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I have a number assigned to a variable, like that:

var myVar = 1234;

Now I want to get the second digit (2 in this case) from that number without converting it to a string first. Is that possible?

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//var secondNumber = (myVar-1000)/100; – BLOB Dec 19 '12 at 15:34
3  
@BLOB I have never seen a digit with a fraction part ;) – Rob W Dec 19 '12 at 15:34
2  
Why without converting it to a string? – Florian Margaine Dec 19 '12 at 15:34
up vote 27 down vote accepted

So you want to get the second digit from the decimal writing of a number.

The simplest and most logical solution is to convert is to a string :

var digit = (''+myVar)[1];

or

var digit = myVar.toString()[1];

If you don't want to do it the easy way, you can do that :

var l = Math.pow(10, Math.floor(Math.log(myVar)/Math.log(10))-1);
var b = Math.floor(myVar/l);
var digit = b-Math.floor(b/10)*10;

Demonstration

For people interested in performances, I made a jsperf. It turns out that for random numbers using the log as I do is by far the fastest solution.

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4  
The question is how to do it without converting to a string first. Perhaps the OP wants to learn how to do the math. This doesn't answer the question. – John Kugelman Dec 19 '12 at 15:38
2  
@JohnKugelman SO is about practical questions, not puzzles. That's why I first answered it with the simple solution. Now I edited with a solution which doesn't involve a conversion to string. – Denys Séguret Dec 19 '12 at 15:40
2  
Learning how to manipulate integers is quite practical. How do you think integers are converted to strings in the first place? Also your mathematical solution yields 7 for 123456789. – John Kugelman Dec 19 '12 at 15:45
    
@JohnKugelman I made an answer for numbers with more digits. See edit. – Denys Séguret Dec 19 '12 at 15:58

Get rid of the trailing digits by dividing the number with 10 till the number is less than 100, in a loop. Then perform a modulo with 10 to get the second digit.

if (x > 9) {
    while (x > 99) {
        x = (x / 10) | 0;  // Use bitwise '|' operator to force integer result.
    }
    secondDigit = x % 10;
}
else {
    // Handle the cases where x has only one digit.
}
share|improve this answer
2  
you're going to write another if statement for every digit added? have fun with that. – jbabey Dec 19 '12 at 15:38
1  
@jbabey, sorry, I didn't understand what you meant by "if statement for every digit"? – Vikdor Dec 19 '12 at 16:44
1  
@jbabey, I still don't think your comment is relevant even to the first version of this response: stackoverflow.com/revisions/…. – Vikdor Dec 20 '12 at 1:25
    
There are still two (fixable) bugs in this solution : it doesn't work for negative numbers and it gives wrong digits for midly big numbers (try 9999999999|0 in the console to see why). – Denys Séguret May 27 '14 at 8:00

A "number" is one thing.

The representation of that number (e.g. the base-10 string "1234") is another thing.

If you want a particular digit in a decimal string ... then your best bet is to get it from a string :)

Q: You're aware that there are pitfalls with integer arithmetic in Javascript, correct?

Q: Why is it so important to not use a string? Is this a homework assignment? An interview question?

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I don’t know why you need this logic, but following logic will get you the second number

<script type="text/javascript">
    var myVal = 58445456;
    var var1 = new Number(myVal.toPrecision(1));
    var var2 = new Number(myVal.toPrecision(2));     
    var rem;
    rem = var1 - var2;
    var multi = 0.1;
    var oldvalue;
    while (rem > 10) {
        oldvalue = rem;
        rem = rem * multi;
        rem = rem.toFixed();           
    }
    alert(10-rem);       
</script>
share|improve this answer
var newVar = myVar;
while (newVar > 100) {
    newVar /= 10;
}

if (newVar > 0 && newVar < 10) {
   newVar = newVar;
}

else if (newVar >= 10 && newVar < 20) {
   newVar -= 10;
}

else if (newVar >= 20 && newVar < 30) {
   newVar -= 20;
}

else if (newVar >= 30 && newVar < 40) {
   newVar -= 30;
}

else if (newVar >= 40 && newVar < 50) {
   newVar -= 40;
}

else if (newVar >= 50 && newVar < 60) {
   newVar -= 50;
}

else if (newVar >= 60 && newVar < 70) {
   newVar -= 60;
}

else if (newVar >= 70 && newVar < 80) {
   newVar -= 70;
}

else if (newVar >= 80 && newVar < 90) {
   newVar -= 80;
}

else if (newVar >= 90 && newVar < 100) {
   newVar -= 90;
}

else {
   newVar = 0;
}

var secondDigit = Math.floor(newVar);

That's how I'd do it :)

And here's a JSFiddle showing it works :) http://jsfiddle.net/Cuytd/

This is also assuming that your original number is always greater than 9... If it's not always greater than 9 then I guess you wouldn't be asking this question ;)

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1  
Why have I been down voted!? My answer is the only correct one so far :P – simonthumper Dec 19 '12 at 16:01
    
Ah just love it, up vote! – Murplyx Sep 24 '15 at 15:38
    
and what if I want the third or fourth digit, depending on the state of a control bit? ;) – Lotus Oct 11 '15 at 5:59

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