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belka [17]
4 years ago
13

Tyler wants to buy a jump rope that cost $5, a board game that cost $12, and a playground ball that cost $9. Ha has saved $8 fro

m his allowance , and his uncle gave him $5. How much more money does Tyler need to buy the jump rope, the game, and the ball?
Mathematics
2 answers:
blagie [28]4 years ago
5 0

Answer:

He needs an extra $13.

Step-by-step explanation:

In total, he needs $26 to get all three toys.

His allowance plus money he received from his uncle is $13.

So you take the total amount that he needs subtracted by the amount he already has.

As an equation, it would look like $26 - $13 = $13

Hope that helped!

MA_775_DIABLO [31]4 years ago
4 0
He needs $13 more dollars because 5+12+9=26 and 8+5=13 then you do 26-13=13
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797

Step-by-step explanation:

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200-1 = 199

1+4(199)

4 x 199= 796

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An assembly plant orders a large shipment of electronic circuits each month. The supplier claims that the population proportion
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Answer:

p_v =P(z>2.652)=0.0040  

So the p value obtained was a very low value and using the significance level assumed for example \alpha=0.05 we have p_v so we can conclude that we have enough evidence to reject the null hypothesis, and we can said that at 5% of significance the proportion of defectives is significantly higher than 0.04.  

Step-by-step explanation:

1) Data given and notation  

n=300 represent the random sample taken

X=21 represent the number of defectives (value assumed)

\hat p=\frac{21}{300}=0.07 estimated proportion of defectives

p_o=0.04 is the value that we want to test

\alpha represent the significance level

z would represent the statistic (variable of interest)

p_v represent the p value (variable of interest)  

2) Concepts and formulas to use  

We need to conduct a hypothesis in order to test the claim that the proportion of defectives it's higher than 0.04.:  

Null hypothesis:p\leq 0.04  

Alternative hypothesis:p > 0.04  

When we conduct a proportion test we need to use the z statistic, and the is given by:  

z=\frac{\hat p -p_o}{\sqrt{\frac{p_o (1-p_o)}{n}}} (1)  

The One-Sample Proportion Test is used to assess whether a population proportion \hat p is significantly different from a hypothesized value p_o.

3) Calculate the statistic  

Since we have all the info requires we can replace in formula (1) like this:  

z=\frac{0.07 -0.04}{\sqrt{\frac{0.04(1-0.04)}{300}}}=2.652  

4) Statistical decision  

It's important to refresh the p value method or p value approach . "This method is about determining "likely" or "unlikely" by determining the probability assuming the null hypothesis were true of observing a more extreme test statistic in the direction of the alternative hypothesis than the one observed". Or in other words is just a method to have an statistical decision to fail to reject or reject the null hypothesis.  

The next step would be calculate the p value for this test.  

Since is a right tailed test the p value would be:  

p_v =P(z>2.652)=0.0040  

So the p value obtained was a very low value and using the significance level assumed for example \alpha=0.05 we have p_v so we can conclude that we have enough evidence to reject the null hypothesis, and we can said that at 5% of significance the proportion of defectives is significantly higher than 0.04.  

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