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Question: Simplify the expression \(\ln \left( {\dfrac{1}{{{e^2}}}} \right)\)....

Simplify the expression ln(1e2)\ln \left( {\dfrac{1}{{{e^2}}}} \right).

Explanation

Solution

  ln(Pq)=q×ln(P)\;\ln \left( {{P^q}} \right) = q \times \ln \left( P \right)- Power Rule
By using power rules and basic logarithmic identities we can simplify the above question.
Also we know ln(ey)=y\ln \left( {{e^y}} \right) = y since the exponential and logarithmic functions are inverse in nature.
So by using the above two identities we would be able to simplify the expressionln(1e2)\ln \left( {\dfrac{1}{{{e^2}}}} \right). So by using the logarithmic expressions and identities we can simplifyln(1e2)\ln \left( {\dfrac{1}{{{e^2}}}} \right).

Complete step by step solution:
Given
ln(1e2).............................(i)\ln \left( {\dfrac{1}{{{e^2}}}} \right).............................\left( i \right)
Now we have to simplify the logarithmic term and the term (1e2)\left( {\dfrac{1}{{{e^2}}}} \right)along
with it.
We can write (1e2)\left( {\dfrac{1}{{{e^2}}}} \right) as e2{e^{ - 2}}i.e. (1e2)=e2\left( {\dfrac{1}{{{e^2}}}} \right) = {e^{ - 2}}in accordance with the negative exponential rule.

So from (i) we can write
ln(1e2)=ln(e2)..............................(ii)\ln \left( {\dfrac{1}{{{e^2}}}} \right) = \ln \left( {{e^{ - 2}}} \right)..............................\left( {ii} \right)
Also ln(ey)=y.......................(iii)\ln \left( {{e^y}} \right) = y.......................\left( {iii} \right) since the exponential and logarithmic functions are inverse in nature.
Now comparing (ii) in (iii) we get:
ln(e2)=2..................(iv)\ln \left( {{e^{ - 2}}} \right) = - 2..................\left( {iv} \right)
Therefore from (iv) we can write:
ln(1e2)=2\ln \left( {\dfrac{1}{{{e^2}}}} \right) = - 2

Alternative method:
We know the Quotient Rule:    ln(PQ)=ln(P)ln(Q)   \\\ \;\ln \left( {\dfrac{P}{Q}} \right) = \ln \left( P \right) - \ln \left( Q \right) \\\ \\\
So on comparing ln(1e2)\ln \left( {\dfrac{1}{{{e^2}}}} \right) with the Quotient Rule we can observe thatP=1  and  Q=e2P = 1\;and\;Q = {e^2}.
Therefore by using the Quotient Rule and other logarithmic properties we can simply ln(1e2)\ln \left( {\dfrac{1}{{{e^2}}}} \right) directly and simply.
So applying Quotient Rule in (i) we get:
ln(1e2)=ln(1)ln(e2).........................(v)\ln \left( {\dfrac{1}{{{e^2}}}} \right) = \ln \left( 1 \right) - \ln \left( {{e^2}} \right).........................(v)
Also we know ln(1)=0\ln \left( 1 \right) = 0 which is a basic logarithmic identity is
And from (iii) ln(e2)=2\ln \left( {{e^2}} \right) = 2 since we know ln(ey)=y\ln \left( {{e^y}} \right) = y
On substituting these values in (v) we get:
ln(1e2)=0(2)                       =2  \ln \left( {\dfrac{1}{{{e^2}}}} \right) = 0 - (2) \\\ \;\;\;\;\;\;\;\;\;\;\; = - 2 \\\

Therefore: ln(1e2)=2\ln \left( {\dfrac{1}{{{e^2}}}} \right) = - 2which is our final answer.

Note: Some of the logarithmic properties useful for solving questions of derivatives are listed below:
$
1.;\ln \left( {PQ} \right) = \ln \left( P \right) + \ln \left( Q \right) \\

2.;\ln \left( {\dfrac{P}{Q}} \right) = \ln \left( P \right) - \ln \left( Q \right) \\

3.;\ln \left( {{P^q}} \right) = q \times \ln \left( P \right) \\
Equations1’‘2and3arecalledProductRule,QuotientRuleandPowerRulerespectively.Alsoanotherbasicidentitieswhicharenecessarytosolvelogarithmicquestionsaregivenbelow: Equations ‘1’ ‘2’ and ‘3’ are called Product Rule, Quotient Rule and Power Rule respectively. Also another basic identities which are necessary to solve logarithmic questions are given below: \ln 1 = 0$where ‘a’ is any real number.