[latex]\sin \alpha -\sin \beta =2\sin \left(\frac{\alpha -\beta }{2}\right)\cos \left(\frac{\alpha +\beta }{2}\right)[/latex]

Substitute the values into the formula, and simplify.

[latex]\begin{align}\sin \left(4\theta \right)-\sin \left(2\theta \right)&=2\sin \left(\frac{4\theta -2\theta }{2}\right)\cos \left(\frac{4\theta +2\theta }{2}\right) \\ &=2\sin \left(\frac{2\theta }{2}\right)\cos \left(\frac{6\theta }{2}\right) \\ &=2\sin \theta \cos \left(3\theta \right) \end{align}[/latex]

[latex]\cos \alpha -\cos \beta =-2\sin \left(\frac{\alpha +\beta }{2}\right)\sin \left(\frac{\alpha -\beta }{2}\right)[/latex]

Then we substitute the given angles and simplify.

[latex]\begin{align}\cos \left({15}^{\circ }\right)-\cos \left({75}^{\circ }\right)&=-2\sin \left(\frac{{15}^{\circ }+{75}^{\circ }}{2}\right)\sin \left(\frac{{15}^{\circ }-{75}^{\circ }}{2}\right) \\ &=-2\sin \left({45}^{\circ }\right)\sin \left(-{30}^{\circ }\right) \\ &=-2\left(\frac{\sqrt{2}}{2}\right)\left(-\frac{1}{2}\right) \\ &=\frac{\sqrt{2}}{2}\end{align}[/latex]

We will start with the left side, the more complicated side of the equation, and rewrite the expression until it matches the right side.

[latex]\begin{align}\frac{\cos \left(4t\right)-\cos \left(2t\right)}{\sin \left(4t\right)+\sin \left(2t\right)}&=\frac{-2\sin \left(\frac{4t+2t}{2}\right)\sin \left(\frac{4t - 2t}{2}\right)}{2\sin \left(\frac{4t+2t}{2}\right)\cos \left(\frac{4t - 2t}{2}\right)} \\ &=\frac{-2\sin \left(3t\right)\sin t}{2\sin \left(3t\right)\cos t} \\ &=\frac{-2\sin \left(3t\right)\sin t}{2\sin \left(3t\right)\cos t} \\ &=-\frac{\sin t}{\cos t} \\ &=-\tan t \end{align}[/latex]

Analysis of the Solution

Recall that verifying trigonometric identities has its own set of rules. The procedures for solving an equation are not the same as the procedures for verifying an identity. When we prove an identity, we pick one side to work on and make substitutions until that side is transformed into the other side.