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I'm just doing my form validation wherein which Phone number has to be only numbers! The code works well in chrome but not in firefox and IE. pls give me some solution

My code is as follows

function noLet(event) {
    if (event.keyCode == 46 || event.keyCode==8 || event.keyCode > 47 && event.keyCode <      58) {
        event.returnValue = true;
    } 
    else {
        event.returnValue = false;
    }
}

HTML:

 onkeypress="noLet(e)"><label id="mobph"></label><font 

size="1"><br>Max 10 numbers only allowed!</font> 
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Related: JavaScript Madness: Keyboard Events – Florian Margaine Aug 5 '12 at 6:31

May i suggest the following code to solve your problem. This is what i am doing. Tested and works like a charm in ie, chrome and firefox:

//return numbers and backspace(charCode == 8) only
function noLet(evt) {
    var charCode = (evt.which) ? evt.which : evt.keyCode;
    if (charCode >= 48 && charCode <= 57 || charCode == 8)
        return true;
    return false;
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Because on Firefox, at least, it's charCode, not keyCode in the keypress handler, and "returnValue" is ignored (invoke preventDefault() to stop the insertion).

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You can use the key/char code to detect whether the key pressed is a number or not a number. First you have to detect what the key/char code is cross browser (remember to use event.keypress as your event to further assure compatibility). Afterwards, you convert it from its decimal value to its character. Then you can parse it as an integer using parseInt() which will return NaN if the first value inside the function cannot be parsed as an int. And then prevent the default action if it is NaN.

var numbersOnly = function(e){
    var charCode = (typeof e.which === "number") ? e.which : e.keyCode,
        chr = String.fromCharCode(charCode);
    if(isNaN(parseInt(chr, 10))) e.preventDefault();
}

<input type="text" name="phoneNumber" onkeypress="numbersOnly(event);">
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