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I have this very simple function, and it is returning undefined to me. I have a return statement, yet it still persists. Suggestions?

var scrabble = function (letter) {
    var newLetter = letter.toLowerCase();
    var letterSplit = newLetter.split(" ");
    var newArray = [];
    var values = [["a", 1], ["b", 3], ["c", 3], ["d", 2], ["e", 1], ["f", 4], ["g", 2], ["h", 4], ["i", 1], ["j", 8], ["k", 5], ["l", 1], ["m", 3], ["n", 1], ["o", 1],
     ["p", 3], ["q", 10], ["r", 1], ["s", 1], ["t", 1], ["u", 1], ["v", 4], ["w", 4], ["x", 8], ["y", 4], ["z", 10]];
    for (var i = 0; i < values.length; i++) {
        if (values[i][0] === letterSplit[0]) {
            newArray.push(values[i][1]);
        }
    }
    return newArray;
}; 
share|improve this question
1  
You are always comparing against letterSplit[0] and that would be the first word of your letter.. paste your input so we can see, also tell us what would you expected response be – Pablo Matias Gomez Jul 12 '14 at 18:14
1  
I really wonder why can't you use hash here. It'll make the whole things far more straight-forward. – raina77ow Jul 12 '14 at 18:15
    
Yes, values here should really be an object. – Stuart P. Bentley Jul 12 '14 at 18:16
    
Well an input would be a letter, so they would compare. I had originally had another if statement that was a little more complicated so that it would be testing the first letter of the letterSplit array against the first letters of the whole values array. However, it was coming back undefined, so I changed the if statement to try to simplify it and see if that helped. My spec runner is just for "c" to equal 3. – Magpie Jul 12 '14 at 18:16
1  
that is not your functing returning undefined, that is saying it can't find the variable scrabble – Patrick Evans Jul 12 '14 at 18:19

@Magpie, I am not sure about your requirements. However, this demo might give you some ideas to resolve your issues.

JavaScript:-

(function () {
    var scrabble = function (letter) {
        var newLetter = letter.toLowerCase();
        var letterSplit = newLetter.split(" ");
        var newArray = [];
        var values = [
            ["a", 1],
            ["b", 3],
            ["c", 3],
            ["d", 2],
            ["e", 1],
            ["f", 4],
            ["g", 2],
            ["h", 4],
            ["i", 1],
            ["j", 8],
            ["k", 5],
            ["l", 1],
            ["m", 3],
            ["n", 1],
            ["o", 1],
            ["p", 3],
            ["q", 10],
            ["r", 1],
            ["s", 1],
            ["t", 1],
            ["u", 1],
            ["v", 4],
            ["w", 4],
            ["x", 8],
            ["y", 4],
            ["z", 10]
        ];
        var valuesLength = values.length;
        var letterSplitLength = letterSplit.length;

        for (var valuesIndex = 0; valuesIndex < valuesLength; valuesIndex++) {
            for (var letterSplitIndex = 0; letterSplitIndex < letterSplitLength; letterSplitIndex++) {
                if (values[valuesIndex][0] === letterSplit[letterSplitIndex]) {
                    newArray.push(values[valuesIndex][1]);
                }
            }
        }

        return newArray;
    };

    var output = scrabble("H e l l o w o r l d");
    console.log(output);
    alert(output);
}());

Output:-

[2, 1, 4, 1, 1, 1, 1, 1, 1, 4] 

JSFiddle Demo:- http://jsfiddle.net/w3devjs/6R2X9/

share|improve this answer
    
we've already established that the function works, it's why it's undefined that's the question. see the comments on the OP. – ivy_lynx Jul 12 '14 at 19:16

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