What is the Probability of Hitting the Target in a Two-Shooter Scenario?

AI Thread Summary
In a two-shooter scenario, the first shooter has a 70% hit rate, while the second misses 60% of the time. The probability that the first shooter misses is 30%, and the probability that both shooters miss is calculated as 18%. Consequently, the probability that at least one shooter hits the target is 82%. This calculation is based on the principle of independent probabilities, where the combined probability of both missing is multiplied to find the overall chance of hitting the target. The discussion emphasizes understanding independent events in probability calculations.
Physicsissuef
Messages
908
Reaction score
0

Homework Statement


Two shooters aim in same target at same time and then the first shooter shots in 70% of the shooting session, and the second is missing in the 60% of the shooting sesion.

A. The probability to miss the first shooter is: ______________

B. The probability the target to be shot is: _______________


Homework Equations




The Attempt at a Solution



A. I think it is 30% (very easy indeed)

So the first shooter shots 70% (7 of 10) and the second shooter 40% (4 of 10)

B. I think the probability is more than 70%, but what is the correct one?

Thank you.
 
Physics news on Phys.org


If you found A easy then what's the probability BOTH shooters miss? What's the relation of that probability to the probability that the target is hit?
 


The both shooters to miss is probably 55% (or 5,5 of 10)

1-\frac{5,5}{10}=\frac{4,5}{10}

I don't think this is correct.
 


You're right. It's not. Odds A misses are 0.30, odds B misses are 0.60. Odd that they both miss is NOT the average of the two. What is it?
 


If the first one misses 3 of 10, and the second one 6 of 10, both miss 9 of 20, or 45%. I don't really know. Please help!
 


Do you know how to find P(A and B) if you know P(A), P(B), and know that A and B are independent?
 


Ok, I will do like this:
1-shot 2-miss

shooter C - 1111111222

shooter D - 1111222222

All possible combinations are:
7*(1,1 ; 1,1 ; 1,1 ; 1,1 ; 1,2 ; 1,2 ; 1,2 ; 1,2; 1,2; 1,2)+3*(2,1 ; 2,1; 2,1 ; 2,1 ; 2,2 ; 2,2; 2,2 ; 2,2 ;2,2 ;2,2)
10*7+3*10=70+30=100

\frac{10*7+4*3}{100}=\frac{70+12}{100}=\frac{82}{100}

82% ?
 


82% is correct.
 


Ok, thanks. But how will I solve it with permutations?
 
  • #10


Some help please?
 
  • #11


for second question ::

probability that A miss :p(A): 30/100
probability that B miss :p(B): 60/100

Probability that both Miss :: p(AnB) = p(A) x p(B) = 30/100 * 60/100 = 18/100 (As both Events are independent)

so the Probability that the Target is shot = 1 - Both Miss
1 - 18/100 = 82/100 = 82 %.
 
  • #12


Where this formula comes from?
 
  • #14


Ok, thank you.
 

Similar threads

B Probability of hitting a target
Replies
10
Views
2K
Probability Word Problem: Aptitude Question
Replies
8
Views
2K
Shooter hitting targets of variable heights
Replies
1
Views
2K
Probabilities of archers A and B hitting the bull's eye
Replies
19
Views
8K
Probability: B needs to shoot more times than A
Replies
9
Views
2K
Birthday problem (probability)
Replies
9
Views
4K
Probability - Playing a Game with Two Fair Spinners
Replies
6
Views
5K
How Does Shooter Accuracy Affect Probability of Hitting a Target?
Replies
32
Views
4K
Probability with two dice problem
Replies
22
Views
3K
Shooting competition. What is the best option?
Replies
6
Views
2K

Hot Threads

Recent Insights

Back
Top