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I am doing an application where I want to find a specific char in an array of chars. In other words, I have the following char array:

char[] charArray= new char[] {'\uE001', '\uE002', '\uE003', '\uE004', '\uE005', '\uE006', '\uE007', '\uE008', '\uE009'};

At some point, I want to check if the character '\uE002' exists in the charArray. My method was to make a loop on every character in the charArray and find if it exists.

for (int z = 0 ; z < charArray; z ++) {
    if (charArray[z] == myChar) {
        //Do the work
    }
}

Is there any other solution than making a char array and finding the character by looping every single char?

share|improve this question
    
Only hash can do this quicker. But if your char array is not larger then 10000 chars, this char-by-char check should be done reasonably quick. – Cipi Sep 28 '11 at 13:56
    
Are either the char or the array constant, in the simple sense of not ever changing? Or even not changing very often? – Ed Staub Sep 28 '11 at 14:23
    
What are your priorities? Are you looking for a lot faster, or simpler, or...? – Ed Staub Sep 28 '11 at 14:24
    
Lot faster. Here I have 10 characters. I want to implement 500 characters. That will become too slow I guess – Farid Farhat Sep 28 '11 at 14:54
up vote 3 down vote accepted

One option is to pre-sort charArray and use Arrays.binarySearch(charArray, myChar). A non-negative return value will indicate that myChar is present in charArray.

char[] charArray = new char[] {'\uE001', '\uE002', '\uE003', '\uE004', '\uE005', '\uE006', '\uE007', '\uE008', '\uE009'};
Arrays.sort(charArray); // can be omitted if you know that the values are already sorted
...
if (Arrays.binarySearch(charArray, myChar) >= 0) {
  // Do the work
}

edit An alternative that avoids using the Arrays module is to put the characters into a string (at initialization time) and then use String.indexOf():

String chars = "\uE001...";
...
if (chars.indexOf(myChar) >= 0) {
   // Do the work
}

This is not hugely different to what you're doing already, except that it requires less code.

If n is the size of charArray, the first solution is O(log n) whereas the second one is O(n).

share|improve this answer
2  
Unfortunately Arrays not available in Java ME. – bharath Sep 28 '11 at 13:51
    
Weeelll... indexOf does the same thing with the loop in the string. It does this if(this.charAt(k) == ch) return k;. – Cipi Sep 28 '11 at 13:59
    
Is making it a string and using indexOf(char) too slow or otherwise inappropriate in this case? Otherwise, that would be the best option – Java Drinker Sep 28 '11 at 14:01

You can use hash/map to check existance of the characer. This approach has better time of O(log n) or O(1) depending on hash/map inner structure.

share|improve this answer

If you don't have access to Arrays, since you are working in JavaME, then you should try to:

  • Or implement a sorted array and the binary search youself
  • Or just use a O(n) solution, wich is a good solution anyways.

Your solution is O(n), along with the one stated by aix.

You could try to use a Map, but it would depends on how much elements you are in your array. If you think there won't be more than 1000 elements in the array, just use a O(n) solution. But if you think you could have an unkown number of elements, a Map would be a reasoable choice, providing a better solution.

share|improve this answer
    
What do you mean by O(n) – Farid Farhat Sep 28 '11 at 14:12
1  
An O(n) is a solution that provides an answer within a maximum of n steps, where n is the number of objects you have. In this case, n would be the size of the array. For example, if your array has 570 elements, the answer here will come off at the maximum of 570 iterations of your algorithm. O(n) solutions are normally good, but if you have a large N (1k+), you could try to improve it. But it all depends on your business.If you will search a lot, but won't include much, a binary search in a sorted array with a O(log n) would be perfect. Otherwise consider using a Map. – SHiRKiT Sep 28 '11 at 14:23
    
Or if you really want to look into this, you could implement all those solutions and profile your applicattion to see what's the best. But of course the Map and the Binary Search in a Sorted array will probally be the faster ones for a large N, but sometimes it's not worth to waste so much time looking into something if you don't know how big N will be. In such cases, I would stick to the Map. – SHiRKiT Sep 28 '11 at 14:25

You can use net.rim.device.api.util.Arrays.getIndex(char[] array, char element)

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It depends on what Java ME configuration / profile you are using. If you're on CDC then check for what parts of Java SE 1.3 Collections framework are supported (just find javadocs targeted for your device and look in java.util package). Another thing worth checking is whether your device has some blackberry-specific API extensions to work with collections.

If you are limited to bare minimum of CLDC/MIDP then other solution than you mentioned would be to add chars to Vector and use Vector.contains(Object)

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If you don't want to implement it yourself you could use ArrayUtils in apache commons project:

ArrayUtils apache-commons

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1  
Ignore this answer didn't see it was for black-berry ME. – Fredrik LS Sep 28 '11 at 14:05

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