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HSC 2015 MX1 Marathon (archive) (5 Viewers)

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davidgoes4wce

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Re: HSC 2015 3U Marathon

b)
To begin, there are (13C3) different choices of slots for the 3 E's to be in. If two of the E's must be adjacent, then we can think of them as forming a single composite letter EE and shrink the total number of letters from 13 to 12. In this manner, there are 10 slots which EE can be in such that it is not at either end, as well as 2 end slots. If EE is in any of the 10 non-end slots, the last E can be in any of 12−1−2=9 slots such that E is not adjacent to EE. If EE is at either end slot, there are 12−1−1=10 slots such that E is not adjacent to EE.

It follows that the probability that two E's are adjacent but the last E is not adjacent to either of the other two E's is [10x9+2x10](13C3)=5/13
 

leehuan

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Re: HSC 2015 3U Marathon

I'm used to doing P(Event) = Favourable outcomes/Total outcomes

The word is [ENTERTAINMENT]

For all cases, total outcomes = 13!/(3!3!3!) = 28828800. This was established in the above post in the image.
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For a) This is done by treating all the E's as one letter. Note that the E's are not say E_1, E_2, E_3 so there is only 1! way of arranging the E's.
Our favourable outcomes then becomes: 11!/(3!3!) = 1108800

So the probability of this is 1108800/28828800 = 1/26
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For b) In a similar way, two of the E's are treated as one letter. The words can be seen as "12 letter words" in this regard. As pointed out again in the above post, we now have a deviation of cases.

In 2 ways, we can fix one of the E's at the ends. Then, the other E has 10 possible placements. We then arrange every other letter, which can be done in 10!/(3!3!) ways. 2*10*10!/(3!3!) = 2016000

In 10 ways, we can fix one of the E's specifically not at the ends. Then, the other E now has 9 possible placements. We then arrange every other letter, which can stil be done in 10!/(3!3!) ways. 10*9*10!/(3!3!) = 9072000

Hence, the required probability is (2016000+9072000)/28828800 = 5/13
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For c) Inspection shows that the probability of 1 E apart from 2 E's together is the exact same thing as part (b). Hence, this just requires complementary probabilities.
The required probability is 1 - 1/26 - 5/13 = 15/26
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For d) Two E's have already been fixed. Note however, that the final E is no longer a repeated letter. Hence our favourable outcomes becomes 11!/(3!3!) again.

Because the result is identical to part (a), the answer is 1/26
 

rand_althor

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Re: HSC 2015 3U Marathon

  1. How many words are possible using five letters which are selected from the letters of the world CALCULATOR?
  2. If a word is selected at random from these words, find the probability that the word contains:
    a. no repeated letters
    b. all four vowels
    c. two Cs
    d. two Cs that remain together
    e. no vowels

1: 6570
2a:28/73
2b:2/73
2c:50/219
2d:20/219
2e:2/73
 

leehuan

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Re: HSC 2015 3U Marathon

How many words are possible using five letters which are selected from the letters of the word CALCULATOR?
I don't even know how to do this. Can someone please care to teach?
 

InteGrand

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Re: HSC 2015 3U Marathon

I don't even know how to do this. Can someone please care to teach?
Consider cases based on how many of each of the letters for which there is more than 1 available you will include. (There are 2 C's, 2 A's, 2 L's, and 1 each of U,T,O,R.)

E.g. Case 1: One C

Case 2: Two C's

Case 3: No C's.

And each case will have sub-cases since there are other letters that have more than 1 available.
 

Ekman

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Re: HSC 2015 3U Marathon

Consider cases based on how many of each of the letters for which there is more than 1 available you will include. (There are 2 C's, 2 A's, 2 L's, and 1 each of U,T,O,R.)

E.g. Case 1: One C

Case 2: Two C's

Case 3: No C's.

And each case will have sub-cases since there are other letters that have more than 1 available.
What I like to do is consider general cases where there are like:

1. No Repeats (3C0 different ways of having no letters that are repeated)
2. Only 1 Repeat (3C1 different ways of having a letter that is repeated)
2. Only 2 repeats (3C2 different ways of having 2 letters that are repeated)
 

Drsoccerball

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Re: HSC 2015 3U Marathon

What I like to do is consider general cases where there are like:

1. No Repeats (3C0 different ways of having no letters that are repeated)
2. Only 1 Repeat (3C1 different ways of having a letter that is repeated)
2. Only 2 repeats (3C2 different ways of having 2 letters that are repeated)
tbh our teacher actually taught us so much...
 

