Chapter 14 - Section 14.2 - Limits and Continuity - 14.2 Exercise - Page 961: 45

$D=$ {$(x,y) | x \geq 0 ; x^2+y^2 \leq 1$}

As we are given that $G(x,y)=\sqrt x+\sqrt {1-x^2-y^2}$ The function $G(x,y)=\sqrt x+\sqrt {1-x^2-y^2}$ represents a squared root function which is defined for positive numbers greater than zero. Thus, $ x \geq 0 ; 1-x^2-y^2 \geq 0$ or, $x^2+y^2 \leq 1$