\displaystyle{x}=-{4} \displaystyle{y}=-{1} Explanation: \displaystyle-{3}{x}-{8}{y}={20} ----------- (1) \displaystyle-{5}{x}+{y}={19} -------------(2) \displaystyle\times 8 ...

What you do is correct. I just suggest you to use other letters for the coordinates of the plane that you are looking for. For example you can write your equation as ax+by+cz=0. You found two ...

The normal equation (A^TA)\vec{\beta} = A^T\vec{y} actually gives you two equations: \displaystyle\underbrace{\begin{pmatrix}\sum_{i=1}^{n}x_i^2 & \sum_{i=1}^{n}x_i \\ \sum_{i=1}^{n}x_i & n\end{pmatrix}}_{A^TA} \underbrace{\begin{pmatrix} \beta_1 \\ \beta_0 \end{pmatrix}}_{\vec{\beta}} = \underbrace{\begin{pmatrix} \sum_{i=1}^{n}x_iy_i \\ \sum_{i=1}^{n}y_i \end{pmatrix}}_{A^T\vec{y}} ...

For {\mathbb F}_3 your modulo arithmetic is not quite right: since -2 \equiv 1 \mod 3 you should have y + 2 z = 1, not -y + 2 z = 1. Now, just as you are used to over \mathbb R, you can ...

I believe you are mistaken. The adjoint of the matrix A is the transpose of the matrix A. One major confusion here is that there are two definitions for the word adjoint. The adjoint of a matrix is ...

You can apply the Lagrange multiplier method . \mathcal L=c_1x+c_2y+\lambda[c-xy] \frac{\partial \mathcal L}{\partial x}=c_1-\lambda y=0\Rightarrow c_1=\lambda y\quad (1) \frac{\partial \mathcal L}{\partial y}=c_2-\lambda x=0\Rightarrow c_2=\lambda x \quad (2) ...