You are using the PDF P(X = x|j, \theta) = {x + j - 1 \choose x}\theta^j(1-\theta)^{x}, for x = 0, 1, \dots, where x is the number of failures observed before seeing the jth success and \theta ...

I think it must be 1+m-p=1 and mp=h^4 solving this we get m=\pm h^2 and p=\pm h^2

Let \epsilon>0. Since \lim_{x\to a}f(x)=l we can find \delta>0 such that 0<|x-a|<\delta\implies |f(x)-l|<\epsilon. Since \lim_{n\to\infty}x_n=a then corresponding to \delta>0, we ...

Note ...

Quote from Example section of the Wikipedia entry on Bézout's Theorem (see here ): Two circles never intersect in more than two points in the plane, while Bézout's theorem predicts four. The ...

The area that we want is: Define u = x y and v = x^2-y^2. Then, {du} = y {dx} + x {dy} and {dv} = 2x {dx} - 2y {dy}. Solve this system of equations for {dx} and {dy} to get: {dx} = \frac{y}{x^2+y^2} {du} + \frac{x}{2x^2+2y^2} {dv} ...