Nine cuboidal boxes and eight cuboidal boxes can each hold 153 and 136 toy cars, respectively.
How is the average calculated?
The ratio of the sum of all provided observations to the total number of observations is the arithmetic mean, which is another name for the average formula. So, any sample of data may have its arithmetic mean determined using the average formula.
What does arithmetic mean?
The mean or arithmetic average are terms that are frequently used to refer to the arithmetic mean. It is determined by adding up all the numbers in a given data collection, then dividing that total by the number of items in the data set. For uniformly distributed integers, the middle number is the arithmetic mean (AM).
Given: There are two storage options for 288 toy cars: 16 and 18 cuboidal boxes.
supposing there were 288 toy cars stored in 16 toy cars.
There are 18 toy cars in a box of 288 (288 / 16) toy cars.
if 288 toy cars were housed in 18 toy cars.
There are 16 toy cars in a box that holds 288 toy cars.
Average: 18 + 16 / 2 = 34 / 2 = 17 toy cars.
Nine boxes of toy cars include 153 toy cars (9 * 17).
eight boxes of toy cars include 136 toy cars (8 * 17)
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are the following statements true or false? [true or false]1. if the augmented matrix has a pivot position in every row, then the system is inconsistent. [true or false]2. a vector is a linear combination of the columns of a matrix if and only if the equation has at least one solution. [true or false] 3. if the columns of an matrix span , then the equation is consistent for each in [true or false]4. any linear combination of vectors can always be written in the form for a suitable matrix and vector . [true or false]5. if the system is inconsistent, then is not in the column space of . [true or false]6. the equation is referred to as a vector equation. [true or false]7. if is an matrix and if the equation is inconsistent for some in , then the rref of cannot have a pivot position in every row. [true or false]
From the following statements: statement 1 and statement 6th is false, rest are true about matrix and vector.
1. if the augmented matrix has a pivot position in every row, then the system is inconsistent, this statement is false.
2. a vector is a linear combination of the columns of a matrix if and only if the equation has at least one solution, this statement is true.
3. if the columns of an matrix span , then the equation is consistent for each in b in R^m, this statement is true.
4. any linear combination of vectors can always be written in the form Ax for suitable matrix A and vector x, this statement is true.
5. if the system Ax = b is inconsistent, then b is not in the column space of A, this statement is true.
6. The equation Ax = b is referred to as a vector equation, this statement is false.
7. if A is an matrix and if the equation Ax = b is inconsistent for some in , then the RRef of A cannot have a pivot position in every row, this statement is true.
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The admission fee at an amusement park is $4.00 for children and $6.00 for adults. On a certain day, 321
people entered the park, and the admission fees collected totaled 1574 dollars. How many children and
how many adults were admitted?
number of children equals?
number of adults equals?
There were 44 children and 365 adults.
How to find the number of children and adultsLet x = the number of children and
y = the number of adults.
First equation: Children cost $4 and Adults cost $6.00.
In order to find the amount of money a group of children will cost, we multiply the number of children, x, by 4.
This is represented by 4x.
For adults, who cost 6 dollars to enter, we will use 6y.
The total amount of money made on the given day was $1574. To get this amount, we must add 4x and 6y.
14x+6y=1574 --------(1)
Second equation:
Total amount of people on the given day is 321.
To get this number, we must add together x and y, or the number of children and adults.
x + y = 321-----(2)
System of equations:
14x+6y=1574
x + y = 321
Let's use the substitution of the x variable to solve the system.
x + y = 321
y = 321 - x
Substitute y= 321 - x into the first equation.
14x+6(321 - x)=1574
14x + 1926 -6x = 1574
8x = - 352
x = 44
Substitute x = 44 back into y = 321 - x
y = 321 - (- 44)
y=365
There were 44 children and 365 adults.
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true-false questions: justify your answers. 1.13 the solution set to a system of three equations in three unknowns cannot be a plane. 1.14 a system of linear equations cannot have only two solutions. 1.15 the solution set to a consistent rank 2 linear system in four unknowns would be a line in four-dimensional space. 1.16 a system of four equations in four unknowns always has a solution. 1.17 a system of four equations in four unknowns can have at most one solution. 1.18 the rank of a system is always less than or equal to the number of equations in the system. 1.19 use geometric reasoning to answer the following questions concerning systems (i) and (ii) below: (a) if (i) has exactly one solution, then the same is true for (ii). (b) if the solution set of (i) is a line, then the same is true for (ii). (c) if (i) has no solutions, then the same is true for (ii). (i) a1x b1y c1z
The True- False of given statements of Solutions of Equations are justified.
1.13 False. The solution set to a system of three equations in three unknowns can be a point, a line, or a plane. It depends on the system of equations and how they intersect in three-dimensional space.
