I=\int_{-a}^a f(x)dx=\int_{-a}^0f(x)dx+\int_0^af(x)dx Set x=-z in the first integral to find I=2\int_0^af(x)dx if f(x)=f(-x) Here, f(x)=(2x^2-x)^4\implies f(-x)=(2x^2+x)^4 So, f(x) is ...

It is not too difficult to derive the coefficients from scratch. The general idea is outlined here . Up to order 5, the result is: n=3: \begin{array}{cc} x_i & w_i\\\hline 0 & \frac{8}{75}\\ \pm \sqrt{\frac{5}7} & \frac{7}{25} \end{array} ...

Part 1 has been answered in the comments. The classification I got for part 2 is: \mu satisfies the given condition if and only if \mu is "even", that is, for every Borel set E \subset [-1;1] ...

Compute derivative using Leibnitz formula: f'(x) = x^2 - 4x - 5 = (x-5)(x+1) Now you can find where this is positive or negative. From here you calculate f'' for concavity, and also integrate f'(x) ...

The optimization variable is x. We have \begin{align} F^*(\zeta)=&\sup_x\left(\underbrace{\int_0^1\frac{1}{4}\zeta^2\,dt}_{\text{does not depend on ...

To find the line tangent to f(x) at x=1 we must find f(1) and f'(1). Starting with f(1): f(1)=\int^{g(1)}_{0}\frac{1}{1+\sin t+e^t}dt Proceeding to compute g(1), we have g(1)=\int^{1}_{-1}h(t)dt ...