Question

The set of real values of $x$, for which $h\left(x\right)=1+2x^2+4x^4+6x^6+\cdots +100x^{100}$ is concave downward is

• A. $x\in \varphi$
• B. $x\in R^{-}$
• C. $x\in W$
• D. $x\in R^{+}$

Answer 1

The correct option is A $x\in \varphi$

$h\left(x\right)=1+2x^2+4x^4+6x^6+\cdots +100x^{100}$
$h^{\prime }\left(x\right)=0+2^{2}x+4^2{x}^3+6^2{x}^5+\cdots +{100}^2{x}^{99}$
$h^{\prime \prime }\left(x\right)=2^2+4^2\left(3x^2\right)+6^2\left(5x^4\right)+\cdots +{100}^2\left(99x^{98}\right)$
So, $h^{\prime \prime }\left(x\right)$ is always positive for all real values of $x$
Hence $h\left(x\right)$ is always concave upward