1.14 False. A system of linear equations can have infinitely many solutions, one solution, or no solutions. It depends on the coefficients of the equations and the rank of the coefficient matrix.
1.15 False. The solution set to a consistent rank 2 linear system in four unknowns would be a plane in four-dimensional space, not a line.
1.16 False. A system of four equations in four unknowns may not have a solution, or it may have infinitely many solutions or one solution. It depends on the coefficients of the equations and the rank of the coefficient matrix.
1.17 False. A system of four equations in four unknowns can have infinitely many solutions or one solution, but it cannot have at most one solution.
1.18 True. The rank of a system is always less than or equal to the number of equations in the system.
1.19 (a) False. If (i) has exactly one solution, it does not necessarily mean that (ii) will have exactly one solution. It depends on the coefficients of the equations in (ii).
(b) False. If the solution set of (i) is a line, it does not necessarily mean that the same is true for (ii). It depends on the coefficients of the equations in (ii).
(c) True. If (i) has no solutions, then the same is true for (ii), since (ii) is equivalent to (i).
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City Cabs charges a $2.50 pickup fee and $1.75 per mile traveled. Diego's fare for a cross-town cab ride is $25.25. How far did he travel in the cab?
Diego paid $25.25 to travel 13 miles.
What is an equation?An equation is an expression that shows the relationship between two or more numbers and variables using mathematical operations. An equation can be linear, quadratic, cubic and so on, depending on the degree of the variable.
The slope intercept form of the linear equation is:
y = mx + b
where m is the slope and b is the initial value.
Let y represent the total cost for travelling x miles.
City Cabs charges a $2.50 pickup fee and $1.75 per mile traveled. Hence:
y = 1.75x + 2.5
If the cab ride is $25.25:
25.25 = 1.75x + 2.5
x = 13 miles
He travelled 13 miles.
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In trapezoid PQRS, the lengths marked
are in feet. What is the area of the
trapezoid in square feet?
S
5
3
P 10
F.
44
G. 50
H. 62.5
J. 88
K. 100 dion
12
Q
R
The areas of the trapezoid is 50 units².
How to find the area of a trapezoid?The trapezoid PQRS have bases 10 and 12 units respectively. The height of the trapezoid is unknown. Let's find the area of the trapezoid as follows:
area of trapezoid = 1 / 2 (a + b)h
where
a and b are the basesh = height of the trapezoidTherefore,
a = 10 units
b = 15 units
Using Pythagoras's theorem,
5² - 3² = h²
h = √25 - 9
h = √16
h = 4 units
area of trapezoid = 1 / 2 (10 + 15)4
area of trapezoid = 1 / 2 × 25 × 4
area of trapezoid = 100 / 2
area of trapezoid = 50 units²
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Please help with this math question!
Answer:
so
2×4.57 = (3V/2pi)^1/3
Volume is approximately = 1600
A model is being built of a car. The car is 12 feet long and 6 feet wide if the length of the model is 4 inches how wide should the model be.
please hurry
The model would be 2 inches wide.
What is a scale factor?The ratio of the scale of an original thing to a new object that is a representation of it but of a different size is known as a scale factor (bigger or smaller).
Given:
A model is being built of a car.
The car is 12 feet long and 6 feet wide.
The length of the model is 4 inches.
The scale factor x is,
= 4/12
= 1/3
The width of the model is,
= 6 x 1/3
= 2 inches.
Therefore, the width is 2 inches.
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label the protein structure level on lines 1,2,3, and 4 and label the two structures on the lines under (2). describe the characteristics of each structural level in the corresponding boxes below the drawings.
The characteristics of each structural level in the corresponding boxes are hydrogen bonds, amino acids, and disulfide bonds
Protein structure is a key concept in biology, and it refers to the organization of amino acid sequences into three-dimensional structures. The different levels of protein structure are primary, secondary, tertiary, and quaternary.
On line 1, we have the primary structure, which refers to the linear sequence of amino acids in a protein. It is determined by the DNA sequence of the gene that encodes the protein. Each amino acid is joined to the next one by a peptide bond, forming a polypeptide chain.
On line 2, we have the secondary structure, which refers to the local folding of the polypeptide chain. The two structures depicted on the lines under line 2 are the alpha-helix and the beta-sheet. The alpha-helix is a coiled structure in which the polypeptide chain is twisted into a spiral shape, held together by hydrogen bonds. The beta-sheet is a flat structure in which the polypeptide chain is folded into a zigzag pattern, also held together by hydrogen bonds.
On line 3, we have the tertiary structure, which refers to the overall three-dimensional shape of a single polypeptide chain. It is determined by the interactions between amino acid side chains, such as hydrophobic interactions, hydrogen bonds, disulfide bonds, and van der Waals forces. The tertiary structure can be globular or fibrous, depending on the protein's function.
