how can I plot y = (cos(t-2)/4)(rect(t+1)/6 )?

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SaiRevan Potharaju
SaiRevan Potharaju il 3 Ago 2022
Modificato: Jan il 3 Ago 2022
y = [(1-cos(0.25*(t-2).^2))*rect(t+1,6)]
is it correct way to write tht code ?
  1 Commento
Jan
Jan il 3 Ago 2022
Modificato: Jan il 3 Ago 2022
The brackets [ and ] are the concatenation operator in Matlab. What do you concatenate?
The shown code does not allow to plot anything, so how could it be correct?
What is "rect"? Why do you convert "rect(t+1)/6" to "rect(t+1,6)" ?
"cos(t-2)/4" differs from "1-cos(0.25*(t-2).^2)" also. Very strange.

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Risposte (2)

Adam Danz
Adam Danz il 3 Ago 2022
is it correct way to write tht code ?
The line of code looks functional without knowing any other details including what rect is.
how can I plot y = (cos(t-2)/4)(rect(t+1)/6 )?
Define t, compute y, and plot(t,y)
Jan
Jan il 3 Ago 2022
y = @(t) cos(t-2) / 4 .* rect(t + 1) / 6;
fplot(y)

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