I am trying to write a program for my course that sorts an array of objects.

Does anyone know why I am getting this error? Snippets of code included below!

Student object

/* Class for storing students */
public class Student {
  private String name;
  private int mark;

  //Constructor
  public Student(String gName, int gMark) {
    name = gName;
    mark = gMark;
  }

  //Get Mark  
    public int getMark() {
    return mark;
  }
  //Compare to
   public int compareTo(Student gStudent) {
    return this.mark - (int) gStudent.getMark();
  }

}

And putting these students in the array marks (of student objects);

  //Create array
    Student[] marks = new Student[numberOfMarks];

    //Input for each student
    for (int cItem = 0; cItem < numberOfMarks; cItem++) {
        System.out.print("Please enter student number "+(cItem + 1)+"'s name: ");
        String cName = markScanner.nextLine();
        System.out.print("Please enter "+cName+"'s mark: ");
        int cMark = markScanner.nextInt();
        //Skip line
        markScanner.nextLine();
        marks[cItem] = new Student(cName, cMark);
    }

However the sort doesn't seem to work

//Sorting
Arrays.sort(marks);

And produces the error:

Exception in thread "main" java.lang.ClassCastException: Student cannot be cast to java.lang.Comparable
    at java.util.Arrays.mergeSort(Arrays.java:1144)
    at java.util.Arrays.sort(Arrays.java:1079)
    at MarkAnalysis.main(MarkAnalysis.java:33)

And produce the error

up vote 7 down vote accepted
public class Student implements Comparable<Student> {
  ...
}
public class Student implements Comparable<Student> { }

Also, your compareTo() method is a bit unorthodox. Typically, you want something along these lines:

     public int compareTo(Student gStudent) {
        if(this.mark > gStudent.getMark()) return 1;
        if(this.mark < gStudent.getMark()) return -1;
        return 0;
    }

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.