Question
\[ \text{If } \frac{\pi}{2}<x<\pi, \]
\[ \sqrt{(1+\sin x)(1-\sin x)} = k\sec x \]
\[ \text{then } k= \]
Solution
Using identity
\[ (1+\sin x)(1-\sin x)=1-\sin^2x \]
\[ =\cos^2x \]
Therefore,
\[ \sqrt{(1+\sin x)(1-\sin x)} = \sqrt{\cos^2x} = |\cos x| \]
Since
\[ \frac{\pi}{2}<x<\pi \]
\(x\) lies in second quadrant, so
\[ \cos x<0 \]
Hence,
\[ |\cos x|=-\cos x \]
Now,
\[ -\cos x = -\frac1{\sec x} \]
Comparing with
\[ k\sec x \]
we get
\[ k=-1 \]
Answer
\[ \boxed{-1} \]