That's why, tell your teacher to say loudly.. India is Great 🇮🇳

@@bhargavpratimsharma2024 what did you want to say?😂

@@PriyanshuSharma-ey3bc 😉😉

@@PriyanshuSharma-ey3bc exactly lol

The same is with me... thanks NESO

Make India Great Again🇮🇳

What happened to you cse bro?

Thanks a lot bro! That was a pretty good explanation. You helped me remove whatever doubts I was having :)

very clear explanation thanks bro

I also feel the same thing sometimes....😂😢😅

Drop out ho gaye kya

Setting the clear to 0 and the preset to 1 (or vice versa) changes the circuit so that it only has one "stable" state. It can momentarily give Q = Qbar = 1 as output, but only when clk = 1 and S = 1 (or R = 1 for preset = 0, clear = 1), which it usually will not. (I put "stable" in quotes because technically having clk set to 1 is possible, but it's just not how you're supposed to use the circuit.) [Disclaimer: I'm just an undergrad struggle through this shit with the rest of y'all. I could very well be wrong.]

I also had same doubt it will depends on s if clk is present ..

I am having the same doubt

coz NESO is NESO..........

actually i have the same confusion right now any explication for me pls?

dude just focus on the nand sr latch on the very right... if one of the NAND's inputs is 0, the output will definitely be 1. So.. Where's the "clock" in this equation.. Nowhere... Hope you got it.

@@batikanboraormanci7954 but what if in top right nand gate, preset is 1 CLR 0 ,so two inputs of the nand gate are 1. The third input HAS to be 1 so clock input HAS to be 0. Therefore clk 0 is necessary I guess

@@momentodebruh7300 if preset is 1, it is the same as no preset existing at all. It wont change the way the system works a bit. If clear is 0, then no matter the clock or anything, the nand gate on the right bottom corner will be 1. So if the preset is one, then its already not changing anything, the ff will function normally on that side. The clock's impact will be same as expected. if clear is 0, as QNcomplement becomes 1, Rule 1 : you dont turn both preset and clear to 0 at the same time, that just breaks the system, so preset stays 1 2: if set and clock are also on, QN will be 1, meaning that the ff is misfunctioning, because you tried to "set" and "clear" at the same time. With or without the clock, the S will be the one breaking the system So the statement "clock has to be 0" is wrong Right is " s and clear dont work together, logically or practically"

@@batikanboraormanci7954 cool thanks

That is correct, Clock has to be zero. There is a misconception in the above video and it precisely has to do with the clock signal. First i think we can all agree that: If SET is 1 and CLK is also 1 then the output of the TOP LEFT NAND gate is 0, which is also one of the 3 inputs of the TOP RIGHT NAND gate ------> If one input of a NAND gate is zero then its output Q, will always be 1, no matter what the other inputs are doing. So for the SR FF shown in the video above, during the time SET is 1 and CLK is also 1, the SR FF cannot be cleared ! Note: we are ofcourse assuming CLK is a proper 50% dutty cycle ON, 50% dutty cylce OFF traditional clock, just like all clocks. So for the SR FF in the video, as it is drawn, CLR and PRST are not Asynchronous, because of the 50% ON clock duration. For CLR and PRST to be trully Asynchronous, the SR FF MUST be EDGE TRIGGERED ! (In this case Positive edge triggered) That way when the "clk" input to the FF is pulsed (from 0 to 1), it will immediately return back to 0 instead of staying at 1 for 50% of the clock period. But the edge triggering circuit is not mentioned in the video... This is the critical detail the lecturer forgets to mention : /

Vartul Sharma i have the same question with you. Plz someone answer this question. Why q and qbar should be always complementary?

well preset and clear are used to set state when circuit is just switched on so no input is considered from the prevois part and so only 2 ones are required to make q bar zero so in simple terms clock is 0 when preset and clear are used

@@sarthaksuper284 Nice Sarthak you help in my doubt clearification

i have the some question

By using preset and clear we can make flip-flops set to 0 or 1

arindam pal clock is 0 when preset and clear are used that is circuit is in inhibited state.... because it is used to set value when power is just turned on

Active low means that when the input is 0 the circuit works. Active high, which is the generally used condition, is when the circuit works on the input 1

***** If we are not taking the complement of preset, how do we get (preset = 0 => Qn = 1)? We need to look at the the output of (S'+clk') to determine Qn, right? Also, I'm a bit confused about the active low input, if you have a video explains this concept please provide me with its link in the comments box. Thank you!

i gone through u r videos amazing,but preset=0 and clear=0 in nor gate entire thing changes once explain it

It's total confusing can anyone explain it briefly.... pls

THANK YOU SO MUCH

since both preset and clear are active low inputs, if they are high then they won't get activated and hence the flip-flop will work in a synchronous fashion. Synchronous means that input data will be tranferred to the flip-flop output only on the trigerring edges of the clock pulses. when PR=0, preset pin will get activated and output will become HIGH and when CLR=0, output will be zero and hence flip-flop will work asynchrously. Asynchronous means that any of the asynchronous inputs(PR,CLR) can affect the state of the flip=flop independent of the clock. Hope your doubt is cleared.

I have also got same doubt

Bubbling usually indicates the use of a not gate or inverter

It has the same effect.

It just do the same as in SR flip flop. when preset=0,Q=1&Q'=0 and when clear=0,Q=0&Q'=1 As we infer from the diagram it does not depend on the S and R value as well as J and K value

Yes I am caught up in the same thing did you find an answer to this question? Please will be very thankful

because Q'n is complement of Qn . Which will set it to 0 as it's complement is 1.

ANUSHKA SINGH 15BEC0306 why q & q bar should be complememtary?

in that case we force as output of nand gates both 1, which is an invalid state

AND AND NOT

"Even at playback speed of 2x, i find it slow" - Ye thoda zyada nhi hogya ?

@ ekdum bhi nhi bro mai khud 2X mai dekhta hu fir bhi slow lag rha hai kya kru?

The bubble isn't a NOT gate, it is just there to represent the kind of input that makes it active.

@@akarshchaturvedi2803 ya actually real confusion was that there wasn't a bar over PRESET and CLR

Thanx