g(x)={1+cos(pi/2-x/1)

Question

g(x)={1+cos(pi/2-x/1) 
0

for-2 <or= x <or=2 
for x<2 or x>2

is g(x) continuous at x=2 is it differentiable at x=2? ex[lain in detail I'm very confused as to how to solve this problem

Steve · Answer

As written, it appears that g(x) = 1+cos(pi/2 - x) = 1+sin(x)... At x=2, that would make g(2) = 1+sin(2) since g(2) is not 0, g is not continuous at x=2, since g(x)=0 for x>2.