Q3) A) The following signal flow graph structure defines a linear time-invariant system. Write a simple formula for the difference equation defined by the signal flow graph. Since this is not a standard form, you must write the equations for signals at each node of the signal flow graph. x[n] UNIT DELAY 0.51 UNIT DELAY B) An LTI system has the following system function H(z) 1+z2 1+0.3z 1 y[n] Use z-transforms to determine the impulse response h[n] of the system, i.e., the output of the system when the input is x[n] = 8[n].

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Q3)
A) The following signal flow graph structure defines a linear time-invariant
system.
Write a simple formula for the difference equation defined by the signal flow
graph. Since this is not a standard form, you must write the equations for signals
at each node of the signal flow graph.
x[n]
UNIT
DELAY
0.51
UNIT
DELAY
B) An LTI system has the following system function
H(z)
1+z²
1+0.3z 1
y[n]
Use z-transforms to determine the impulse response h[n] of the system, i.e., the
output of the system when the input is x[n] = 8[n].
Transcribed Image Text:Q3) A) The following signal flow graph structure defines a linear time-invariant system. Write a simple formula for the difference equation defined by the signal flow graph. Since this is not a standard form, you must write the equations for signals at each node of the signal flow graph. x[n] UNIT DELAY 0.51 UNIT DELAY B) An LTI system has the following system function H(z) 1+z² 1+0.3z 1 y[n] Use z-transforms to determine the impulse response h[n] of the system, i.e., the output of the system when the input is x[n] = 8[n].
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