I vaguely remember this in jee advanced, but used u-subs instead, which also worked

@@mathnerd5647 yea i just know its in jee cuz it is usually a class illustration

Haha I didnt know that👍👍👍

Thanks a lot my friend for your support 👍👍👍

Sounds like an idea my friend! Thanks for your support👍👍👍

Thanks a lot my friend for your support haha👍👍👍

Thank you so much for the support my friend👍👍👍

Thanks a lot my friend for your support 👍👍👍

like a quarter circle?

Thats very nice my friend! Haha thanks for the comment👍👍👍

@@drpkmath12345 🙏

@@MrGLA-zs8xt yes we can evaluate it by quarter circle also let 3 - x = t^2 d x = - 2 t dt now integral is 2 sqrt (3 - t^2) in [0,√3] = 2 area of quarter circle with radius √3 = 2 π(3)/4 = 3 π/2

Oops haha funny! Thanks for the support my friend👍👍👍

Thanks for your support my friend👍👍👍

Haha thanks a lot my friend👍👍👍

Why? Why x is 3sin^2t? Why? You need to explain it. That's what Dr PK did. You are skipping so many steps and say your method is easier? Is that even math? DR PK method is far more superior than yours man. Stop doing it

Yours is a lot uglier and off the track. You didnt even get the answer. You did it worse than dr pk

@@MrGLA-zs8xt Really? I did the same thing. I just skipped the √a^2-b^2 part. You asked me to explain. Okay. If you get "1 - Sin^2 t" you can use the trig identity to get Cos^2 t. Since you can factor out 3, you substitute x = 3 Sin^2 t Notice this explanation just uses a high school trig pythagorean identity rather than fitting into a pattern with variables a and b

@@ginonapoli7929 I did the same thing? You are that tarentinobg. Why are you pretenting like a different person? Also, I hate trig. So, your method is worse. So, Dr. PK's method is a lot more sophisticated. Easier for you. But worse for me. Plus, you keep saying trig identity I know. But why is it easier to use for that integral? You did not explain any rationale.