Find the Maximum Value of 12 sin x − 9 sin²x

Solution

Let \[ \sin x=t \] where \[ -1\le t\le1 \]

Then, \[ 12\sin x-9\sin^2x = 12t-9t^2 \]

\[ = -9\left(t^2-\frac43 t\right) \]

\[ = -9\left[\left(t-\frac23\right)^2-\frac49\right] \]

\[ = -9\left(t-\frac23\right)^2+4 \]

Since \[ \left(t-\frac23\right)^2\ge0 \] maximum value occurs when \[ \left(t-\frac23\right)^2=0 \]

\[ \boxed{4} \]