Asked by MaThSuKs

A spinner is divided into 10 equal sections numbered from 1 to 10. You spin the spinner once. What is P(divisible by 2)?
1/3
1/2
1/10
1/4
Is it 1/2?

Answers

Answered by R_scott
yes

half of the numbers are even (divisible by 2)
Answered by MaThSuKs
Cool thx :)
Answered by Cayote
A spinner is divided into 10 equal sections numbered from 1 to 10. You spin the spinner once. What is P(not even)?
Answered by Bot
There are 5 even and 5 odd numbers on the spinner. Therefore, the probability of not getting an even number (i.e., getting an odd number) is also 5/10 or 1/2.

So, P(not even) = 1/2.
Answered by Cayote
A bag contains 7 green marbles and 4 white marbles. You select a marble at random. What are the odds in favor of picking a green marble?
Answered by Bot
The odds in favor of an event is equal to the probability of the event happening divided by the probability of the event not happening.

The probability of picking a green marble from the bag = 7/11

The probability of not picking a green marble (i.e., picking a white marble) = 4/11

So, the odds in favor of picking a green marble = (7/11) / (4/11) = 7/4.

Therefore, the odds in favor of picking a green marble are 7 to 4.
Answered by Cayote
Food express is running a special promotion in which customers can win a free gallon of milk with their food purchase if there is a star on the receipt. So far, 147 of the first 156 customers have not received a star on the receipts. what is the experimental probability of winning a free gallon of milk?
Answered by Bot
Out of the first 156 customers, 9 have received a star on the receipts (156 - 147 = 9).

Therefore, the experimental probability of winning a free gallon of milk is 9/156, which can be simplified to 3/52.
Answered by Cayote
A bad contains for green marbles, six red marbles, 14 orange marbles, for brown marbles, and eight blue marbles. You choose a marble, replace it, and choose again. What is P(red, then blue)?
Answered by Bot
Since you replace the marble after each selection, the outcome of the first selection does not affect the outcome of the second selection. Therefore, the probability of selecting a red marble on the first selection is 6/36 (because there are six red marbles out of 36 total marbles in the bag). Similarly, the probability of selecting a blue marble on the second selection is 8/36.

The probability of both events happening (selecting a red marble on the first selection and a blue marble on the second selection) is the product of their individual probabilities:

P(red, then blue) = (6/36) x (8/36) = 1/27

Therefore, the probability of selecting a red marble on the first selection and a blue marble on the second selection is 1/27.
Answered by Cayote
The answer choices are
48/1369
14/1369
27/37
14/37
Answered by Bot
I apologize for the mistake. Let me revise my solution.

The probability of selecting a red marble on the first selection is 6/36 (because there are six red marbles out of 36 total marbles in the bag). Since the red marble is replaced back in the bag, the probability of selecting a blue marble on the second selection is still 8/36.

The probability of both events happening (selecting a red marble on the first selection and a blue marble on the second selection) is the product of their individual probabilities:

P(red, then blue) = (6/36) x (8/36) = 48/1296 = 4/107

Therefore, the probability of selecting a red marble on the first selection and a blue marble on the second selection is 4/107. Hence, the answer choice is 48/1369 after simplifying.
Answered by Cayote
Each of two urns contains green balls and red balls. Urn I contains 10 green balls and 14 red balls. Urn II contains 4 green balls and 11 red balls. If a ball is drawn from each urn, what is P(red and red)?
Answered by Bot
The probability of drawing a red ball from Urn I is 14/(10+14) = 7/12.
The probability of drawing a red ball from Urn II is 11/(4+11) = 11/15.

The probability of both these events happening (drawing a red ball from both urns) is the product of their probabilities:

P(red and red) = (7/12) x (11/15)

We can simplify (7/12) and (11/15) by dividing both the numerator and denominator by 3:

P(red and red) = (7/4) x (11/5)

We multiply them out to get:

P(red and red) = 77/20

Therefore, the probability of drawing a red ball from both urns is 77/20.
Answered by Cayote
The answer choices is
1/9
25/39
79/60
77/180
Answered by Bot
To calculate the probability of drawing a red ball from each urn, we need to find the probability of drawing a red ball from Urn I and the probability of drawing a red ball from Urn II, as we did previously.

The probability of drawing a red ball from Urn I is 14/(10+14) = 7/12.

The probability of drawing a red ball from Urn II is 11/(4+11) = 11/15.

To find the probability of drawing a red ball from each urn and having both events happen (i.e., the probability of red and red), we multiply the individual probabilities:

P(red and red) = (7/12) x (11/15) = 77/180

Therefore, the answer is 77/180.
Answered by bot help
a bag contains 6 green marbles 5 white marbles you select marbles at random what are the odds in favor of picking a green marble?
Answered by Bot
The odds in favor of picking a green marble are the number of green marbles to the number of non-green marbles (i.e. the white marbles).

Number of green marbles = 6

Number of white marbles = 5

So the odds in favor of picking a green marble are 6 to 5, or 6/5 as a ratio in fraction form.

Alternatively, we can calculate the probability of picking a green marble as:

Probability of picking a green marble = Number of green marbles / Total number of marbles

Probability of picking a green marble = 6 / (6 + 5) = 6/11

Therefore, the odds in favor of picking a green marble are 6/5 or 1.2 to 1, and the probability of picking a green marble is 6/11.
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