Chapter 2 - Functions and Their Graphs - 2.1 Functions - 2.1 Assess Your Understanding - Page 57: 38

No.

Solve for $y$: $x+y^2=1\\y^2=1-x\\y=\pm \sqrt {1-x}.$ This relation is s not a function, because a distinct $x$-value corresponds to two different $y$-values. For example, $(-3, 2)$ and $(-3, –2).$