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I am trying to implement iSortableStack Interface via a class.

Here's my main function,

public class SampleStack<E> {
    E ch;

    public static void main(String[] args) throws IOException {
        ISortableStack<Character> s = new SortableStack<Character>();
        SampleStack demo = new SampleStack();
        while (( == != '\n')
            if (!s.isFull())
        while (!s.isEmpty())

But I am getting one error, on this line,

while (( == != '\n')

Error : Incompatible operand types Object and int

What is wrong here ?

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and if you declare demo as SampleStack<Character>? – ratchet freak Aug 27 '11 at 16:44
Rather than suppressing warnings (as you have done with the @SuppressWarnings("unchecked")), you should heed the compiler's advice. If you don't understand that advice, then you should read-up until you do (which is what you're doing by asking here, an excellent choice.) In general: don't ignore warnings unless you know what they mean. – dlev Aug 27 '11 at 16:50
What exactly is a sortable stack, other than a contradiction in terms? – EJP Aug 27 '11 at 21:43

5 Answers 5

There are two severe problems here that have nothing to do with generics.

First, == is a boolean expression. The result of read() (an int) will be auto-boxed to an Integer, and the identity of that object will be tested against (which is null).

I think that what you want here is the assignment operator, =. This will assign the read() result to

The next problem is that it looks like you expect to be a Character (based on the casts you are using). However, you are trying to assign an int (the result of read()) to it. Primitive types can be "auto-boxed" when necessary, that is, they can be converted to a wrapper object like Character or Integer, but only when the value to be converted is a constant expression that can be represented by the target type. Here, the value is variable, so the conversion cannot be performed implicitly.

You could work around this by explicitly casting the read() result to a char, and then letting the auto-boxing convert it to a Character, but that would hide EOF, which is represented by a value of -1. I recommend using something like this instead:

while (true) {
  int ch =;
  if ((ch < 0) || (ch == '\n'))
  if (!s.isFull())
    s.push((char) ch);

Note that we don't use demo here at all, so the problems with its type parameter are irrelevant.

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Note that Character c; c = (int) 3; is indeed defined and works perfectly well. The rest of what you say is sound however, especially about the hazards of autoboxing the result of read() to a Character. – Ernest Friedman-Hill Aug 27 '11 at 18:04
@Ernest Friedman-Hill: That is interesting, I didn't realize that, and I still don't fully understand what is happening there. It appears that that assignment only works if it the int rvalue can be statically determined to fit in a char without narrowing. For example, c = (int) -1 and c = (int) 65536 do not work. Also, the analysis is local; int i = 3; c = i; does not work in this case. Do you know where this is covered in the JLS? – erickson Aug 27 '11 at 19:21
I think this is covered in the discussion of section 5.2, Assignment conversion: "A narrowing primitive conversion may be used if the type of the variable is byte, short, or char, and the value of the constant expression is representable in the type of the variable." – Ernest Friedman-Hill Aug 27 '11 at 19:34
@Ernest: That definitely covers it! Thanks for the reference. – erickson Aug 28 '11 at 3:51 is of type E. E is an object specified by your type parameters. Since you did not specify a type parameter, the compiler puts Object in for you. If you wanted ch to be a Character, you would want SampleStack<Character> demo = new SampleStack<Character>(); or in Java 7 SampleStack<Character> demo = new SampleStack<>();.

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You haven't provided a type parameter when you instantiate SampleStack, so is of type Object. That obviously can't be compared (or assigned, which is what I suspect you actually wanted to do, anyway) from the int coming from

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You have == (equality test) when you want = (assignment). You're never actually assigning to The equality test returns boolean, rather than char, hence the error message.

You will also need to cast the result from to a character from an integer (or else use SampleStack<Integer>, or something like that.)

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well casting is an option but there are better options such as the Scanner class. – Mateusz Dymczyk Aug 27 '11 at 16:55

You have several errors in this code:

  • as people pointed out you're making a generic class but you're not generalizing it and using it raw, you need:


  • even if you change it it wont run as you have == instead of =

  • even if you change the above two it wont work as returns an int, not a character, You'd need to either make a stack of Integers OR read the value from the input to a variable and then cast it but its not a good practice. I'd use a Scanner or somethign similar to read what the user inputs like this:

    Scanner sc = new Scanner(; char c = sc.nextChar();

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