Please solve it

Asked by amrit2002maurya | 9th Aug, 2020, 01:38: PM

Expert Answer:

Question: The number of solutions of the equation log(x2016 + 1)+log(1+x2+x4+...+x2014)=log(2016) + 2015 log x
Solution:
log open parentheses straight x to the power of 2016 plus 1 close parentheses plus log open parentheses 1 plus straight x squared plus straight x to the power of 4 plus.... plus straight x to the power of 2014 close parentheses equals log space 2016 space plus space 2015 space log space straight x
rightwards double arrow log space open square brackets open parentheses straight x to the power of 2016 plus 1 close parentheses open parentheses 1 plus straight x squared plus straight x to the power of 4 plus.... plus straight x to the power of 2014 close parentheses close square brackets equals log space 2016 space plus space log space straight x to the power of 2015
rightwards double arrow log space open square brackets open parentheses straight x to the power of 2016 plus 1 close parentheses open parentheses 1 plus straight x squared plus straight x to the power of 4 plus.... plus straight x to the power of 2014 close parentheses close square brackets equals log space open parentheses 2016 space straight x to the power of 2015 close parentheses
rightwards double arrow open parentheses straight x to the power of 2016 plus 1 close parentheses open parentheses 1 plus straight x squared plus straight x to the power of 4 plus.... plus straight x to the power of 2014 close parentheses equals 2016 space straight x to the power of 2015
rightwards double arrow 1 plus straight x squared plus straight x to the power of 4 plus.... plus straight x to the power of 2014 plus straight x to the power of 2016 plus straight x to the power of 2018 plus straight x to the power of 2020 plus.... plus straight x to the power of 4030 equals 2016 space straight x to the power of 2015
rightwards double arrow fraction numerator open parentheses straight x squared close parentheses to the power of 2016 minus 1 over denominator straight x squared minus 1 end fraction equals 2016 space straight x to the power of 2015 space space space.... space Sum space of space straight a space finite space straight G. straight P.
rightwards double arrow fraction numerator straight x to the power of 4032 minus 1 over denominator straight x squared minus 1 end fraction equals 2016 space straight x to the power of 2015
Left space hand space side space has space even space power space of space straight x space wherere space as space right space hand space side space has space odd space power
So comma space no space solution space exist space for space this space equation
But space as space log open parentheses 1 to the power of 2016 plus 1 close parentheses plus log open parentheses 1 plus 1 squared plus 1 to the power of 4 plus.... plus 1 to the power of 2014 close parentheses equals log space 2 space plus space log space 1007 space equals space log space 2016 space equals space log space 2016 space plus space 2015 space log space 0
Thus comma space straight x equals 1 space satisfies space the space given space equations
Hence comma space there space is space only space one space solution space exist space for space the space given space equation.

Answered by Renu Varma | 9th Aug, 2020, 03:52: PM

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