Lời giải:
\(\frac{(x^2+x+1)^{2018}+(x+2)^{2018}-2.3^{2018}}{(x-1)(x+2017)}=\frac{(x^2+x+1)^{2018}-3^{2018}+(x+2)^{2018}-3^{2018}}{(x-1)(x+2017)}\)

\(=\frac{(x^2+x-2)[(x^2+x+1)^{2017}+...+3^{2017}]+(x-1)[(x+2)^{2017}+...+3^{2017}]}{(x-1)(x+2017)}\)

\(=\frac{(x+2)[(x^2+x+1)^{2017}+...+3^{2017}]+(x+2)^{2017}+...+3^{2017}}{x+2017}\)

Do đó:

\(\lim_{x\to 1}\frac{(x^2+x+1)^{2018}+(x+2)^{2018}-2.3^{2018}}{(x-1)(x+2017)}=\lim_{x\to 1}\frac{(x+2)[(x^2+x+1)^{2017}+...+3^{2017}]+(x+2)^{2017}+...+3^{2017}}{x+2017}\)

\(=\frac{3\underbrace{(3^{2017}+3^{2017}+...+3^{2017})}_{2018}+\underbrace{3^{2017}+...+3^{2017}}_{2018}}{1+2017}\)

\(=\frac{3.2018.3^{2017}+2018.3^{2017}}{2018}=3^{2018}+3^{2017}=3^{2017}.4\)

\(\lim\limits_{x\rightarrow-\infty}\dfrac{-a\sqrt{1+\dfrac{1}{x^2}}+\dfrac{2017}{x}}{1+\dfrac{2018}{x}}=-a\Rightarrow a=-\dfrac{1}{2}\)

\(\lim\limits_{x\rightarrow+\infty}\dfrac{bx+1}{\sqrt{x^2+bx+1}+x}=\lim\limits_{x\rightarrow+\infty}\dfrac{b+\dfrac{1}{x}}{\sqrt{1+\dfrac{b}{x}+\dfrac{1}{x^2}}+1}=\dfrac{b}{2}=2\Rightarrow b=4\)

\(\Rightarrow P=2\)

pt<=>sin²⁰¹⁸x+cos²⁰¹⁸x=sin²x+cos²x
<=>sin²x.(sin²⁰¹⁶x-1)=cos²x.(1-cos²⁰¹⁶x)

Ta có:\(\left\{{}\begin{matrix}sin^2x\ge0\\cos^2x\ge0\end{matrix}\right.\)và\(\left\{{}\begin{matrix}sin^{2016}x-1\ge0\\1-cos^{2016}x\le0\end{matrix}\right.\)=>\(\left\{{}\begin{matrix}VT\ge0\\VP\le0\end{matrix}\right.\)

=>VT=VP=0

<=>\(\left\{{}\begin{matrix}\left[{}\begin{matrix}sin^2x=0\\sin^{2016}x=1\end{matrix}\right.\\\left[{}\begin{matrix}cos^2x=0\\cos^{2016}x=1\end{matrix}\right.\end{matrix}\right.\)<=>x=\(\dfrac{k\Pi}{2}\)

cảm ơn nhiều

Chắc bạn ghi nhầm đề, pt này giải luôn được mà:

\(x^{2018}-2018=0\Leftrightarrow x^{2018}=2018\)

\(\Leftrightarrow x=\pm\sqrt[2018]{2018}\)

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