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4 years ago

Please help! . . . . . . . .

Mathematics

1 answer:

asambeis [7]4 years ago

5 0

Answer:

Step-by-step explanation:

30 which is the average to get =30+36+28+16+50+x

which is

30=30+36+28+16+50+x

after the addition divide it by the total points which is 6.

then you cross multiply which will be

30÷1=160+x÷6

which will be

160+x=180

x=180-160

x=20

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26.74

Step-by-step explanation:

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3 years ago

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patriot [66]

Answer:

Cost of one roll of plain wrapping paper is $12 and Cost of one roll of holiday paper is $17.

Step-by-step explanation:

Solution,

Let the cost of 1 plain wrapping paper be x.

And the cost of 1 holiday paper be y.

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Total Money earned by Julie is equal to sum of number of wrapping paper multiplied with cost of wrapping paper and number of holiday paper multiplied with cost of holiday paper.

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$13x+8y=292\ \ \ \ \ equation\ 1$

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Total Money earned by Mark is equal to sum of number of wrapping paper multiplied with cost of wrapping paper and number of holiday paper multiplied with cost of holiday paper.

So we can frame it in equation form as;

$7x+2y=118\ \ \ \ \ equation\ 2$

Now Multiplying equation 2 by 4 we get;

$4(7x+2y)=118\times4\\\\4\times7x+4\times2y=118\times4\\\\28x+8y= 472 \ \ \ \ equation\ 3$

Now Subtracting equation 1 from equation 3.

$(28x+8y)-(13x+8y)= 472-292\\\\28x+8y-13x-8y= 180\\\\15x=180\\\\x=\frac{180}{2} = \$12$

Now substituting the value of x in equation 1 we get;

$13x+8y=292\\\\13\times12+8y=292\\\\156+8y=292\\\\8y=292-156\\\\8y=136\\\\y=\frac{136}{8}= \$17$

Hence Cost of one roll of plain wrapping paper is $12 and Cost of one roll of holiday paper is $17.

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4 years ago

A certain article reported the following observations, listed in increasing order, on drill lifetime (number of holes that a dri

aleksklad [387]

Answer:

Sample mean =119.42

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10% trimmed mean = 95.69

Step-by-step explanation:

Data in increasing order :

12 13 20 23 31 35 40 43 48 49 58 62 66 67 69 71 73 77 78 79 82 85 86 89 91 93 97 99 101 105 106 106 112 117 124 135 139 141 147 159 161 168 183 207 249 262 289 323 388 513

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Median: Since we have even number of observation

Median = $\frac{1}{2}({25\text{th term} + 26\text{th term})$ = $\frac{91+93}{2}$ = 92

10% Trimmed Mean: We remove 5 values from each side

Trimmed set = 35 40 43 48 49 58 62 66 67 69 71 73 77 78 79 82 85 86 89 91 93 97 99 101 105 106 106 112 117 124 135 139 141 147 159 161 168 183 207 249

Trimmed mean = $\frac{\text{Sum of Trimmed Set}}{\text{Total number of observations}}$ = $\frac{4097}{40}$ = 102.42

25% Trimmed Mean: We remove 12 values from each side.

Trimmed set = 66 67 69 71 73 77 78 79 82 85 86 89 91 93 97 99 101 105 106 106 112 117 124 135 139 141

Trimmed mean = $\frac{\text{Sum of Trimmed Set}}{\text{Total number of observations}}$ = $\frac{2488}{26}$ = 95.69

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3 years ago