3

I am getting an error with this constructor, and i have no idea how to fix? I am a beginner at java. This is from an example exercise that i was trying to learn:

/** 
 * Create an array of size n and store a copy of the contents of the
 * input argument
 * @param intArray array of elements to copy 
*/
public IntArray11(int[] intArray)
{
    int i = 0;
    String [] Array = new String[intArray.length];
    for(i=0; i<intArray.length; ++i)
    {
    Array[i] = intArray[i].toString();
    }
}
  • 1
    What error are you getting? – Brian Tompsett - 汤莱恩 Jan 29 '15 at 11:05
  • 2
    Please use proper conventions: method names and variable names should start with a lowercase letter – Dragondraikk Jan 29 '15 at 11:05
16

int is not an object in java (it's a primitive), so you cannot invoke methods on it.

One simple way to solve it is using Integer.toString(intArray[i])

5

I would write it more like this

public String[] convertToStrings(int... ints) {
    String[] ret = new String[ints.length];
    for(int i = 0; i < intArray.length; ++i)
        ret[i] = "" + ints[i];
    return ret;
}

Or in Java 8 you might write

public List<String> convertToStrings(int... ints) {
    return IntStream.of(ints).mapToObj(Integer::toString).collect(toList());
}

This uses;

  • Java coding conventions,
  • limited scope for the variable i,
  • we do something with the String[],
  • give the method a meaningful name,
  • try to use consist formatting.

If we were worried about efficiency it is likely we could do away with the method entirely.

String.valueOf(int) is not faster than Integer.toString(int). From the code in String you can see that the String implementation just calls Integer.toString

/**
 * Returns the string representation of the {@code int} argument.
 * <p>
 * The representation is exactly the one returned by the
 * {@code Integer.toString} method of one argument.
 *
 * @param   i   an {@code int}.
 * @return  a string representation of the {@code int} argument.
 * @see     java.lang.Integer#toString(int, int)
 */
public static String valueOf(int i) {
    return Integer.toString(i);
}
4

You code tries to call the toString() method of an int value. In Java, int is a primitive type and has no methods. Change the line:

Array[i] = intArray[i].toString();

to

Array[i] = String.valueOf(intArray[i]);

and the code should run. By the way, you should use lowerCamelCase for variables and fields.

Edit: For what it's worth, String.valueOf(int) is a bit faster than Integer.toString(int) on my system (Java 1.7).

  • 1
    See my answer as to why String.valueOf cannot be faster than Integer.toString ;) – Peter Lawrey Jan 29 '15 at 11:14
  • 1
    Then it's probably a benchmark artefact. I knew I should have used JMH for measurement, but my mvn repository had some breakage recently. – llogiq Jan 29 '15 at 11:31

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.