On line 4, we have the quaternary structure, which refers to the arrangement of multiple polypeptide chains in a protein complex. Some proteins consist of a single polypeptide chain, while others consist of two or more chains that interact with each other to form a functional unit. The quaternary structure is also determined by the same types of interactions as the tertiary structure.
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Consider randomly selecting a student at a large university, and let A be the event that the selected student has a Visa card and B be the analogous event for MasterCard. Suppose that P(A) = 0.7 and P(B) = 0.4.
A. Could it be the case that P(A ∩ B) = 0.5? Pick one:
i. Yes, this is possible. Since B is contained in the event A ∩ B, it must be the case that P(B) ≤ P(A ∩ B) and 0.5 > 0.4 does not violate this requirement.
ii. Yes, this is possible. Since A ∩ B is contained in the event B, it must be the case that P(B) ≤ P(A ∩ B) and 0.5 > 0.4 does not violate this requirement.
iii. No, this is not possible. Since B is equal to A ∩ B, it must be the case that P(A ∩ B) = P(B). However 0.5 > 0.4 violates this requirement.
iiii. No, this is not possible. Since B is contained in the event A ∩ B, it must be the case that P(A ∩ B) ≤ P(B). However 0.5 > 0.4 violates this requirement.
v. No, this is not possible. Since A ∩ B is contained in the event B, it must be the case that P(A ∩ B) ≤ P(B). However 0.5 > 0.4 violates this requirement.
B. From now on, suppose that P(A ∩ B) = 0.3. What is the probability that the selected student has at least one of these two types of cards?
C. What is the probability that the selected student has neither type of card?
D. In terms of A and B, the event that the selected student has a Visa card but not a MasterCard is A ∩ B' . Calculate the probability of this event.
E. Calculate the probability that the selected student has exactly one of the two types of cards.
A. (iv) No the case that P(A ∩ B) = 0.5 is not possible. Since B is contained in the event A ∩ B, it must be the case that P(A ∩ B) ≤ P(B). However, 0.5 > 0.4 violates this requirement. (iv)
B. To find the probability that the selected student has at least one of these two types of cards, we can use the formula:
P(A ∪ B) = P(A) + P(B) - P(A ∩ B)
Substituting the values, we get:
P(A ∪ B) = 0.7 + 0.4 - 0.3 = 0.8
Therefore, the probability that the selected student has at least one of these two types of cards is 0.8.
C. The probability that the selected student has neither type of card can be calculated as the complement of the event that the student has at least one of these two types of cards. Therefore,
P(neither A nor B) = 1 - P(A ∪ B) = 1 - 0.8 = 0.2
D. The event that the selected student has a Visa card but not a MasterCard can be written as A ∩ B'. We can calculate its probability as:
P(A ∩ B') = P(A) - P(A ∩ B) = 0.7 - 0.3 = 0.4
E. To calculate the probability that the selected student has exactly one of the two types of cards, we can use the formula:
P(exactly one of A or B) = P(A ∪ B) - P(A ∩ B)
Substituting the values, we get:
P(exactly one of A or B) = 0.8 - 0.3 = 0.5
Therefore, the probability that the selected student has exactly one of the two types of cards is 0.5.
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The radius of a circle of area A and circumference C is doubled. Find the new area in terms of A. Find the new circumference of the circle in terms of C.
The new area is 4A and the new circumference is 2C.
To find the new area of the circle, we need to use the formula for the area of a circle: A = πr^2, where r is the radius of the circle. If we double the radius, we get a new radius of 2r. So, the new area can be found as:
New Area = π(2r)^2 = π(4r^2) = 4πr^2Thus, the new area is four times the original area.
To find the new circumference of the circle, we use the formula for the circumference of a circle: C = 2πr. Doubling the radius, we get a new radius of 2r. So, the new circumference can be found as:
New Circumference = 2π(2r) = 4πr
Thus, the new circumference is four times the original circumference.
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At 11:00 am, Meg left Point A traveling 30 mph. Two hours later, Jack left Point A
traveling 45 mph, along the same route. At what time will Jack catch up to Meg?
Show your work.
Using algebraic equations, the time Jack will catch up to Meg is 8 hours later, which is 7:00 pm.
How to Apply Algebraic Equations to Solve Problems?Applying algebraic equations, let's start by finding out how far Meg traveled in the two hours before Jack started traveling.
Distance traveled by Meg in 2 hours = (2 hours) x (30 miles/hour) = 60 miles
Now, let's consider the time it takes for Jack to catch up to Meg. Let t be the time elapsed since Jack started traveling.
During this time, Meg will have traveled for t + 2 hours (since she started 2 hours earlier).
