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this is an onsite interview question for java engineer:

Given an array of type Student with the property Course, write a Java method that determines whether any pair of students in the array has the same course. Be sure to return a boolean value of true if a match is found. Please try to provide the most efficient solution possible assuming a very large number of students.

List the test method names that you would want to implement for the above code. Provide the implementation for at least one of these

I can't find the most efficient solution, does anyone have a better solution? Thanks!

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4  
what have you tried? –  daydreamer Dec 15 '11 at 6:08
    
What is your input, is it pair of students or a array of students ? –  Swagatika Dec 15 '11 at 6:09
    
input is pair of students –  user1097097 Dec 15 '11 at 6:23
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4 Answers

You can only loop once if you use an additional data structure, namely a Set:

boolean check(Student[] array) {
    HashSet<String> courses = new HashSet<String>();
    for(Student tmp : array){
        if(!courses.add(tmp.getCourse()))
            return true;
    }
    return false;
}
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I don't think you need a set really. See my solution and tell me if I'm wrong? –  Amir Afghani Dec 15 '11 at 6:13
2  
@AmirAfghani You're not wrong, your idea just has different characteristics (yours modifies the array, is O(nlogn) instead of O(n), and uses O(1) extra memory). Yours also relies on some kind of ordering on course (which is not a problem here, but more generally it may be). –  mange Dec 15 '11 at 6:16
    
I would think the overhead of creating a new set of size n each time would be a big deal. –  Amir Afghani Dec 15 '11 at 6:32
    
The set will be worst case O(n) extra memory while keeping the time complexity at O(n). The sorting approach is always O(nlogn) time and O(1) space and destroys your original array (so if order is relevant it's not an option). –  mange Dec 15 '11 at 6:40
    
Why would you say the original array is destroyed? There are in memory algorithms that can be used for sorting. –  Amir Afghani Dec 15 '11 at 6:47
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Why don't you use hashmap? It is very efficient. You can build a hashmap for pair of students who has the same course, then use contain value to output if they are in the map. for N students, there would be N*(N-1)/2 pairs, so given any pair you just look at the hashmap, then return true or false.

use Amir Afghani's method:

boolean sameCourse(Student s1, Student s2) { 
    if(s1.getCourse().equals(s2.getCourse()) { 
        return true;
    }
}

then in two loops you put all the pairs into a hashmap.

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Try using Comparable interface for this.

You can compare two objects based on any of their property in this.

You can find more help on this here.

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Sort the array using the course attribute. Then you can walk the array only once and quickly identify duplicates.

boolean hasStudentsWithSameCourse(Student[] students) {
    Arrays.sort(students, new CourseComparator());
    for(int i = 0; i < students.length-1; i++) {
       if(sameCourse(students[i], students[i+1]) { 
           return true;
       }
    }

    return false;
}

boolean sameCourse(Student s1, Student s2) { 
    if(s1.getCourse().equals(s2.getCourse()) { 
        return true;
    }
}

I prefer this solution over creating a new Set each time this routine is invoked. Given that this is Java, my solution produces no GC pressure, and O(nlogn) runtime vs O(n) does not merit the difference in memory cost O(1) vs O(n). The problem states:

assume a large number of students.

A colleague of mine just brought up the following point:

Given an array of type Student with the property Course, write a Java method that determines whether any pair of students

None of the solutions as written return the right answer if the same student shows up in the array more than once.

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An optimisation would be instead of counting just keep track of the previous one you saw. If the previous one is the same as the current one then you have two of them, so you can return true. If you never return true then you can return false. –  mange Dec 15 '11 at 6:18
    
yeah - i see what you're saying. –  Amir Afghani Dec 15 '11 at 6:27
    
Your last test should be students[0] and students[students.length-1]. As it is you'll get an IndexOutOfBoundsException for students[students.length]. –  mange Dec 15 '11 at 6:28
    
You mean -2, and - 1, right? How do you figure its students[0]? –  Amir Afghani Dec 15 '11 at 6:30
1  
@AmirAfghani I have not upvoted because I don't think a method which is merely checking for something should modify the thing it's checking. Your method either modifies the original array or else uses O(n) extra memory (which makes the set approach superior). –  mange Dec 15 '11 at 6:48
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