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I have an ArrayList called account which contains Strings. I'm trying to write a method that checks if they are in order and returns true or false based on whether they are in order or not.

How would you go about this? I've already tried checking the initial chracter with a for-loop but it went terribly wrong. I created a new ArrayList and set it equal to the original, then sorted it and compared them but since they contained the same data it always came back true.

Just an extra quick question, since I'm doing this for Strings, how would you check if some numbers were in ascending/descending order? Throught the same principal?

Thankyou!

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stackoverflow.com/questions/3047051/… combined with the javadoc of the String#compareTo(String) method should get you going –  Robin Jan 1 '12 at 21:11
1  
to any: using String.compareTo doesn't mean alphabetical order. either compareToIgnoreCase or some version of java.text.Collator is needed –  bestsss Jan 1 '12 at 21:25
    
Correct answer depends whether you really have to "write a method" or "find out whether list is sorted". In the second case you're best without actually writing a method and using external library like Guava's Ordering class (see my answer for details). Just not to be another author of a wheel :) –  Piotr Findeisen Jan 1 '12 at 21:43

6 Answers 6

up vote 7 down vote accepted

Try this (assuming you want to compare the strings using their natural ordering, of course):

String previous = ""; // empty string: guaranteed to be less than or equal to any other

for (final String current: thelist) {
    if (current.compareTo(previous) < 0)
        return false;
    previous = current;
}

return true;

This is due to the fact that String implements Comparable<String>, and the comparison will be done using the strings' natural ordering.

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2  
I like the final in your reading-only foreach loop –  dantuch Jan 1 '12 at 21:22
    
@dantuch, lots of final reminds me overusing const in c++, sometime just makes pain to code (at least in java it can't be enforced) –  bestsss Jan 1 '12 at 21:30
    
@bestsss that's a matter of coding style, as always –  fge Jan 1 '12 at 21:32
    
@bestsss doesn't this loop looks better with that final? After first 5 chars you already know that it's meant to not change any element of that list, so it only reads it. That's nice. –  dantuch Jan 1 '12 at 21:33
2  
@dantuch, final does not mean to not change any element of that list, though. it means the local variable reference won't change. changing elements content in the list would require immutable class (String is one, indeed) and it has nothing to do w/ final here. for in ensures no modifications, it's sorta weird it's applicable to iterator since it may not use remove(), but that's another odd point (xforming iterator to Enumeration that was basically deprecated) –  bestsss Jan 1 '12 at 21:43

If you don't mind using external library (Guava) Ordering will do:

boolean isSorted = Ordering.natural().isOrdered(list);

This will do for String and other Comparables. If you are check ordering of some custom type, use any of the static factory methods in the Ordering class or subclass it.

Edit for case-insensitive ordering use:

boolean isSorted = Ordering.from(String.CASE_INSENSITIVE_ORDER).isOrdered(list);
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it wont work for 'alphabetical' order w/o comparator. –  bestsss Jan 2 '12 at 10:04
    
@bestsss right, but looking at the accepted answer, String's natural ordering was actually meant by OP. I'm adding a note to my answer anyway. –  Piotr Findeisen Jan 2 '12 at 10:55

I think a for loop would be suitable for this. The approach I would take would be to check each word against the previous and see if they are in the correct alphabetical ordering. Best case this is O(2) for determining that the list is out of order, worst case O(n) for telling you that the list is in order.

Edit: fge's answer above outlines the code for approach described.

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+1 for appropriate running-time cases. I suggest the use of the compareTo() method of the String class to do this. This works the same way for number classes such as Integer,Long,Double... et cetera. –  Zéychin Jan 1 '12 at 21:12
ArrayList<String> initial = // smth
ArrayList<String> copy = // copy initial list here
Collections.sort(initial);
return initial.equals(copy);
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asume that you have list with 9 999 999 strings, each of them is long, and after first few elements you can tell that it's not sorted with just simple if inside loop. Wouldn't it go faster? ;) –  dantuch Jan 1 '12 at 21:26
    
It's simple solution not fast. All depends on your needs. –  mishadoff Jan 2 '12 at 11:18

Use the sort method of Collection class :

List<String> list = new ArrayList<String>();
//Add Elements
Collections.sort(list);

Sorts the specified list into ascending order, according to the natural ordering of its elements.

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Just use a loop and check if they are in order:

boolean isSorted = true;
for(int i = 0; i < list.size() - 1; i++) {
   // current String is > than the next one (if there are equal list is still sorted)
   if(list.get(i).compareToIgnoreCase(list.get(i + 1)) > 0) { 
       isSorted = false;
       break;
   }
}
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