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I am trying to implement and algorithm and I am not sure how to implement in Python.

The algorithm is given as [e ^ -ax] * [((e ^ by) - (e ^ -ax)) / ((e ^ by) + (e ^ -ax))]

Where:

  • ^ represents power of
  • e is Euler's number with a value of 2.718
  • a and b are constants and given as a = 0.2 and b = 0.45
  • but x and y are variables where a and b will always be >= 0

This is what I have come up with but I am not sure if this is correct. It would be great if anyone can tell me if it's correct or is there an easier way to do this as it looks very complicated right now.

valueA = 0.2 * x
valueB = 0.45 * y

results = math.pow(math.e, -valueA) * (math.pow(math.e, valueB) - math.pow(math.e, -valueB)) / (math.pow(math.e, valueA) + math.pow(math.e, -valueB))
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4 Answers

up vote 9 down vote accepted

For computing ex, there's no need to write:

math.pow(math.e, x)

Instead, use math.exp and write:

math.exp(x)

or:

from math import exp
exp(x)
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Is it still the same if x is a negative value? –  Cryssie Jan 18 '13 at 12:03
    
Yes. Try it and see for yourself, for example print exp(-1), 1/e0.367879441171 0.367879441171 –  Gareth Rees Jan 18 '13 at 12:13
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You can get rid of math.pow and replace math.e with just e:

from math import e
results = e**-valueA * (e**valueB - e**-valueA) / (e**valueB + e**-valueA)

You could also replace valueA with ax and valueB with by as well, to make things even simpler.

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Because powers of Napier's constant (or Euler's constant) are so common, many languages have an exp function. So does Python:

valueA = 0.2 * x
valueB = 0.45 * y

results = math.exp(-valueA) * (math.exp(valueB) - math.exp(-valueB)) / (math.exp(valueA) + math.exp(-valueB))

exp should be more efficient than using pow, because its base is hardwired. In fact, pow is often defined in terms of exp (and log) for non-integer arguments, so you avoid the calculation of math.log(base), which is equal to 1 anyway when the base is e.

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You can use the ** operator:

In [48]: math.pow(2,10)
Out[48]: 1024.0

In [49]: 2**10              #replace the '2' by math.e or simply e
Out[49]: 1024
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