Not exactly, since $x^Tx$ results in a scalar, not a vector. You could do
$\nabla x^Tx = \nabla \sum_k x_i^2 = [2x_1, 2x_2, ...]^T$ and so on.
Not exactly, since $x^Tx$ results in a scalar, not a vector. You could do
$$\nabla x^Tx = \nabla \sum_k x_i^2 = [2x_1, 2x_2, ...]^T$$ and so on.
Including: Uncaught Error: Token typemath_inline_doublenot supported by Markdown parser
Including:
Uncaught Error: Token typemath_inline_doublenot supported by Markdown parser