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Somehow I figure the "this" keyword isn't paying reference to the value. However as you know I could use continual if/else if statements and it will work just fine. For example I could write the code this way.

if(painStatus == 1) {
    msg.innerHTML = "pain message 1";
}
else if(painStatus == 2) {
    msg.innerHTML = "pain message 2";
}

so on and so forth, but using a switch statement it fails on me. I'm sure it is something simple I am not doing right. Sorry for being a noob.

<head>

    <script type="text/javascript">
    function painLevel(val) {
            var painStatus = document.getElementById("pain_status").innerHTML = val;
            var msg = document.getElementById("painMsg");

            switch (painStatus) {
                case 1:
                    msg.innerHTML = "Pain message 1";
                    break;
                case 2:
                    msg.innerHTML = "Pain message 2";
                    break;
                    .
                    .
                    .
                default:
                    msg.innerHTML = "";

            }
        }

    </script>
</head>
<body>

<p>Please use the bar to select pain level</p>
<p>My Pain Level</p>

    <input type = "range" min="0" max="10" value="1" onchange="painLevel(this.value)" />

        Pain Level = <span id="pain_status">1</span>
        <br /><br />

        <div id="painMsg"> rePain message 1</div>
</body>
share|improve this question
6  
"1" !== 1. switch/case statements use strict comparison (===) and the .value of an <input> will always be a String. –  Jonathan Lonowski Jan 27 '14 at 16:20
1  
I'm afraid to know what you're programming man... –  Omri Aharon Jan 27 '14 at 16:25
    
ha thats funny, no its just using the pain scale that you see at doctors offices. your comment made me chuckle though lol. –  dragonore Jan 27 '14 at 16:28
    
@dragonore lol, good :) –  Omri Aharon Jan 27 '14 at 16:29

1 Answer 1

up vote 6 down vote accepted

I believe you just need to parseInt like this

switch (parseInt(painStatus)) {
// As before....
}
share|improve this answer
    
Thanks Elliott, I knew it was something simple. I suppose that makes sense since its treating the value as a string instead of number. –  dragonore Jan 27 '14 at 16:25

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