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I keep getting the above error message with the following IF statement. Any help is appreciated.

public void sendMessage(View button) {
        String mName = Name.getText().toString();
        String mGuess = Guess.getText().toString();
        if (mGuess != "1" || "2" || "3" || "4" || "5" || "6" || "7" || "8" || "9" || "10") {
            Toast.makeText(MainActivity.this,
                    "The number you entered was invalid. Please try again.", Toast.LENGTH_LONG).show();
        }
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4 Answers

up vote 13 down vote accepted

First, you should generally not be using != to compare strings; use equals() instead. The == and != operators will only test if the strings are identical objects; they do not test for equal values. Second, you need to expand the expression like this:

if (!mGuess.equals("1") || !mGuess.equals("2") || /* etc */) { . . .

Finally, this logic doesn't actually make any sense. The condition will always be true (mGuess will always be "not equal" to at least all but one of the test strings). You probably want:

if (!mGuess.equals("1") && !mGuess.equals("2") && /* etc */) { . . .

A more succinct way of doing this would be:

List<String> validStrings = Arrays.asList("1", "2", ...);
if (!validStrings.contains(mGuess)) { ...

(You could declare validStrings as a static class member to save creating one each time through the method. Also, see the answer by assylias for how to use a HashSet instead of an ArrayList for the lookup; it will do the lookup faster.)

P.S. As mentioned by assylias and also by kcoppock in a comment, you should consider parsing the input as an int value and then doing a numeric test. The difference would be that parsing as an int would treat, say, "07" the same as "7". If you want to allow that, then this code will do the job:

boolean ok = false;
try {
    int guess = Integer.parseInt(mGuess);
    ok = guess >= 1 && guess <= 10;
} catch (NumberFormatException ignored) {
}
if (!ok) { . . .
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2  
Very good and thorough answer. As an aside, in the case where there are a large number of strings, a HashSet or similar might be a more efficient choice. –  Jeremy Roman Mar 10 '13 at 1:41
1  
@JeremyRoman - Good point. I think @assylias made exactly that suggestion. –  Ted Hopp Mar 10 '13 at 1:42
1  
Indeed. As a further aside, this data structure never changes, and should probably be a static final member of the class. –  Jeremy Roman Mar 10 '13 at 1:44
1  
Also, if it's always numeric, you could parse the input (guarded for NumberFormatExceptions of course) and then switch on that result. Would be much clearer. EDIT: Oops @assylias already suggested that. :) –  kcoppock Mar 10 '13 at 1:48
1  
@kcoppock - You would have to wrap the number conversion in a try/catch to deal with blank field or non-numeric input. To me, it's a toss-up whether that would be clearer. Also, OP may actually want to exclude input such as "07". On the other hand, if OP wants to treat "07" the same as "7", then parsing as an int is definitely the way to go. –  Ted Hopp Mar 10 '13 at 1:52
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You need to make each condition explicit as already explained. A more compact way to write it would be:

Set<String> oneToTen = new HashSet<String> (Arrays.asList("1", "2", "3", "4", "5", "6", "7", "8", "9", "10");

if (!oneToTen.contains(mGuess)) {

Alternatively, if you know that mGuess is a number, you could parse it to an integer first:

int guess = Integer.parseInt(mGuess);
if (guess < 0 || guess > 10) {
}
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The cause of the compiler error1 is that the expression

mGuess != "1" || "2" || ..

is parsed equivalently to

((mGuess != "1") || "2") || ..

However, the type of myGuess != "1" is boolean, so the above expression is typed as

((boolean) || String) || String) || ..

but boolean || String is invalid, as per the compiler error:

The operator || is undefined for the argument type(s) boolean, String


1 See one of the other answers for solutions.

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4  
+1 Amazing that none of the rest of us thought to explain the error message itself. It's worth pointing out that || is not defined for two String arguments, either. –  Ted Hopp Mar 10 '13 at 2:01
    
@TedHopp No point trying to compete with your answer, you got that area nailed. –  user166390 Mar 10 '13 at 2:05
    
Now THIS is an answer! –  Peter Perháč Mar 18 '13 at 10:07
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You need to use && to evaluate your negative expressions, use .equals for String comparisons, and have syntactically correct expressions in your if statement:

if (!mGuess.equals("1") && !mGuess.equals("2") && ...

Also see: Java String.equals versus ==

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