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olchik [2.2K]
3 years ago
8

No Point Stealers!!!

Mathematics
2 answers:
vovangra [49]3 years ago
5 0
Neither A or B for this
stepladder [879]3 years ago
4 0

Answer:

Neither A nor B

Step-by-step explanation:

Some of the ordered pairs have numbers that are repeating! Therefore, none of them are functions. Ex. (7, -4) (7, -2)

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Aaron plans to make origami cranes, which can be folded from a
tester [92]

Answer:

Each square, the area is the square of the respective lengths

Step-by-step explanation:

Kindly see the attached file for more explanation

3 0
4 years ago
I need with turning 274% into a decimal
Olenka [21]
274%
= 274/100
= 2.74

The final answer is 2.74~
6 0
4 years ago
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Waiting on the platform, a commuter hears an announcement that the train is running five minutes late. He assumes the arrival ti
natima [27]

Answer:

D. 91%

Step-by-step explanation:

Conditional Probability

We use the conditional probability formula to solve this question. It is

P(B|A) = \frac{P(A \cap B)}{P(A)}

In which

P(B|A) is the probability of event B happening, given that A happened.

P(A \cap B) is the probability of both A and B happening.

P(A) is the probability of A happening.

In this question:

Event A: Less than 15 minutes.

Event B: Less than 10 minutes.

We are given the following probability distribution:

f(T = t) = \frac{3}{5}(\frac{5}{t})^4, t \geq 5

Simplifying:

f(T = t) = \frac{3*5^4}{5t^4} = \frac{375}{t^4}

Probability of arriving in less than 15 minutes:

Integral of the distribution from 5 to 15. So

P(A) = \int_{5}^{15} = \frac{375}{t^4}

Integral of \frac{1}{t^4} = t^{-4} is \frac{t^{-3}}{-3} = -\frac{1}{3t^3}

Then

\int \frac{375}{t^4} dt = -\frac{125}{t^3}

Applying the limits, by the Fundamental Theorem of Calculus:

At t = 15, f(15) = -\frac{125}{15^3} = -\frac{1}{27}

At t = 5, f(5) = -\frac{125}{5^3} = -1

Then

P(A) = -\frac{1}{27} + 1 = -\frac{1}{27} + \frac{27}{27} = \frac{26}{27}

Probability of arriving in less than 15 minutes and less than 10 minutes.

The intersection of these events is less than 10 minutes, so:

P(B) = \int_{5}^{10} = \frac{375}{t^4}

We already have the integral, so just apply the limits:

At t = 10, f(10) = -\frac{125}{10^3} = -\frac{1}{8}

At t = 5, f(5) = -\frac{125}{5^3} = -1

Then

P(A \cap B) = -\frac{1}{8} + 1 = -\frac{1}{8} + \frac{8}{8} = \frac{7}{8}

If given the train arrived in less than 15 minutes, what is the probability it arrived in less than 10 minutes?

P(B|A) = \frac{P(A \cap B)}{P(A)} = \frac{\frac{7}{8}}{\frac{26}{27}} = 0.9087

Thus 90.87%, approximately 91%, and the correct answer is given by option D.

3 0
3 years ago
I need help finding the answer
Kruka [31]
14 because 28 divided by 2 is 14
6 0
3 years ago
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PLSSS HELP!!!<br> Which equation is represented by the graph below?
Arisa [49]

Answer:

hope it will help you to

hope it will help you

8 0
2 years ago
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