Chapter 6 - Inverse Circular Functions and Trigonometric Equations - Section 6.4 Equations Involving Inverse Trigonometric Functions - 6.4 Exercises - Page 281: 49b

$\frac{tan~\alpha}{tan~\beta} = \frac{x}{x+y}$

From the diagram: $tan~\alpha = \frac{x}{z}$ $z = \frac{x}{tan~\alpha}$ $tan~\beta = \frac{x+y}{z}$ $z = \frac{x+y}{tan~\beta}$ We can equate the two expressions for $z$: $\frac{x}{tan~\alpha} = \frac{x+y}{tan~\beta}$ $\frac{tan~\alpha}{tan~\beta} = \frac{x}{x+y}$