I have actually used a String c = "ABCDEFGHIJKLMNOPQRSTUVWXYZ"; then char[] arrKey = c.toCharArray(); and your code int index = Arrays.binarySearch(arrKey, "E"); worked for me. I am not sure how it works but from what you said it loops? I am just curious as I am learning JAVA as when you look at the line there is no loop there just a line so I presume that JAVA (in the background) does it's own loop for that statement! Is that right? –  Dino Nov 8 '12 at 21:38
    
@Dino: Right, so your code isn't as it is in your question (where you have a String[]). Your code should work if you use 'E' instead of "E". And yes, all of these loop. But if you've really got A...Z, you can just use 'E' - 'A'... It would really help if you'd give us an accurate impression of what you're trying to achieve. –  Jon Skeet Nov 8 '12 at 22:19

If you have to deal with chars and not strings have a look at the getNumericValue method.

If you want a more general solution you should consider using a Map<String,Integer> rather than an array.

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Use indexOf

   return arrKey.get(arrKey.indexOf("E"));
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It only possible if you assume you have this array (or one similar) as you can calculate the index.

String s = "E";
int index = s.charAt(0) - 'E'; // == 4
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Here is the code I am working on. This is what I have at the moment. It is just a practice round for me to practice JAVA and understand the Ceaser Cipher.

public class CeaserCipher
{
public static void main (String [] args) {
    Scanner keyboard = new Scanner(System.in);
    System.out.println("Enter test letters for Caesar cipher in capitals");
    String input = keyboard.nextLine();
    char[] strArray = input.toCharArray();

    System.out.print("What is the key: "); 
    int key = keyboard.nextInt();
    //String[] arrKey  = new String[] {"A","B","C","D","E","F","G","H","I","J","K","L","M","N","O","P","Q","R","S","T","U","V","W","X","Y","Z"};
    String c  = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
    char[] arrKey = c.toCharArray();

    for (int i = 0; i < strArray.length ; i++){

        char cipherValue = strArray[i];
        int index = Arrays.binarySearch(arrKey, cipherValue);
        int j = (key + index)%26;
        System.out.print(arrKey[j]);

    }
}
}
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It's not clear why you've added this as an answer. Isn't this just basically acknowledging that my answer works, albeit using char instead of String? –  Jon Skeet Nov 9 '12 at 11:01
    
OH I thought that you wanted to see my answer. I did try using String, but I kept getting an error message. That is why I converted to char. –  Dino Nov 10 '12 at 9:41
    
Either should be fine - so long as you're consistent between "what's in your array" and "what you're looking for". So you can look for 'E' in a char[], or "E" in a String[]. –  Jon Skeet Nov 10 '12 at 9:42
    
Ah Thanks a lot Jon, that is what I wanted to learn. That really clears it up for me. Reading your last comment made me happy to learn that either way is fine. –  Dino Nov 11 '12 at 8:21

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