Answer:
See explanation
Step-by-step explanation:
Assuming you want to find the 3rd term of the geometric progression defined explicitly by [tex]d(n)=165(2^{n-1})[/tex], then we have to substitute n=3 to obtain:
[tex]d(3)=165(2^{3-1})[/tex]
This will give us:
[tex]d(3)=165(2^2)[/tex]
We evaluate to obtain:
[tex]d(3)=165\times4=660[/tex]
