QUESTION IMAGE
Question
solve: $e^{2x} - 7e^{x} = 18$
a. $x = \ln 18$
b. $x = 9$ and $x = -2$
c. $x = \ln 9$
d. $x = \ln 2$
Step1: Substitute $u=e^x$
$u^2 - 7u = 18$
Step2: Rearrange to standard quadratic
$u^2 - 7u - 18 = 0$
Step3: Factor the quadratic
$(u - 9)(u + 2) = 0$
Step4: Solve for $u$
$u = 9$ or $u = -2$
Step5: Substitute back $u=e^x$, discard invalid solution
$e^x = 9$ (since $e^x>0$, $u=-2$ is invalid)
Step6: Solve for $x$
$x = \ln 9$
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C. $x = \ln 9$