Discrete Time Convolution

When there is a shift by n-k then you should remember that the shift can either go to negative or positive values, when n is negative it will shift in left direction, and if it is positive then it will shift to the right. This is a very important point to remember.

Been watching you for years now...helped me with digital logic and now.............STUPID SIGNALS.

Thank you sir very nice gide & very nice best explain discrete time convolution teaching video.👍

It was the neatest explanation on the subject I could find! Thanks for the video

Teacher I don't know how can I think u ...I really love u ..especially when u used the table Sol

Last point was bit confusing but thanks a lot. I got an idea of this now!

You have done FT of basic signals but
How to draw fourier transform mag and phase plot
please make videos on this topic

around 9:43 where you said that "for other values of k > 2 u[n-k] is still 0" that will be one isnt it?
you're talking about n>= 2 right?

As far as i know, convolution expect the signal to move from left to right, that is u[-k-n], not from right to left, that is u[-k+n]

This was the best video I have seen about a subject since I got into college.

That last bit, he multiplies by u[n] because it has to remain positive for everything. Pretty much is the n>= 0 it is multiplied by "1" or u[n].

we need 3x speed for quick revision 🤓🤗👌🙌

You saved my life.

Why this topic is so tough i have a exam tommorow and i know nothing

thanks for your detailed explanation which opened up my mind on DT convolution sum😃

Thank you❤

Please do another video explaining that ending multiplication. It is confusing

the last bit was very confusing but thanks

Thanks a lot for this video, i just got aproved in a exame !

but u[n-k] is 0 at 0 not 1 at 0. we shifted u[-k] by positive n and therefore it is no longer 1 at 0 but 0 at 0.

By precedence rule, shouldn't we do shifting first followed by reversal ?

You try to give the video more brightness it will be great if you do

how u(n-k) is plotted without considering n is +ve or -ve

around 10:59 when you are saying tha u[k] = 1 ok i get that but how's u[n-k] also = 1?
u[n-k] is supposed to be 0

Very well explained. Thank you so much

fantastic

Waiting for this topic thanks

Can we do this convolution example with tabular method ?.

how you shift n = +2 , n= +3 to the right?
Are not the supposed to be going left

Not an LTI system????
In the end the system we get is:
u[n] --> LTI --> (n+1).u[n]
The output is multiplied with the coefficient (n+1) which is a function of time n. The systems is linear but it's time variant. So it doesn't become an LTI system. What am I missing here???

u[-k+n] is time shift towards the right not the left. u[-(k-n)]=u[-k+n]. Thanks

I think you are doing time shifting wrong, the sequences will shift to right not left. Also, the same thing you have done on the continuous time convolution integral video. Thanks

Sir, I have the plot of u[-k] like you but when I plot u[n-k] I take 2 cases. First one n>0, so the plot of u[-k] is shifted left and second one n0 and y[n] = n+1 for n

Thanks!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!

This is the only video that I haven't understand much

at 11:20 you say u[k] = 1 when k is 3 but that isn't true is it?

Sir...can u please provide some more examples pdf or videos on this concept?

I understand the math works out that P = 1, but that makes zero intuitive sense. The sgn function spends half it's time at -1 and the other half of it's time at 1. The average of those is zero. How do we explain the contradiction that P = 1 ??? No one tell me its mod(sgn[n]), I know you do the mod part for the formula, but just looking at sgn[n], it looks like those values average out to be zero.

Please could you help me with that
(For the following X1(n) find its convolution when its lassing through linear filter with seqence [1,1,1,0,1,0])
As you can see in this problem he gave me only one sequence so how can i convolute it to get the output

The last part of the video is very poorly explained.

shouldn't the signal be first shifted by 'n' and then time reversed

Tomorrow is your paper right?

2x speed is better

I guess its wrong. The output must be y(n) = n*u(n)