(6.(A))
(6.(B))
 
Line 10: Line 10:
  
 
== 6.(B) ==
 
== 6.(B) ==
 +
Because of assuming this system is linear, the input should be x[n].

Latest revision as of 17:50, 10 September 2008

6.(A)

This is not time-invariant.

1. input($ /delta[n-k] $) -> system -> time delay (1) -> output : $ (k+1)^2\delta[n-(k+2)] $
2. input($ /delta[n-k] $) -> time delay (1) -> system -> output : $ (k+2)^2\delta[n-(k+2)] $

The output signals are different each other. So this is not time-invariant.


6.(B)

Because of assuming this system is linear, the input should be x[n].

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