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When I compile this code:

interface Rideable {
    String getGait();

public class Camel implements Rideable {
    int x = 2;

    public static void main(String[] args) {
        new Camel().go(8);

    void go(int speed) {
        System.out.println((++speed * x++) 
        + this.getGait());

    String getGait() {
        return " mph, lope";

I get the following error: error: getGait() in Camel cannot implement getGait() in Rideable
String getGait() {
  attempting to assign weaker access privileges; was public
1 error

How is the getGait method declared in the interface considered public?

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methods declared in an interface are implicitly public. that's just how the language works. for the class that implements this interface, it must be explicitly about the access modifier of the method. in your case, String getGait() is protected, hence the error message. – mre Oct 31 '12 at 14:52
This error is self-explanatory, you need to make getGait() public in class Camel. – Shark Oct 31 '12 at 14:56
@mre ... The getGait method actually has default visibility... package-private... not protected. – Eddie B Sep 29 '14 at 9:04

2 Answers 2

Methods declared inside interface are implicitly public. And all variables declared in the interface are implicitly public static final (constants).

public String getGait() {
  return " mph, lope";
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All methods in an interface are implicitly public, regardless if you declare it explicitly or not. See more information in the Java Tutorials Interfaces section.

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