i was so tired that i accidently did 5!*3 instead of 5P2*3
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How did STATISTICS 1 go?
- Thread starter Yuvendren
- Start date
- Messages
- 188
- Reaction score
- 158
- Points
- 53
All same AlhamdulillahQ1 [4 marks]
n=19 probability of success=0.12, find fewer than 4 so apply binomial with 0,1,2 and 3
Ans: 0.813
Q2 [4 marks]
Group A was of 7, Group B was of 2, Group C was of 2. Choose 5 and at least 1 from each group.
Possibilities:
3 from A and 1 from B and 1 from C. 7C3*2C1*2C1=140
2 from A and 2 from B and 1 from C. 7C2*2C2*2C1=42
2 from A and 1 from B and 2 from C. 7C2*2C1*2C2-42
1 from A and 2 from B and 2 from C. 7C1*2C2*2C2=7
Add them.
Ans: 231
Q3 (i) [3 marks] (ii) [2 marks]
Roger had a probability of winning first set=0.6
Roger had a probability of winning second set if he had won the first set=0.7
Roger had a probability of winning second set if he lost the first set=0.25
Match would end when any player wins 2 sets and match cannot be drawn and Andy was the other player.
(i) Probability that match would end in 2 sets.
If Roger wins: 0.6*0.7=0.42
If Andy wins: 0.4*0.75=0.3
Add them.
(ii) If match ends in 2 sets find the probability that match Andy won the match
0.3/0.72
Ans: (i) 0.72 (ii) 0.417
Q4 (i) [3 marks] (ii) [4 marks] (iii) [2 marks]
Coin A is thrown twice and Coin B once
Coin A has probability of head= 2/3
Coin B has probability of head= 1/4
(i) Show that the probability of getting 1 head is 13/36
If Coin A gives 1 head and Coin B gives none: 2*2/3*1/3*3/4=12/36 (Multiplied by 2 as both throws on Coin A can give a head)
If Coin A gives 0 heads and Coin B gives 1 head: 1/3*1/3*1/4=1/36
Add them and total= 13/36
(ii) Draw a probability distribution table of numbers of heads obtained
0 when no heads obtained: 1/3*1/3*3/4=3/36
2 when Coin A gives 2 heads: 2/3*2/3*3/4=12/36
Both Coin A and Coin B give one head each: 2*1/3*2/3*1/4=4/36 (Multiplied by 2 as both throws on Coin A can give a head)
Add them.
3 when all heads: 2/3*2/3:1/4=4/36
(iii) Find the expected value
1*13/36 + 2*16/36 +3*4/36=19/12
Ans : (ii) 0: 3/36 1:13/36 2: 16/36 3:4/36 (iii) 1.58
Q5 (i) [2 marks] (ii) [3 marks] (iii) [3 marks]
1345789 is a number
(i) Find the number of arrangements when odd numbers together and digits not repeated
5!*3! =720
(ii) Arrangements between 3000 and 5000 and even numbers and digits not repeated
When starting with 3: Last digit can be 4 or 8 so the middle two digits are 5P2=5P2*2!=40
When starting with 4: Last digit is 4 so middle two digits are 5P2=20
Total arrangements = 60
(iii) Multiples of 5 less than 1000 and digits ARE REPEATED
Last digit has to be 5 and can be 3-digit, 2-digit or 1-digit number
When 3 digit number: 7*7*1=49
When 2 digit number: 7*1=7
When 1-digit number: 1
Total =57
Ans: (i) 720 (ii) 60 (iii) 57
Q6 (i) [1 mark] (ii) [4 marks] (iii) [4 marks]
Total athletes=57
<10 were 0 <10.5 were 4 <11.0 were 10 <12.0 were 40 <12.5 were 49 <13.5 were 57
(i) Find in the interval 10.5-11.0 =6
(ii) Draw a histogram
Frequencies: 4,6,30,9,8
Frequency densities: 8,12,30,18,8
(iii) Calculate mean and variance
Mid-points: 10.2, 10.7, 11.45, 12.2, 12.95
Mean=11.6
Variance=0.547
Ans: (i) 6 (iii) 11.6, 0.547
Q7 (i) [3 marks] (ii) [2 marks] (iii) [6 marks]
Rafa studies at mean rate 1.9. The probability of studying more than 1.35 is 0.8
(i) Find Standard Deviation
Z=0.842 so S.D. =0.653
(ii) Find the probability that studies less than 2.0
(2.0-1.9)/0.653=0.1531
P=0.561
(iii) 200 samples are taken. Find the probability between 163 and 173 inclusive
np=160 npq=32
Less than 173.5: 0.9915
Less than 162.5: 0.6707
Between them= 0.321
Ans: (i) 0.653 (ii) 0.561 (iii) 0.321
Feel free to post any queries or mistakes
The mid-points and the mean are wrong mentioned hereAll same Alhamdulillah
- Messages
- 188
- Reaction score
- 158
- Points
- 53
i used 10.25, 10.75 etc and i got 11.7 as the mean. is that correct?The mid-points and the mean are wrong mentioned here
- Messages
- 651
- Reaction score
- 554
- Points
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Heyyy dude i used the same midpointsThe mid-points and the mean are wrong mentioned here
At least someone out there who thinks alike dont know whether its correct or not but we can always pray Yes, that is the correct answer.
Its wrong but we'll lose just 1 mark for it as the answer for variance was same and mean was incorrect!Heyyy dude i used the same midpoints
- Messages
- 188
- Reaction score
- 158
- Points
- 53
My prediction is that threshold for A* would be around 210 this time!
- Messages
- 188
- Reaction score
- 158
- Points
- 53
I gave all P1, P3, S1 and M1.
P1 and S1 were extremely easy while M1 and P3 were moderate with some tricky parts.
P1 and S1 were extremely easy while M1 and P3 were moderate with some tricky parts.
Another distinction?
- Messages
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- Reaction score
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is it your first time taking bro?
- Messages
- 188
- Reaction score
- 158
- Points
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yes
not expecting this time. made some blunders in p3Another distinction?
- Messages
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- Reaction score
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What do you t
hink for an A ?
- Messages
- 188
- Reaction score
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- Points
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180-185
Nope. Absolutely not. P1 was much harder than other years. 58 or 59. P6 was moderate but tricky, with too many places in which people could make dumb, careless mistakes. 45 is way over expected GT. 40 at the very very most. Dunno about the rest, haven't done them.
- Messages
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hahahaha 65 in p1 r u kidding me?? it wont be above 60 and 45 is way to high 39 or 38 at the most will be A
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i think the question said that the match would end between roger and andy after 2 sets. the probability we had to find is after 2 sets.