Question 10

NUMERICALHARD

Consider the function $f : (-\frac{\pi}{2}, \frac{\pi}{2}) \to (-\infty, \infty)$ defined by $f(x) = (|x| + |x - 1|) \sin x + [x \sin x] ,$ where $[x \sin x]$ is the greatest integer less than or equal to $x \sin x$ . Let $\alpha$ be the total number of points in the interval $(-\frac{\pi}{2}, \frac{\pi}{2})$ at which $f$ is NOT continuous, and let $\beta$ be the total number of points in the interval $(-\frac{\pi}{2}, \frac{\pi}{2})$ at which $f$ is NOT differentiable. Then the value of $\alpha + \beta$ is ___________.

Correct Answer: 5

Detailed Solution

Let $g(x) = (|x| + |x-1|)\sin x$ and $h(x) = [x \sin x]$ .

For $g(x)$ :

At $x=0$ : $g(x)$ is continuous. LHD at $x=0$ is $1$ , RHD at $x=0$ is $1$ . So $g(x)$ is differentiable at $x=0$ .
At $x=1$ : $g(x)$ is continuous but not differentiable (LHD = $\cos 1$ , RHD = $2\sin 1 + \cos 1$ ).

For $h(x) = [x \sin x]$ :

On $(-\pi/2, \pi/2)$ , $x \sin x$ is an even function ranging from $0$ to $\pi/2 \approx 1.57$ .
$[x \sin x]$ is discontinuous when $x \sin x = 1$ . This occurs at $x = x_0$ and $x = -x_0$ , where $x_0 \in (1, \pi/2)$ .
At $x=0$ , $x \sin x = 0$ and $\lim_{x \to 0} [x \sin x] = 0$ , so it is continuous at $x=0$ .

Summary:

Points of non-continuity ( $\alpha$ ): $x_0, -x_0$ . So $\alpha = 2$ .
Points of non-differentiability ( $\beta$ ): $x_0, -x_0$ (due to discontinuity) and $x=1$ (due to $|x-1|$ term in $g(x)$ ). So $\beta = 3$ . Total $\alpha + \beta = 2 + 3 = 5$ .

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