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We have a linkedlist, the elements of this linkedlist are Employee, I want to sort this linkedlist based on the salary of Employee, salary is one member of Employee Class, can we use Collections.sort()? if not, how can I sort it? Can anyone explain me?

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4 Answers 4

up vote 5 down vote accepted

Yes, you can use Collections.sort()

You need to have your Employee class implement the Comparable interface.

http://download.oracle.com/javase/6/docs/api/java/lang/Comparable.html

In your compareTo() method you would compare the salary of the current object to that of the object passed in.

Edit:

The other option you have if you don't want that to be the default comparison is to create a Comparator object and use the second form -> Collections.sort(List, Comparator);

It would look like this:

class SalaryComparator implements Comparator<Employee>
{

    public int compare(Employee e1, Employee e2)
    {

        if (e1.getSalary() > e2.getSalary())
            return 1;
        else if (e1.getSalary() < e2.getSalary())
            return -1;
        else
            return 0;
    }

}

Now you can do: Collections.sort(myEmployeeList, new SalaryComparator());

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you mean use Collections.sort() and Comparable interface together? –  user707549 Apr 22 '11 at 20:28
    
@ratzip yes, the things in your Collection must implement the Comparable interface and then whatever Collection you put them in can be sorted using Collections.sort(). The sort() method will use the compareTo() method that is guaranteed by implementing the Comparable interface. –  Daniel DiPaolo Apr 22 '11 at 20:29
    
Sorry - needed to check that for my own sanity, deleted it for a sec –  Brian Roach Apr 22 '11 at 20:32
    
Edited to add the other way to go about it. –  Brian Roach Apr 22 '11 at 20:41
1  
Comparator is a much better solution here--salary probably isn't the most natural ordering for employees. –  Michael Brewer-Davis Apr 22 '11 at 20:46

While a LinkedList<Employee> will work, I'd use an ArrayList<Employee> for this:

List<Employee> employees = new ArrayList<Employee>();

After you populate it (either way) you can sort it by salary like so:

Collections.sort(employees, new Comparator<Employee>() {
    public int compare(Employee e1, Employee e2) {
        return e1.getSalary() - e2.getSalary();
    }
});
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You can use Collections.sort()

But in order to do that, your Employee class needs to implement the Comparable interface first.

A rough example would be:

public class Employee implements Comparable<Employee>
{
    public int compareTo(Employee e)
    {
        return this.salary - e.salary;
    }
}
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ok,I see, but if we implement Comparable interface, there are several sorting Algorithms,like bubble, selection, quick sort and so on, what kind of sorting Algorithms is used by Comparable interface and Collections.sort()? –  user707549 Apr 22 '11 at 20:38
1  
The Comparable interface is merely an interface -- it has nothing to do with what algorithm is used by Collections.sort(). Take note that I'm not 100% sure on this but I think Java uses a hybrid merge sort. Rest assured, the time efficiency will be O(nlogn) –  Coding District Apr 22 '11 at 20:42
    
Yup, it uses a modified merge sort, details are in the javadoc for Collections.sort() –  Brian Roach Apr 22 '11 at 20:54
    
I read the tutorial, just want to clarify, implementation of compareTo(), if the return value is less than 0, then Collections.sort() will exchange these two object? And if the return value is 1 or 0, it does nothing? –  user707549 Apr 22 '11 at 21:12

You can sort a linked list, but it's not an efficient operation, especially if the list is not trivial in size. Choose appropriate data structures.

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ok, which data structures is better regarding to efficience? –  user707549 Apr 22 '11 at 20:48
    
depends on your data and your usage pattern. The easy answer is to use arrays, as there are lots of effecient sort algorithms implemented for arrays. Another answer is to use a B*tree and create your data already sorted. –  ddyer May 6 '11 at 6:54

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