Exponential function symmetrical over y=x
Im trying to find an exponential function that is symmetrical over the line y=x (2D). Preferably one where I can control how close the 'corner' is to the origin. Does anyone know of one?
There is no such exponential function; the only functions symmetrical in y = x are functions who's inverse is themself (an involution). for example f(x) = x, f(x) = 1/x
[font=arial, helvetica, tahoma, sans-serif][size=2]you can generate more involutions given any involution g, and an invertible f by taking f^-1 . g . f or f . g . f^-1[/font]
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[font="arial, helvetica, tahoma, sans-serif"]for example take the involution g = 1/x and f = (e^x)-1, then you get f^-1 . g . f = ln(1/(-1+e^x)+1) which looks like: Graph[/font]
[font=arial, helvetica, tahoma, sans-serif][size=2]you can generate more involutions given any involution g, and an invertible f by taking f^-1 . g . f or f . g . f^-1[/font]
[font=arial, helvetica, tahoma, sans-serif][size=2]
[/font]
[font="arial, helvetica, tahoma, sans-serif"]for example take the involution g = 1/x and f = (e^x)-1, then you get f^-1 . g . f = ln(1/(-1+e^x)+1) which looks like: Graph[/font]
if you mirror y = e^x over y = x you get y = ln(x), or just it's inverse
if you want to control the distance to the origin you can divide x by a value, that I will call scaler) between 0 and 1. The line will cross the x axis at 1 / scaler.
this is the equation
y = ln(x / scaler)
Can I ask what this is for?
if you want to control the distance to the origin you can divide x by a value, that I will call scaler) between 0 and 1. The line will cross the x axis at 1 / scaler.
this is the equation
y = ln(x / scaler)
Can I ask what this is for?
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