Question #0b1d4
1 Answer
Explanation:
When differentiating logarithmically, first define the function:
#y=3sqrt((x(x+1)(x-2))/((x^2+1)(2x+3))#
Now, take the natural logarithm of both sides.
#ln(y)=ln(3sqrt((x(x+1)(x-2))/((x^2+1)(2x+3))))#
One of logarithm's many abilities is to be able to be split up easily. Here, we can make use of the fact that terms being multiplied inside a logarithm can be split up into two separate logarithms being added, as follows:
#ln(abc)=ln(a)+ln(b)+ln(c)#
This gives us
#ln(y)=ln(3)+ln(sqrt((x(x+1)(x-2))/((x^2+1)(2x+3))))#
Before proceeding, we can also deal with the square root through another property of logarithms:
#ln(a^b)=b*ln(a)#
Thus, we have
#ln(y)=ln(3)+ln(((x(x+1)(x-2))/((x^2+1)(2x+3)))^(1/2))#
#ln(y)=ln(3)+1/2ln((x(x+1)(x-2))/((x^2+1)(2x+3)))#
Now, we can continue splitting up the logarithm. Recall that when there are terms being divided, such as
#ln((ab)/(cd))=ln(a)+ln(b)-ln(c)-ln(d)#
Remembering that the
#ln(y)=ln(3)+1/2[ln(x)+ln(x+1)+ln(x-2)-ln(x^2+1)-ln(2x+3)]#
Now, differentiate both sides of the equation. Recall that differentiation with the natural logarithm function takes the form:
#d/dx(ln(u))=1/u*(du)/dx=(u')/u#
Thus, we obtain
#(y')/y=1/2(1/x+1/(x+1)+1/(x-2)-(2x)/(x^2+1)-2/(2x+3))#
Finally, to solve for
#y'=3/2sqrt((x(x+1)(x-2))/((x^2+1)(2x+3)))(1/x+1/(x+1)+1/(x-2)-(2x)/(x^2+1)-2/(2x+3))#
