Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Exercise: Write a function that takes a character (i.e. a string of length 1) and returns true if it is a vowel, false otherwise.

My Code:

var findVowel = function(letter) {

var vowels = ["a", "e", "i", "o", "u"];

for(var i in vowels){

    if(letter === i){
        return true;
    } else {
        return false;
    }
}

};

findVowel("e");

I've researched high and low and to me the code looks as if it should but it returns false despite if a vowel is given or not.

share|improve this question
3  
console.log(i); would be a good starting point. You will see it called one time. –  epascarello Dec 16 '12 at 20:40
    
A loop isn't required here, at all. Just use "aeiou".indexOf(letter) != -1 See my answer for some more detailed info. –  Cerbrus Dec 16 '12 at 21:00

4 Answers 4

Don't use for..in loops with arrays. i is the index not the value. Also, your code will only check the letter "a". It will never go to the next iteration of the loop because it always returns true or false after the first iteration.

You need to move return false to be after the loop, so that it will only return false after it has checked against all vowels.

You should also switch to the more "traditional" for..loop style.

I won't even get into the whole "is 'y' a vowel?" issue" :)

Here's the fixed up code:

var findVowel = function(letter) {

    var vowels = ["a", "e", "i", "o", "u"];

    for(var i = 0; i < vowels.length; i++){ // don't use for...in with Arrays
        if(letter === vowels[i]){// Use array indexing instead
            return true;
         }
    }

    return false;// This is after the loop

};

Try it out on: http://jsfiddle.net/adamzr/3yhFS/

share|improve this answer

i is the current index in the iterator of vowels, not the current vowel, hence:

if(letter === vowels[i]) ...
share|improve this answer
    
Only half the answer! –  epascarello Dec 16 '12 at 20:39
    
Worked a charm - first use of the for in loop so this error will stick in my mind, enough to make me remember your advice. thank you. –  ShedInTheGarden Dec 16 '12 at 20:47

You compare only the first element in your vowels to the given letter and return that result. Instead, you have to go thru your whole array, to see if any of your vowels matches.

share|improve this answer

Simply use this, no need to loop through anything:

var findVowel = function(letter) {
    return "aeiou".indexOf(letter) != -1; // return if the letter is found in "aeiou"
};

Or, my personal favorite:

var findVowel = function(letter) {
    return ~"aeiou".indexOf(letter);
};

.indexOf() returns -1 if the parameter isn't found in the string, otherwise, it returns the parameter's position in the string (a int from 0 to string length - 1).

So in the first sample, if the .indexOf() returns -1, the letter is not a vowel. If it returns any other value, it is. (Hence the != -1).

The ~ is a bitwise NOT, inverting that output:
-1 becomes 0 --> a false-ish value.
X (Where X is positive or 0) becomes -(X+1) --> A true-ish value.

This way, the function will return true-ish if the letter is a vowel, and false-ish if it's not.

If you need a "strict" boolean output, replace the return with this:

return !!~"aeiou".indexOf(letter);

The !! is a double boolean NOT (So, invert the boolean value twice), this casts the True-ish value to a true, and a false-ish value (0) to a false.

share|improve this answer
3  
I think that's borderline obfuscated. Why not just say what you mean: return "aeiou".indexOf(letter) != -1;? –  melpomene Dec 16 '12 at 20:47
    
Because the ~ is shorter, and it is a tiny (insignificant) bit faster That said, disliking a specific way to build a contains method is no valid reason to downvote a answer. –  Cerbrus Dec 16 '12 at 20:50

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.