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leonid [27]
3 years ago
10

Type the correct answer in each box use numerals instead of words if nessasary us /for fractions subtract write your amswer in s

implest form 3 11/12 - 1 4/12
Mathematics
1 answer:
Oduvanchick [21]3 years ago
4 0

After simplifying the expression 3\frac{11}{12}-1\frac{4}{12} into simplest form we get \frac{31}{12}

Step-by-step explanation:

We need to simplify the fraction 3\frac{11}{12}-1\frac{4}{12} into simplest form.

Converting mixed fraction into improper fraction:

3\frac{11}{12}-1\frac{4}{12}\\=\frac{47}{12}-\frac{16}{12}

Now, taking LCM of denominator 12,12 i.e 12

=\frac{47-16}{12}\\=\frac{31}{12}

So, After simplifying the expression 3\frac{11}{12}-1\frac{4}{12} into simplest form we get \frac{31}{12}

Keywords: Subtract Fractions

Learn more about Subtract Fractions at:

  • brainly.com/question/4390083
  • brainly.com/question/357905
  • brainly.com/question/12817595

#learnwithBrainly

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List the common multiple of 42 and 14 . Help plzzzz 
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3. First you should identify which line corresponds to which equation.

x + 2y = -8   ⇒   y = -x/2 - 4

is the line with slope -1/2 and intercept (0, -4), so the first inequality refers to the lower line in the graph.

For the inequality itself, the solution set that satisfies it is either the region above or below it. To decide which, pick any point in the plane and plug its coordinates into the inequality. The origin is a natural choice, since it's not on the line and working with 0s is easy.

In the first inequality, we have

x = 0 and y = 0   ⇒   0 + 2•0 = 0 < -8

which is not true. So (0, 0) is not in the solution set, and it stands to reason that any point in the same region will not be a solution. In other words, the region above the line x + 2y = -8 does not satisfy the inequality, while the one below it does.

In the second inequality,

x = 0 and y = 0   ⇒   2•0 + 0 = 0 ≥ -1

which is true. This means the region containing (0, 0) above the upper line solves the second inequality.

The solution to the system of inequalities is then the intersection of these two regions. (See attached; I've labeled the solution to the first inequality in blue, the solution to the second one in red, and the solution to both in green.)

All this work is kind of overkill for this particular question, though. All you really need to do is check if the given point satisfies the inequalities:

• (-5, 5) :

x = -5 and y = 5   ⇒   -5 + 2•5 = 5 < -8   ⇒   NO

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x = 2 and y = -5   ⇒   -2 + 2•5 = 8 < -8   ⇒   NO

• (-4, -6) :

x = -4 and y = -6   ⇒   -4 + 2•(-6) = -16 < -8   ⇒   MAYBE

x = -4 and y = -6   ⇒   2•(-4) + (-6) = -14 < -8   ⇒   YES

• (5, -7) :

x = 5 and y = -7   ⇒   5 + 2•(-7) = -9 < -8   ⇒   MAYBE

x = 5 and y = -7   ⇒   2•5 + (-7) = 3 < -8   ⇒   NO

4. x is the number of candy boxes with chocolates and y is the number of boxes without chocolates. Each of the x boxes cost $27.50, so if you have x boxes, their total cost is $27.5x. Each of the y boxes cost $25.00, so y boxes cost $25y. The sponsor doesn't want to order more than 100 boxes total, so

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This means Regions II and III solve the first inequality.

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This tells us that Regions I and II solve the second inequality.

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