Prove that \[ \cot^2x-\tan^2x=4\cot2x\cosec2x \]
Proof:
Start with the left-hand side:
\[
LHS=\cot^2x-\tan^2x
\]
Convert into sine and cosine form:
\[
=\frac{\cos^2x}{\sin^2x}-\frac{\sin^2x}{\cos^2x}
\]
Taking LCM:
\[
=\frac{\cos^4x-\sin^4x}{\sin^2x\cos^2x}
\]
Using
\[
a^4-b^4=(a^2-b^2)(a^2+b^2)
\]
we get
\[
=\frac{(\cos^2x-\sin^2x)(\cos^2x+\sin^2x)}{\sin^2x\cos^2x}
\]
Using
\[
\cos^2x+\sin^2x=1
\]
and
\[
\cos2x=\cos^2x-\sin^2x
\]
therefore,
\[
LHS=\frac{\cos2x}{\sin^2x\cos^2x}
\]
Using
\[
\sin2x=2\sin x\cos x
\]
Squaring both sides:
\[
\sin^22x=4\sin^2x\cos^2x
\]
Thus,
\[
\sin^2x\cos^2x=\frac{\sin^22x}{4}
\]
Substituting:
\[
LHS
=
\frac{\cos2x}{\frac{\sin^22x}{4}}
\]
\[
=
\frac{4\cos2x}{\sin^22x}
\]
\[
=
4\left(\frac{\cos2x}{\sin2x}\right)\left(\frac{1}{\sin2x}\right)
\]
\[
=
4\cot2x\cosec2x
\]
Hence proved,
\[
\boxed{
\cot^2x-\tan^2x=4\cot2x\cosec2x
}
\]