Answer to Question #212421 in Trigonometry for Teba

Question #212421

Determine the general solution of the equation: 4sin² x - 3 = 0

Expert's answer

"4\\sin^2x-3=0\\\\\n4\\sin^2x=3\\\\\n\\sin^2x=\\frac{3}{4}\\\\\n\\sin{x}=\\pm{\\sqrt{\\frac{3}{4}}}\\\\\n\\sin{x}=\\pm\\frac{\\sqrt{3}}{2}\\\\\nx=\\sin^{-1}{(\\frac{\\sqrt{3}}{2})}\\\\\nx=60\\degree, 120\\degree\\\\\nx=\\sin^{-1}{(-\\frac{\\sqrt{3}}{2})}\\\\\nx=300\\degree, 240\\degree\\\\"

General solution is

"x=360\\degree(n)+60\\degree, 360\\degree(n) +120\\degree, 360\\degree(n)+240\\degree, 360\\degree(n)+300\\degree"