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AlekseyPX
3 years ago
11

What is the best way to explain graphing

Mathematics
2 answers:
Olin [163]3 years ago
8 0

In math, a graph can be defined as a pictorial representation or a diagram that represents data or values in an organized manner. ... We then represent the data using a bar graph. The number of each of the supplies is represented with bars. The more the height of the bar, the more is the number of the supply or item used.

Step2247 [10]3 years ago
5 0

Answer:

In math, a graph can be defined as a pictorial representation or a diagram that represents data or values in an organized manner.

Step-by-step explanation:

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Please help! :) What is the value of Fraction 1 over 2x3 + 3.4y when x = 3 and y = 4?
Elan Coil [88]

Answer:

31.6

Step-by-step explanation:

2(3)(3) + 3.4(4)

multiply first.

first half of the equation you have 3x3=9 x2= 18

second half 3.4(4) = 13.6

18+13.6=31.6

6 0
3 years ago
On Saturday, Mrs. Colton buys 2
Paraphin [41]
Jerry bud the 4 pack is better
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What's 3n+1? my teacher asked everyone in his class (including me) and he said it's almost impossible (then he started laughing
Elodia [21]

Answer:

This is a complicated problem

Step-by-step explanation:

it's called collatz conjecture and well is just unsolved problems

7 0
3 years ago
Read 2 more answers
g From a distribution with mean 38 and variance 52, a sample of size 16 is taken. Let X be the mean of the sample. Show that the
Vesna [10]

Answer:

P=8.869

Step-by-step explanation:

From the question we are told that:

Mean \=x =38

Variance \sigma=52

Sample size n=16

X=(33, 43)

Generally the equation for Chebyshev's Rule  is mathematically given by

A=(1-\frac{1}{k^2})*100\%

Where

k=\frac{\=x-\mu}{\frac{\sigma}{\sqrt n}}}}

k=\frac{43-38}{\frac{52}{\sqrt 16}}}}

k=2.77

Therefore

Probability

P=(1-\frac{1}{2.77^2})

P=8.869

3 0
3 years ago
Find the point P on the graph of the function y=√x closest to the point (9,0)
Sphinxa [80]

Answer:

\displaystyle \frac{17}{2}.

Step-by-step explanation:

Let the x-coordinate of P be t. For P\! to be on the graph of the function y = \sqrt{x}, the y-coordinate of \! P would need to be \sqrt{t}. Therefore, the coordinate of P \! would be \left(t,\, \sqrt{t}\right).

The Euclidean Distance between \left(t,\, \sqrt{t}\right) and (9,\, 0) is:

\begin{aligned} & d\left(\left(t,\, \sqrt{t}\right),\, (9,\, 0)\right) \\ &= \sqrt{(t - 9)^2 +\left(\sqrt{t}\right)^{2}} \\ &= \sqrt{t^2 - 18\, t + 81 + t} \\ &= \sqrt{t^2 - 17 \, t + 81}\end{aligned}.

The goal is to find the a t that minimizes this distance. However, \sqrt{t^2 - 17 \, t + 81} is non-negative for all real t\!. Hence, the \! t that minimizes the square of this expression, \left(t^2 - 17 \, t + 81\right), would also minimize \sqrt{t^2 - 17 \, t + 81}\!.

Differentiate \left(t^2 - 17 \, t + 81\right) with respect to t:

\displaystyle \frac{d}{dt}\left[t^2 - 17 \, t + 81\right] = 2\, t - 17.

\displaystyle \frac{d^{2}}{dt^{2}}\left[t^2 - 17 \, t + 81\right] = 2.

Set the first derivative, (2\, t - 17), to 0 and solve for t:

2\, t - 17 = 0.

\displaystyle t = \frac{17}{2}.

Notice that the second derivative is greater than 0 for this t. Hence, \displaystyle t = \frac{17}{2} would indeed minimize \left(t^2 - 17 \, t + 81\right). This t\! value would also minimize \sqrt{t^2 - 17 \, t + 81}\!, the distance between P \left(t,\, \sqrt{t}\right) and (9,\, 0).

Therefore, the point P would be closest to (9,\, 0) when the x-coordinate of P\! is \displaystyle \frac{17}{2}.

8 0
3 years ago
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