Ask a New Question

(Y'-x^2y^2)/sec x=0

1 answer

since sec x is never zero, we can get rid of it. Now we have

y' - x^2y^2 = 0
dy/y^2 = x^2 dx
-1/y = 1/3 x^3 + c/3
y = -3/(x^3+c)

Ask a New Question or answer this question.