22

I'm having a mental block here, and algebra not really being my thing, can you tell me how to re-write the JavaScript code below to derive the variable, c, in terms of a and b?:

a = Math.pow(b, c);
c = ?

Thanks!

51
c = Math.log(a)/Math.log(b)
  • en.wikipedia.org/wiki/Logarithm – Incognito Oct 25 '10 at 15:47
  • Spot on. Thanks! – Premasagar Oct 25 '10 at 16:00
  • Might be worth mentioning that JavaScript is horrible at Math when dealing with precise numbers. var c = 3; var b = 10; var a = Math.pow(b,c) var d = Math.log(a)/Math.log(b); // d should equal 3 // d actually equals 2.9999999999999996 – tbh__ Mar 2 '17 at 21:14
  • @tbh__ is it safe to assume that if I'm working with integers and use Math.round() on the result it'll be accurate? Specifically I know my value is a power of 2, so let power = Math.round( Math.log(value) / Math.log(2) ); should be accurate in my case? – Jake T. Mar 14 '18 at 21:04
  • Ahh, it appears for my specific case Math has me covered with Math.log2(num)! – Jake T. Mar 14 '18 at 21:13
6

Logarithms. You want the logarithm of a. B is the base, c is the exponent, so

logb a = c

  • 1
    Logs! Of course. Thanks, Charlie. – Premasagar Oct 25 '10 at 16:01

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