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प्रश्न
If `tan θ = p/q`, then prove that `(p sin θ - q cos θ)/(p sin θ + q cos θ) = ((p^2 - q^2)/(p^2 + q^2))`.
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उत्तर
Given: `tan θ = p/q` with p and q not both zero.
To Prove: `(p sin θ - q cos θ)/(p sin θ + q cos θ) = (p^2 - q^2)/(p^2 + q^2)`
Proof [Step-wise]:
1. From `tan θ = p/q`, choose a right triangle or scale with opposite = p, adjacent = q.
So, the hypotenuse `r = sqrt(p^2 + q^2)`.
This is valid since p and q are not both zero.
2. Then `sin θ = p/r` and `cos θ = q/r`.
3. Compute the numerator:
p sin θ – q cos θ
= `p xx (p/r) - q xx (q/r)`
= `(p^2 - q^2)/r`
4. Compute the denominator:
p sin θ + q cos θ
= `p xx (p/r) + q xx (q/r)`
= `(p^2 + q^2)/r`
5. Form the ratio:
`(p sin θ - q cos θ)/(p sin θ + q cos θ)`
= `[(p^2 - q^2)/r]/[(p^2 + q^2)/r]`
= `(p^2 - q^2)/(p^2 + q^2)`
Hence, given `tan θ = p/q, (p sin θ - q cos θ)/(p sin θ + q cos θ) = ((p^2 - q^2)/(p^2 + q^2))`.
