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Kamila [148]
3 years ago
7

Paul withdrew $17.25 from his savings account every week for 3 weeks. Which equation is the best choice to help him determine th

e total amount of money he withdrew?
Mathematics
2 answers:
Readme [11.4K]3 years ago
7 0

Answer:

$17.25 x 3

Step-by-step explanation:

for every wek he gats that amount so if he wants to see what he got after three weeks he just has to times it by three

Doss [256]3 years ago
6 0

Answer:

$17.25 × 3

Step-by-step explanation:

Brainliest Please :)

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For the function y = -2x2 + 4x + 1, what are the coordinates of the vertex?
umka21 [38]

Answer:

(1,3)

Step-by-step explanation:

The given function is

y =  - 2 {x}^{2}  + 4x + 1

Factor 2 from the first two terms

y =  - 2( {x}^{2}   - 2x) + 1

Add and subtract the square of half the coefficient of x.

y =  - 2( {x}^{2}   - 2x + 1 - 1) + 1

Let us create perfect square trinomial

y =  - 2( {x}^{2}   - 2x + 1 ) +  - 2 \times  - 1 + 1

This implies that:

y =  - 2( {x - 1)}^{2}+  3

Therefore the vertex is (1,3).

We got this by comparing to

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8 0
4 years ago
You are going to meet a friend at the airport. Your experience tells you that the plane is late 70% of the time when it rains, b
Katen [24]

Answer:

The probability that it rained that morning, given that the plane was late P( R | L) = 70%

Step-by-step explanation:

We shall be using Baye’s theorem to solve this;

Let the event that it rains be R

Let the event that it does not rain be N

Let the event that the plane is late be L

From the question;

P( R) that morning = 40% = 0.4

P(N) that morning = 60% = 0.6

P(L | R) read as probability that the plane is late , given that it rained = 70% = 0.7

P( L | N) read as probability that the plane is late given that there is no rain = 20% = 0.2

Now, we want to calculate P ( R | L) which is read as probability that it rained given that the plane was late

What we shall use to solve this issue is the Baye’s theorem of conditional probability.

By Baye’s theorem;

P( R | L) ={ P(L | R) * P(R) }/( P( R) * P (L | R) + P(N) * P(L | N)

Substituting the values;

P(R | L) = (0.7 * 0.4)/(0.4 * 0.7) + (0.6 * 0.2)

P(R | L) = 0.28/(0.28 + 0.12)

P( R | L) = 0.28/0.4

P( R | L) = 0.7 = 70%

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3 years ago
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Answer:

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Step-by-step explanation:

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