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I have a list :

List<BookDTO> bookList = libraryDTO.getBooks();

int bookCounter = 0;
for (BookDTO bookdto : bookList)
{
       if ((!errors.isEmpty() && !errors.containsKey("book[" + bookCounter + "].bookRefNo") || errors.isEmpty()) &&
           // do comparison for each record with other records in same list ) {

           errors.put("book[" + bookCounter + "].bookRefNo", messageSource.getMessage("bookRefNo.cannot.be.same", null, null));
        }

    bookCounter++;
    }

Now, I dont know how to do the comparison checking.. basically if there are matching records(records that having same value), I should get the key.

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2  
1. your code does not compile. 2. What you are trying to achieve is not very clear. –  assylias May 29 '12 at 15:56
    
Remove the calls to isEmpty() from the if statement - If I was writing the implementation, the first thing I'd (probably) do inside of containsKey() would be to check if the list was empty. Also, you're going to be (you should be) getting the same error every time - capture it outside of the loop. And I'm not sure what benefits 'managing' errors this way gets you. –  Clockwork-Muse May 29 '12 at 16:13
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2 Answers 2

up vote 0 down vote accepted

Ok I guess your BookDTO has a bookRefNo property and you don't want to have more than one book with the same bookRefNo.

One solution is to rely on the fact that a Set contains no duplicate elements, so in your loop you could do something like this:

Set<String> bookRefs = new HashSet<String>();
for (BookDTO bookdto : bookList)
{
    if (!bookRefs.add(bookDto.getBookRef()))
    {
        // if we are here we tried to insert the same bookRef more than once...
    }
}
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Ossummm.!! thanks @pgras ;-) its working great..and thanks for all of the commenters... –  heart_throbber May 30 '12 at 2:39
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I don't understand if having two books with same values should raise an error (it seems so looking at your code) or if you want just to skip it while counting.

In any case you can't do it with a data structure that doesn't take into account a key without looping the whole collection for every element (that is O(n^2) complexity).

Could you use something more suitable like a set?

List<BookDTO> bookList = libraryDTO.getBooks();
Set<BookDTO> bookSet = new HashSet<BookDTO>(bookList);

bookCounter = bookSet.size();

Of course this assumes that BookDTO has correct implementation for equals(..) and hashCode(). You can even use a sorted set like TreeSet<BookDTO> but this would assume that BookDTO implements Comparable<BookDTO>.

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