clear hua ?

Yes

@@gunjanchoudhary4632 konsa college ma ha?

​@@gunjanchoudhary4632wow thodisi light dedo kitna padha, kitni der padha, kaha se padha, kaise padha, aur aap abhi kaha ho I mean kis field mai aur kya kr rhe ho

@@somyachouhan7108 gate smashers and knowledge gate se padha mene, clear kr liya, paper 1 ke liye alg alg site h but usme b ache marks mil gaye the, currently government job h Rajasthan state me

how does your semester go

Bhai yaha pe state change nhi hogi kya kyuki hm 0 se 1 p gye?

yes at last epsilon,z0 / z0 output is z0 itself sir wrote epsilon i.e epsilon , z0 /epsilon

bhai west bengal se hai kya ?

@gamersrinu2166 Haan kaise pata chala?

​@@avrajitkundu7179 Tera title dekh k pata chala...

@@avrajitkundu7179 naam aur title dekh ke

kzbin.info/aero/PLyeuwglfy-Cuz4I6-_8PA6HPQ0weFmFgC

Clear your doubts here

yeah in total 5 states (2 final states)

@@csesubjectwise6574 thank u sir u r vdo cleared my doubt

kzbin.info/www/bejne/Y5LJe3R5dq1seNU this vdo will clear the doubt of y to change state and when

because each 1 for each 0

Same thing i cant understand

Me also

my doubt also

Same doubt

Exactly

yeah but using his logic we can complete the solution...final solution will have 5 states( 2 final states).

Actually in such a case, you can change your stack alphabet. Like for 1001. Push 1. Read 0 and Pop. Push 0. Read 1 and Pop

​@@atulkrishnan4673 2 States me ho sakta hai, `including` 1 final state. Bas saare combinations ko q0 pe point kardenge, like when a is top, input a or b, when b on top, input a,b; When Z0 on top, a and b as input so total 6 loop to self i think, then the final epsilon, Z0 / Z0 to final state

@@ashwiniyer454 Exactly. He has written the condition 1,0/e two times. Instead of that, we can add one more transition 0,1/e on Q0 ... I think this should work properly...

Thanks 🙏

i think these three transition states are missing (1,1/11) (1,z/1z) (0,1/E)..........

kzbin.info/aero/PLyeuwglfy-Cuz4I6-_8PA6HPQ0weFmFgC

Get your syllabus here

Reason pata chala ?

@@kg3217 nhi yaar

@@tusharsahu8587 that was by mistake kyuki wahaa unhone dono input keliye pop kar rahe hai toh nahi likha hai sochke likh diya hoga

chal kya rha h pda me ..................................itni confusing to inception bhi nhi thi........................

And what if the string starts with 1

No, you dont have to write 1,0|ε two times as it is already written in loop but instead you should add one case 0,1|ε i.e if 0 arrives and there is 1 then we should pop.

@@sohamkumbhar21 first one is input and second one is top of the stack, so from your case 0 is input (which can be there) but I don't think 1 should be there, because we're inserting only 0 here so how top of the stack is 1?

@@rahuldevanshu for this case add 1,0 in input table after 010011 to get the desirable answer

No but you have to pop out in the stack

@@sohail0474 do you also have exams tomorrow

In that video we had to compare one 0 with two 1s but in this grammar we were given equal counts for 0s and 1s

You are right 👍

No , at last step when there is no input in the input tape i.e epsilon and stack contains Zo then you have to pop out the Zo to make the stack empty Hence it will be €,Zo/€

If you will perform €,Zo/Zo It means that you are simply ignoring the Zo and it is still left inside the stack

Both are same you can use both ✌️

@@Patitapaban_sahoo Ok , Thanks 👍🏻

thanks for asking this. I was also confused here.❣

Yes! Thank you

Very underrated comment, everybody's doubt should be cleared after reading this

Underrated

haan bro

Sure.. I will complete each and every lecture of toc soon

@@GateSmashers thank you sir

True my friend. And also if... "1" comes in initial state "q0" and there is no "0" present ni stack then also it will fail... Basically...... Whenever we have 1 and there is no 0 present in stack then it will fail. Although we have equal no of zeros in our string but more number of 1 came first and PDA fails.

@@gauravbhosle281 then 1 goes into the stack and the next zero will pop it out maybe?

@@gauravbhosle281 then we have to perform 1 as a PUSH & 0 as a POP operation...

Dtu?

push 1st 2 zero's and pop when for 1st two 1's again for 3rd 1 push it and when zero pop it.

Hope I made it clear. Although it's been 8 months since you asked this I hope this can help some one.

@@keerthichakrabattula84 how to know how many states will be there? like in a^n b^2n there were 4 states (q0,q1,q2,q3) but in this one its only one state (q0). how do you decide that?

@@mexagrontoo Because we did not perform any SKIP operation . we don't need to skip any element. when we do skip operation then we have to change State.

Bhai order nhi dekhna hai no. Of 0s and no. Of 1s equal hona caahiye bus (011100) isme 0-3 hai 1-3 hai isliye accept hogi

@@ayushjha1308 lekin sir ka explain kiya hua pda isko accept nahi karega kyu ki 1,Zo / 1Zo nahi lika hai

1,z0/1z0 , 0,z0/ 0z0 , 1,0/ e , 0,1 / e , 1/1, 11 , 0,0/ 00 . 6 self loop and one change of state. $/z0/z0

@@suryapandey3905 exactly thnx for Clearing my doubt

Didi phele pda toh pdh loo

Couldn't understand that either

Yeah he did a mistake

Same problem

Same. Sir changed states last time but this time he made all the transitions in the same state. I don't get it.

biiya phele pda toh pdh lo

aa jayega!