Thanks!

Thanks! I'm glad to be back!

Thanks for the kind words. If I had to just teach what the formula was and how to use it, then I'd be inclined to quit and go off and start a trucking company. (And I don't know anything about that!) I definitely try to help with the "why" of things. I understand what you're saying about your prof, and the use of the formula, and if that's the way they require you to do it then you should go with that. But the reduced sample space argument is 100% legitimate, and still fits with the notion of showing your work.

Thanks!

Thanks! I'm glad to be of help!

scroll to the name The Establishment. He explains it there.

@@thehamsterarmy2380 "/pjilummArijuana of us, and u l please do you y2k last p Lilly ppl l Ppl puLp: ppl injuryp0ppppppppppppppppppp0 imP the yyyy6

@@thehamsterarmy2380 silly question but where? I can't find it

@@Sk8erMorris you can just calculate it by yourself, given all those little areas in the Venn diagram. A union B intersect C, the numerator, is going to be 0.19, and C is going to be 0.3. then you do division.

@@reyrey4993 that's not helping, we are asking for the formula, not what goes on top and bottom

Um, its personal preference (you can use either method, it just depends which one your brain sees first, but best to PRACTICE both, you dnt necessarily have to USE both). The real question is when to use probability rules and when not to use probability rules, which he beautiful explains at 1:38.

There is no easy way to get the probability of the intersection of B complement and A U C. The best way to visualize it is with the Venn Diagram. If you wanted to do it formulaically, we could say that intersections distribute over unions, so B^c n (A U C) = (B^c n A) U (B^c n C) and keep going down that path. But that's not especially helpful, as at some point we're simply going to have to figure out what region we need to find and find the probability of that.

First of all, I appreciate you updating your question with an answer for those who had a similar question. But, shouldn't the P(A and B and C) be added instead of subtracting it twice again as you already have removed it both times. Also, doing this is easy only because of the diagram. It would be hard to solve if something else was asked in some random question x.

I forgot to thanks @jbstatistics for the marvellous videos on stats ! thanks a million.

You the best man!!!!!!

2/5 is like saying "giving that A U C occured" and not "C occured" ....C is an event of three numbers.... and the sum of the conditional values where AUB and C meet is 2, so 2/3....

Nevermind I finished the class with an A🌚

@@ayah7056 But how do you do it??

please, I'm so utterly confused at what he meant by that lol

I think the joke is that no one at a party would want to hear a math joke, so he IS "really out of touch with the modern era."

@@hellmuth26 I think so too xPP I just imagine someone going around a party trying to start a conversation about probability theory and not getting anywhere xPPPP

jbstatistics is the coolest kid on the block and that's why he knows that that last example is a good one for parties. ;)

Me too :)

@@jbstatistics doesn't in the last example, P(A | B) = P(A) / P(B) ?, since P(A and B) = P(A) if A is a subset of B. I thought you were hinting at that idea with your 'what can be said of these formulas'

@@alexgabriel5877 i agree with you but don't know if this is correct.

The sample space is only reduced if P(B) < 1, but yes, under that restriction you are correct.

Thanks!

I can! A U B = {1,2,3,4,6}. C = {1,3,5}. P(A U B | C) = P((A U B) n C)/P(C). A U B intersects with C at 1 and 3 (i.e. What values are in both A U B and C? 1 and 3). So P((AUB) n C) = 2/6. And thus P(A U B | C) = (2/6)/(3/6) = 2/3.

Thanks for the compliment! I'm glad to be of help!

Dėkoju!

Sure, the addition rule works there, but it's not like we *must* use that formula whenever we want the probability of a union. The union of A and C is the event that A or C or both happen. We can see what regions that comprises in the Venn diagram. The probability of the union of A and C can be found with the addition rule, but it is also equal to the sum of the probabilities of the 6 mutually exclusive regions contained therein.

@@jbstatistics I got it thanks a lot. If we take the values of p(A) and p(C) provided in given question then we have to subtract p(A n C). Because we are considering this region twice. ???

@@jbstatistics Thanks a lot for your videos..!!

I don't know what you did to get 0.20. (Perhaps P(A U B) - P(B), which is the probability of A but not B.) P(A n B) = 0.14, for the reasons I outline in the video.

The probability of the entire sample space is 1, and so the probability of the region outside the circles is 1-P(A U B U C) = 1- (0.18 + 0.12 + 0.10 + 0.03 + 0.12 + 0.04 + 0.11) = 0.30.

@@jbstatistics Ah, I see. Thanks, mate!

I'm glad to hear it!

