To solve the equation 4sin²(x) – 4sin(x) + 1 = 0 in the interval [0, 2π], we will first treat it as a quadratic equation in terms of sin(x).
Let us substitute y = sin(x). The equation then becomes:
4y² – 4y + 1 = 0
This can be solved using the quadratic formula:
y = \frac{-b \pm \sqrt{b² – 4ac}}{2a}
Here, a = 4, b = -4, and c = 1. Plugging in these values:
y = \frac{-(-4) \pm \sqrt{(-4)² – 4 \cdot 4 \cdot 1}}{2 \cdot 4}
Calculating the discriminant:
(-4)² – 4 \cdot 4 \cdot 1 = 16 – 16 = 0
Since the discriminant is 0, we have a single (repeated) root:
y = \frac{4}{8} = \frac{1}{2}
Now, substituting back for sin(x), we get:
sin(x) = \frac{1}{2}
To find all solutions for sin(x) = \frac{1}{2}, we look for angles in the interval [0, 2π]. The angle for which sine takes the value \frac{1}{2} is:
- x = \frac{π}{6} (in the first quadrant)
- x = \frac{5π}{6} (in the second quadrant)
Thus, the solutions to the equation 4sin²(x) – 4sin(x) + 1 = 0 in the interval [0, 2π] are:
- x = \frac{π}{6}
- x = \frac{5π}{6}