For the expression $\frac{4 x^{6} + 7 x^{4} + 5 x^{2}}{x^{n}}$ to be polynomial, what could be the possible value(s) of ' $n$ ' $(n \geq 0) ?$

0

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Solution

The correct option is C $2$
Let's simplify the given expression,
$\frac{4 x^{6} + 7 x^{4} + 5 x^{2}}{x^{n}}$

$= 4 x^{(6 - n)} + 7 x^{(4 - n)} + 5 x^{(2 - n)}$ $[∵ \frac{a^{m}}{a^{n}} = a^{(m - n)}]$

As we all know, for an expression to be polynomial, the exponents of variables must be whole numbers.

For the expression, $4 x^{(6 - n)} + 7 x^{(4 - n)} + 5 x^{(2 - n)}$ to be polynomial, the exponents $(6 - n), (4 - n)$ and $(2 - n)$ must belong to set of whole numbers.

For $(6 - n), (4 - n)$ and $(2 - n)$ to be whole numbers, $n$ must be an integer.

$(6 - n)$ and $(4 - n)$ must be whole numbers, if $(2 - n)$ is a whole number.

Therefore, for the expression, $4 x^{(6 - n)} + 7 x^{(4 - n)} + 5 x^{(2 - n)}$ to be polynomial, $2 - n \geq 0 \Rightarrow n - 2 \leq 0 \Rightarrow n \leq 2$
$∴$ Positive integers less than or equals to $2$ are ${0, 1, 2} .$

As a result, possible values of $n - -$ could be ${0, 1, 2} .$

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