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Arithela

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simplify: e3ln3


can someone please go through it step by step with the laws?
 

Trebla

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e3ln3 = eln 33
(remember that: ln ax = xln a)
= 33
(remember that eln x = x, i.e. a function of its own inverse gives the variable)
= 27
You can also verify it on your calculator...
 

Arithela

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thanks! but i did not know that elnx = x


why is this rule not in textbooks?
 

lyounamu

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Arithela said:
thanks! but i did not know that elnx = x


why is this rule not in textbooks?
It's not in textbook because it is a question where you just apply your knowledge of the log rule to the real question.

For example, we don't actually learn that tan^2(x) = sec^2(x) - 1. But we derive this rule from the rule that is in the textbook (which is tan^2(x) + 1 = sec^2(x)).
 

3unitz

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Arithela said:
thanks! but i did not know that elnx = x


why is this rule not in textbooks?
let y = e^ln x

take log of both sides:

ln y = ln (e^ln x)

ln y = ln x . ln e (using ln (x^a) = a ln x)

ln y = ln x

.'. y = x

hence x = e^ln x

lyounamu said:
It's not in textbook because it is a question where you just apply your knowledge of the log rule to the real question.

For example, we don't actually learn that tan^2(x) = sec^2(x) - 1. But we derive this rule from the rule that is in the textbook (which is tan^2(x) + 1 = sec^2(x)).
thats derived from sin2x + cos2x = 1 by dividing both sides by cos2x
 

lyounamu

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3unitz said:
thats derived from sin2x + cos2x = 1 by deviding both sides by cos2x
I know. But in the textbook, they give that as a "formula". Well, it doesn't matter.
 

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