MHT CET · Maths · Trigonometric Equations
The general solutions of \(\sin ^{2} x \cdot \sec x=\tan x-\sin x+1\) is
- A \(x=n \pi+(-1)^{n} \frac{\pi}{4}\) or \(x=m \pi+\frac{3 \pi}{4} ; m, n \in z\)
- B \(x=n \pi+(-1)^{n} \frac{\pi}{2} \quad\) or \(\quad x=m \pi+\frac{3 \pi}{4} ; \quad m, n \in z\)
- C \(x=n \pi+(-1)^{n} \frac{\pi}{2} \quad\) or \(\quad x=m \pi+\frac{5 \pi}{4} ; m, n \in z\)
- D \(x=n \pi+(-1)^{n} \frac{\pi}{4}\) or \(x=m \pi+\frac{5 \pi}{4} ; m, n \in z\)
Answer & Solution
Correct Answer
(B) \(x=n \pi+(-1)^{n} \frac{\pi}{2} \quad\) or \(\quad x=m \pi+\frac{3 \pi}{4} ; \quad m, n \in z\)
Step-by-step Solution
Detailed explanation
\(\sin ^{2} x \sec x=\tan x-\sin x+1\)
\(\therefore \frac{\sin x \cdot \sin x}{\cos x}=\frac{\sin x}{\cos x}-\sin x+1\)
\(\therefore \sin x \cdot \sin x=\sin x-\sin x \cos x+\cos x\)
\(\therefore \sin x(\sin x+\cos x)=\sin x+\cos x\)
\(\therefore \sin x(\sin x+\cos x)-(\sin x+\cos x)=0\)
\(\therefore(\sin x+\cos x)(\sin x-1)=0\)
\(\therefore \sin x+\cos x=0\) or \(\sin x=1\)
\(\therefore \tan x=-1\)
\(\therefore x=\sin \pi+\frac{3 \pi}{4}\) or \(x=n \pi+(-1)^{n} \frac{\pi}{2}\ldots \mathrm{m}, \mathrm{n} \in \mathrm{Z}\)
\(\therefore \frac{\sin x \cdot \sin x}{\cos x}=\frac{\sin x}{\cos x}-\sin x+1\)
\(\therefore \sin x \cdot \sin x=\sin x-\sin x \cos x+\cos x\)
\(\therefore \sin x(\sin x+\cos x)=\sin x+\cos x\)
\(\therefore \sin x(\sin x+\cos x)-(\sin x+\cos x)=0\)
\(\therefore(\sin x+\cos x)(\sin x-1)=0\)
\(\therefore \sin x+\cos x=0\) or \(\sin x=1\)
\(\therefore \tan x=-1\)
\(\therefore x=\sin \pi+\frac{3 \pi}{4}\) or \(x=n \pi+(-1)^{n} \frac{\pi}{2}\ldots \mathrm{m}, \mathrm{n} \in \mathrm{Z}\)
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