Ekman

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Re: HSC 2015 3U Marathon

tbh our teacher actually taught us so much...
Actually I suggested this method to him, because I wasn't bothered enough to consider individual cases.
 

DatAtarLyfe

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Re: HSC 2015 3U Marathon

Yo ekman/drsoccerball, do u guys go selective?


Sent from my iPhone using Tapatalk
 

Soulful

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Re: HSC 2015 3U Marathon

There is a bag of jellybeans. Player A and player B take turns drawing jelly beans out of the bag. Player A draws first.
What is the probability that

a) When there is only 1 black jellybean in the bag which contains n jellybeans in total, player A draws it first
b) Player A draws the black jellybean first if the bag contains n-2 jellybeans and there are 2 black jellybeans, where n is odd
c) Same as above, but n is even

(mark distribution in our exam was 1,2,2)
 
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InteGrand

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Re: HSC 2015 3U Marathon

In a bag of jellybeans, only one is black. Player A and player B take turns drawing jelly beans out of the bag. Player A draws first.
What is the probability that

a) Player A draws the black jellybean first if the bag contains n jelly beans
b) Player A draws the black jellybean first if the bag contains n-2 jellybeans, where n is odd
c) Same as above, but n is even

(mark distribution in our exam was 1,2,2)
 

Soulful

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Re: HSC 2015 3U Marathon

I have no idea - it was just written like that in our trials, probably just to confuse the students like myself :'(

EDIT: WROTE THE QUESTION WRONG HAHA
 
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InteGrand

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Re: HSC 2015 3U Marathon

If you can answer a) before doing b) and c), then the answers to c) would come from just replacing n in your answer to a) with (n – 2)... (unless the wording is wrong or they meant something else, since currently the Q's are asking for basically the same thing. Did part a) mean what's the chance that player A gets the black jellybean on the first draw? Since its mark allocation is lower than the other Q's).
 
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Soulful

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Re: HSC 2015 3U Marathon

If you can answer a) before doing b) and c), then the answers to c) would come from just replacing n in your answer to a) with (n – 2)...
yup yup yup I miswrote the question whoops. for a and b you consider when there are 2 black jellybeans
 

porcupinetree

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Re: HSC 2015 3U Marathon

  1. How many words are possible using five letters which are selected from the letters of the world CALCULATOR?
  2. If a word is selected at random from these words, find the probability that the word contains:
    a. no repeated letters
    b. all four vowels
    c. two Cs
    d. two Cs that remain together
    e. no vowels

1: 6570
2a:28/73
2b:2/73
2c:50/219
2d:20/219
2e:2/73
Incase someone was looking for a solution to this. I'm not entirely sure about 2b though - I know that this question is from Terry Lee and I've looked up his solutions and compared them to mine, but I have a feeling he may be wrong? We need 1 more letter from the 4 remaining unique letters (4C1), then 5! to arrange, and divide by 2! to compensate for the double A.

 

rand_althor

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Re: HSC 2015 3U Marathon

Incase someone was looking for a solution to this. I'm not entirely sure about 2b though - I know that this question is from Terry Lee and I've looked up his solutions and compared them to mine, but I have a feeling he may be wrong? We need 1 more letter from the 4 remaining unique letters (4C1), then 5! to arrange, and divide by 2! to compensate for the double A.
I got the same answer as you with the same method. Not too sure why its 2/73 though. This is what the solutions I have say for 2b:
The word has to have the letters A A U O _. The _ can be any of L L C C T R, which can be arranged in ways. Thus the answer is .

Not sure why the 6 letters that _ can be are being considered in that way. Can someone please explain?
 

Drsoccerball

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Re: HSC 2015 3U Marathon

f'(x) =2x -1/x^2
0=-2x -1/x^2
0=-2x^3-1
x= (-1/2)^(1/3)
 
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