Solve for P(A n B) in 0.70 = 0.34 + 0.50 - P(A n B). This implies P(A n B) = 0.84 - 0.70.

Thanks!

His answers are all correct, where you able to get it right later on?

I explained to the best of my capabilities in the video. Males tend to be taller than females. The proportion of adult Canadian males that are over 6' tall is greater than the corresponding proportion of adult Canadian females. So, if we know the randomly selected person is male, that information increases the probability that they are over 6' tall. Hence, P(A|B) > P(A).

Time and Major coin flipping possibilities and then Unoin of Balls( AUB ) &C

A U B = {1,2,3,4,6}. C = {1,3,5}. P(A U B | C) = P( (AUB) n C)/P(C). Finding P(C) is easy (3/6), so the only tricky bit is finding the numerator. Where does A U B intersect with C? What sample points do they have in common? 1 and 3, so (AUB) n C = {1,3}, P( (AUB) n C) = 2/6, and (AUB) | C) = (2/6)/(3/6) = 2/3.

but why P(C) is 3*(1/6)? why not (1/6)^3 ? the event is rolling the dice three times, and each time getting 1, and then 3, and then 5, (or whatever 3 nums of a die, for that matter), so its the principle of multiplication, no? especially that the events 1,3,5 are independent

@@tubics1 you are not rolling dice thrice. You are rolling it once

The question asks for P(AUB|C). If you feel compelled to use the conditional probability formula here, then you need to find P((AUB) n C)/P(C). A U B intersects C at the numbers 1 and 3, so P((AUB) n C) = 2/6, and P(AUB|C) = (2/6)/(3/6) = 2/3.

do you get it? I see no where 3/6 came from. I see a 5/6 for AUB

@@thehamsterarmy2380 You're probably way past this, but for future readers: the 3/6 = P(C) = {1,3,5}. So where P(AUB) {1,2,3,4,6} intersects P(C) {1,3,5} is {1,3} = 2/6

@@shdyo Thank youuuuu! I still had no clue

I don't know what you're asking. In the first example, I use the conditional probability formula to answer the question.

Try this: NB: S : Sample Space In a population, a person can either be a male or a female, not both Male and Female are independent events We also notice that the probabilities all add up to one. M or m : "a male", F or f : " a female" S= {M1, M2, M3,.......M359......F1, F2, F3,.........F164} S= sum(M) + sum(F) => 523 = 359 + 164 Sm = M = { CAm, Cm, Rm, Om} = { 264, 38, 36, 21} Sf = F = { CAf, Cf, Rf, Of} = { 89, 27, 29, 19} S= Sm + Sf = {CAm, Cm, Rm, Om, CAf, Cf, Rf, Of} P(M|(C u R)) = [P (M n (C u R))] / P(C u R) C= { Cm, Cf}, R= {Rm, Rf} C u R = { Cm, Cf, Rm, Rf} M = {Cm, CAm, Rm, Om} M n (C u R) = {Cm, Rm} ==> P(M n (C u R)) = (38 + 36) / 523 = 74/523 P(C u R ) = (38 + 27 + 36 +29)/ 523 = 130/523 P(M|(C u R)) = [P (M n (C u R))] / P(C u R) = (74/523)/(130/523) P(M|(C u R)) = P(M| C u R) .... I remove the extra pair of bracket P(M| C u R) = 74/130 = 0.57 Hope it helps!

It is *always* the case that P(A U B) = P(A) + P(B) - P(A n B). If A and B are mutually exclusive, then P(AnB) = 0 and the addition rule reduces to P(A U B) = P(A) + P(B) - 0 = P(A) + P(B).

I had the same doubt, good to see the answer

I don't know why you think it would be. P(A U B) is given as 0.70, and that's the probability that A or B (or both) occurs.

I think I can help: S = { X, Y, ............} P(Y/X') = P (Y n X') / P(X') S= X + X' P(S) = P(X) + P(X') => P(X') = 1 - 0.5 = 0.5 P(Y n X') = ?? Y n X' = Y - (Y n X) ... I advice you to visulaise this on a vein diagram for clear understanding P(Y n X') =P( Y - (Y n X)) = P(Y) - P(Y n X) P(Y n X') = 0.4 - O.1 = 0.3 P(Y/X') = 0.3/0.5 = 0.6 P(Y/X') = 0.6 Hope it helps.

Tall *and* male is not more likely than tall, of course. The probability the individual is tall *given* they are male is greater than the probability they are tall (which is what I state in the video).

I see it coming a mile away ;)

@@jbstatistics now, I also see it , just a little bit of concentration :))

You are welcome!