Section II (3 Viewers)

knel

New Member
Joined
Mar 8, 2009
Messages
2
Gender
Male
HSC
2009
for 28c i dived how far he could see out to sea somehting like 4.5k by how high his eyes where. like 1.6 that equalled 2.8 then i times that by 16 or however high it was and bingo there is your answer...... i hope, i did do in no joke like 5seconds
 

matttayl

matskiez'
Joined
Feb 24, 2009
Messages
30
Gender
Male
HSC
2009
for 28c i dived how far he could see out to sea somehting like 4.5k by how high his eyes where. like 1.6 that equalled 2.8 then i times that by 16 or however high it was and bingo there is your answer...... i hope, i did do in no joke like 5seconds
the answer was 17.8

using the equation h = k d^2

k = 4.5^2/1.6
 

I Study Hard

Member
Joined
Jun 1, 2008
Messages
402
Gender
Female
HSC
2009
also. the last question was in my opinion the hardest. i said juan was correct, because there were 8 differences between the theoretical probability and the first experiment, where as there were only 4 differences between the theoretically probable answer and experiment two... what did everyone else get, and what were your explanations?
I said that since the chance of rolling any one face on the dice was 1/6 that if the dice were rolled 18 times then theoretically each number should have come up 3 times, and therefor he was wrong, because experiment 1 was closer to the expected result.
 

mystiques4

Awesome Member
Joined
May 30, 2009
Messages
208
Gender
Male
HSC
2009
I said that since the chance of rolling any one face on the dice was 1/6 that if the dice were rolled 18 times then theoretically each number should have come up 3 times, and therefor he was wrong, because experiment 1 was closer to the expected result.
The question was difference between two dice, not what the value of the dice was.
 

emma211

Member
Joined
Nov 25, 2008
Messages
37
Gender
Female
HSC
2009
I said that since the chance of rolling any one face on the dice was 1/6 that if the dice were rolled 18 times then theoretically each number should have come up 3 times, and therefor he was wrong, because experiment 1 was closer to the expected result.
I think the question was talking about the difference between the numbers rolled on the dice e.g. if 4 and 5 were rolled the difference is 1

i think you had to draw one of those tables with like 1-6 across the top and 1-6 down the side. then fill in what the difference's would be in the middle.

if that's right then exp 2 was closest to the theoretical probability
 

matttayl

matskiez'
Joined
Feb 24, 2009
Messages
30
Gender
Male
HSC
2009
I said that since the chance of rolling any one face on the dice was 1/6 that if the dice were rolled 18 times then theoretically each number should have come up 3 times, and therefor he was wrong, because experiment 1 was closer to the expected result.
thats what i said, because from the sample space there were 36 possible outcomes and of which the 6 different differences were possible 6 times. eg 6/36 - 1/6. they all had equal chances of occuring
 

Question?

New Member
Joined
Jan 29, 2007
Messages
24
Gender
Undisclosed
HSC
2008
I said that since the chance of rolling any one face on the dice was 1/6 that if the dice were rolled 18 times then theoretically each number should have come up 3 times, and therefor he was wrong, because experiment 1 was closer to the expected result.
DUDDE sorry but ur rong
 
Joined
Jul 17, 2009
Messages
273
Location
Planet Earth
Gender
Male
HSC
2009
There was a 6/36 chance of getting a difference of 0, 10/36 for 1, 8/36 for 2, 6/36 for 3, 4/36 for 4, 2/36 for 5. You just multiply these chances with 18 to get the difference they should theoretically show. So experiment two was more correct..
 

tegan-leanne

New Member
Joined
Jan 27, 2009
Messages
7
Gender
Female
HSC
2009
I think the question was talking about the difference between the numbers rolled on the dice e.g. if 4 and 5 were rolled the difference is 1

i think you had to draw one of those tables with like 1-6 across the top and 1-6 down the side. then fill in what the difference's would be in the middle.

if that's right then exp 2 was closest to the theoretical probability
that's how i did it. i didn't have time to write soem examples of the theoretical probability though. hopefully i would still get 3 marks for that though because i have an answer and the other parts to the question.I don't think i did very will in the test. byebye uni! :[
 

Question?

New Member
Joined
Jan 29, 2007
Messages
24
Gender
Undisclosed
HSC
2008
There was a 6/36 chance of getting a difference of 0, 10/36 for 1, 8/36 for 2, 6/36 for 3, 4/36 for 4, 2/36 for 5. You just multiply these chances with 18 to get the difference they should theoretically show. So experiment two was more correct..
that is exactly what i done
 

emma211

Member
Joined
Nov 25, 2008
Messages
37
Gender
Female
HSC
2009
that's how i did it. i didn't have time to write soem examples of the theoretical probability though. hopefully i would still get 3 marks for that though because i have an answer and the other parts to the question.I don't think i did very will in the test. byebye uni! :[
haha yer don't worry about it, you should be sweet.
 

cmanassa

New Member
Joined
Mar 12, 2009
Messages
4
Gender
Female
HSC
2009
QUESTION 27c

3 raffles - 100 tickets each

MARY: 2/100 = 1/50 = 0.02 <B>(1 mark)</B>

JANE:
Propability of winning both ticks is 1/100 x 1/100 = 1/10,000 <B>(1 mark)</B>
Probabilty of winning first draw but not the second = 1/100 x 99/100 = 99/10,000
Propability of winning second but not first = 99/100 x 1/100 = 99/10,000

CONCLUSION...
Propability of winning AT LEAST 1 (is the sum of the above 3 calculations)
1/10 000 plus 99/10 000 plus 99/10 000 = 199/10 000 = 0.0199 <B>(1 mark)</B>

Hence, mary has a slightly beter chance... <B>(1 mark)</B>
 

Question?

New Member
Joined
Jan 29, 2007
Messages
24
Gender
Undisclosed
HSC
2008
QUESTION 27c

3 raffles - 100 tickets each

MARY: 2/100 = 1/50 = 0.02 <B>(1 mark)</B>

JANE:
Propability of winning both ticks is 1/100 x 1/100 = 1/10,000 <B>(1 mark)</B>
Probabilty of winning first draw but not the second = 1/100 x 99/100 = 99/10,000
Propability of winning second but not first = 99/100 x 1/100 = 99/10,000

CONCLUSION...
Propability of winning AT LEAST 1 (is the sum of the above 3 calculations)
1/10 000 plus 99/10 000 plus 99/10 000 = 199/10 000 = 0.0199 <B>(1 mark)</B>

Hence, mary has a slightly beter chance... <B>(1 mark)</B>
FUCKKK YESSS. are you right tho. please say yes lmao
 

Users Who Are Viewing This Thread (Users: 0, Guests: 3)

Top