public class Child{

    public static void main(String[] args){
        String x = new String("ABC");
        String y = x.toUpperCase();

        System.out.println(x == y);
    }
}

Output: true

So does toUpperCase() always create a new object?

  • 2
    I wouldn't rely on this behaviour but I would expect it to avoid creating a new object. – Peter Lawrey Nov 19 at 8:00
  • Note: new String(...) doesn't change the answer. – Peter Lawrey Nov 19 at 8:01
  • 8
    String x = new String("ABC"); Please don't do this. You create String object twice. just use x = "ABC"; – Sarief Nov 19 at 8:02
  • edit: someone pointed that OP used new String("ABC") to point to fact that it's not interned. I don't see how interning or not interning makes difference for toUpperCase(Locale) method – Sarief Nov 19 at 8:21
up vote 18 down vote accepted

toUpperCase() calls toUpperCase(Locale.getDefault()), which creates a new String object only if it has to. If the input String is already in upper case, it returns the input String.

This seems to be an implementation detail, though. I didn't find it mentioned in the Javadoc.

Here's an implementation:

public String toUpperCase(Locale locale) {
    if (locale == null) {
        throw new NullPointerException();
    }

    int firstLower;
    final int len = value.length;

    /* Now check if there are any characters that need to be changed. */
    scan: {
        for (firstLower = 0 ; firstLower < len; ) {
            int c = (int)value[firstLower];
            int srcCount;
            if ((c >= Character.MIN_HIGH_SURROGATE)
                    && (c <= Character.MAX_HIGH_SURROGATE)) {
                c = codePointAt(firstLower);
                srcCount = Character.charCount(c);
            } else {
                srcCount = 1;
            }
            int upperCaseChar = Character.toUpperCaseEx(c);
            if ((upperCaseChar == Character.ERROR)
                    || (c != upperCaseChar)) {
                break scan;
            }
            firstLower += srcCount;
        }
        return this; // <-- the original String is returned
    }
    ....
}
  • 4
    @Sarief if it created a new object (and returned that new object) x == y would definitely return false. – Eran Nov 19 at 8:06
  • 2
    @Sarief it somehow got to this list, which tends to result in high traffic. – Eran Nov 19 at 8:08
  • 1
    @Eran Let me rephrase, even if it had in contract that it creates a new object and it did create a new object, it does not mean that it will return a new object. Strings are contained in Strings pool and are reused mostly from there – Sarief Nov 19 at 8:09
  • 1
    @Sarief First of all its not silly question, as Strings are immutable so any operation performed is expected to result in a separate object. Secondly the answer as many would think is related to same string in string pool, but its not as OP has created string using new and not invoked intern() hence correctly the answer points the implementation bwing the result as why no new object was created for the case presented by the question – nits.kk Nov 19 at 8:12
  • 2
    @nits.kk this should not apply for immutable objects, which Strings are – Sarief Nov 19 at 8:23

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