Answer to Question #321184 in Algebra for Mhean

Consider two possible formulations of the problem:

1. "\\sqrt{x^2}+16=x+4"

In order to solve the equation consider two cases:

a). "x>0". We receive: "16=4". Thus, the problem has no solutions.

b). "x<0". We get: "-x+16=x+4". The latter equation is solved via: "x=6". But it does not belong to the domain "x<0."

2. "\\sqrt{x^2+16}=x+4". We point out that the expression under the square root is always positive. From equation we receive: "x^2+16=x^2+8x+16". The solution is "x=0".