The number of integral values of $x$ for which the expression $x (2^{x} - 1) (3^{x} - 9) (x - 3) \leq 0$ holds true is

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Solution

Let $E = x (2^{x} - 1) (3^{x} - 9) (x - 3) \leq 0$
Here $(2^{x} - 1) = 0 \Rightarrow x = 0$ and when $3^{x} - 9 = 0 \Rightarrow x = 2$
Therefore, the critical points are $x = 0, 2, 3$
Also, at $x = 0$ , two factors are $0, x$ and $2^{x} - 1$ ; hence, the sign of $E$ does not change while crossing $x = 0$

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