2.29. For the continuous-time signals x(t) and v(t) shown in Figure P2.29, compute the convo- lution x(t) v(t) for all t≥0, and plot your resulting signal. x(t) 1 t 0 1 2 3 (a) x(t) 4 1 e-, t≥0 (c) v(t) 2. 01 v(t) 4 2 2e-21 1 t 1 01 2 2.30. Compute the convolution x(t) * v(t) for -x
2.29. For the continuous-time signals x(t) and v(t) shown in Figure P2.29, compute the convo- lution x(t) v(t) for all t≥0, and plot your resulting signal. x(t) 1 t 0 1 2 3 (a) x(t) 4 1 e-, t≥0 (c) v(t) 2. 01 v(t) 4 2 2e-21 1 t 1 01 2 2.30. Compute the convolution x(t) * v(t) for -x
Introductory Circuit Analysis (13th Edition)
13th Edition
ISBN:9780133923605
Author:Robert L. Boylestad
Publisher:Robert L. Boylestad
Chapter1: Introduction
Section: Chapter Questions
Problem 1P: Visit your local library (at school or home) and describe the extent to which it provides literature...
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please help me with 2.30

Transcribed Image Text:2.29. For the continuous-time signals x(t) and v(t) shown in Figure P2.29, compute the convo-
lution x(t) v(t) for all t≥0, and plot your resulting signal.
x(t)
1
t
0 1
2 3
(a)
x(t) 4
1
e-, t≥0
(c)
v(t)
2.
01
v(t) 4
2
2e-21
1
t
1
01 2
2.30. Compute the convolution x(t) * v(t) for -x<t< ∞, where x(t) = u(t) + u(t − 1) −
-
2u(t 2) and v(t) = 2u(t + 1) − u(t) − u(t − 1).
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