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Frequently Asked Questions (FAQ)
What is the solution for f^'(x)=sec(2x)tan(2x)-4/(x^2) ?
The solution for f^'(x)=sec(2x)tan(2x)-4/(x^2) is f(x)= 1/2 cos(2x)+1/2 sin(2x)tan(2x)+4/x+c_{1}