Distance traveled by Jack = (45 miles/hour) x t
Distance traveled by Meg = (30 miles/hour) x (t + 2) + 60 miles
Since Jack catches up to Meg at the same point in the route, their distances traveled must be equal:
(45 miles/hour) x t = (30 miles/hour) x (t + 2) + 60 miles
Simplifying this equation:
45t = 30t + 60 + 60
15t = 120
t = 8
Therefore, Jack will catch up to Meg 8 hours after Meg started traveling (remember that Meg started at 11:00 am, so 8 hours later is 7:00 pm).
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You roll a die and pick a card. How many outcomes are possible?
567
8
The number of possible outcomes when you roll the die would be 6
How to solve for the possible outcome in a dieA die is known to have only 6 faces. The 6 faces are numbered from number 1 to number 6
Such that the sample space that we would have would be given as
SS = {1, 2, 3, 4, 5, 6}
Hence the number of outcomes that we would be able to have from one die would be given as 6
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Let x be a random variable that possesses a binomial distribution with p=0.6 and n=5. Using the
binomial formula or tables, calculate the following probabilities. Also calculate the mean and standard
deviation of the distribution. Round solutions to four decimal places, if necessary.
Answer:
Let X ~ B(0.6, 5)
Prob of success = 0.6 Prob of failure = 0.4
Amount of samples = 5
P(X [tex]\geq[/tex] 3) = P(3) + P(4) + P(5)
= (5C3 x (0.6)^3 x (0.4)^2) + (5C4 x (0.6)^4 x (0.4)) + (0.6)^5
= 0.6826 (cor to 4 dp)
P(X [tex]\leq[/tex] 4) = P(0) + P(1) + P(2) + P(3) + P(4)
= 1 - P(5)
= 1 - (0.6)^5
= 0.9222 (cor to 4 dp)
P(X = 2) = P(2) = (5C2 x (0.6)^2 x (0.4)^3) = 0.2304
Mean = n x p = 5 x 0.6 = 3
Standard deviation = n x p x ( 1 - p) = 5 x 0.6 x (1 - 0.6) = 5 x 0.6 x 0.4 = 1.2
Find the equation of a line perpendicular to y = x + 1 that passes through the
point (8,-3).
The Equation of line perpendicular to line y = x + 1 and passes through (8,-3) is y= -x+ 5.
What is Slope?A line's b is determined by how its y coordinate changes in relation to how its x coordinate changes. y and x are the net changes in the y and x coordinates, respectively. Therefore, it is possible to write the change in y coordinate with respect to the change in x coordinate as,
m = Δy/Δx where, m is the slope
Given:
Equation: y= x+ 11
Now, the slope of perpendicular have the slope equal to negative reciprocal so that the product of slope of perpendicular line is -1.
Then, the slope of perpendicular line is, m= -1.
As, line passes through (8, -3) then the slope intercept form
y= mx+ b
-3 = (-1)(8)+ b
-3 = -8 +b
b= 5
Thus, the Equation of line is y= -x+ 5.
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Assume that a student is chosen at random from a class. Determine whether the events A and B are independent, mutually exclusive, or neither.
A: The student is a senior. B: The student is a freshman.
a. The events A and B are independent. b. The events A and B are mutually exclusive.
c. The events A and B are neither independent nor mutually exclusive
A and B are mutually exclusive, meaning that a student can only be a senior or a freshman, but not both.
If events A and B are independent, the occurrence of one event does not affect the probability of the other event occurring. Mathematically, we can write this as:
P(A and B) = P(A) x P(B)
In our case, event A represents the probability that a student is a senior and event B represents the probability that a student is a freshman. Since a student can only be one of these options, the events are mutually exclusive. Mathematically, we can write this as:
P(A and B) = 0
Therefore, we can conclude that events A and B are mutually exclusive.
It's important to note that events can also be neither independent nor mutually exclusive. If events A and B are not independent or mutually exclusive, then the occurrence of one event affects the probability of the other event occurring. In this case, the formula for the probability of both events occurring is:
P(A and B) = P(A) + P(B) - P(A or B)
However, since events A and B are mutually exclusive, we do not need to use this formula.
Therefore, the correct option is (a).
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The distance from the origin to the point (−15, 36)
[tex]~~~~~~~~~~~~\textit{distance between 2 points} \\\\ \stackrel{ origin }{(\stackrel{x_1}{0}~,~\stackrel{y_1}{0})}\qquad (\stackrel{x_2}{-15}~,~\stackrel{y_2}{36})\qquad \qquad d = \sqrt{( x_2- x_1)^2 + ( y_2- y_1)^2} \\\\\\ d=\sqrt{(~~-15 - 0~~)^2 + (~~36 - 0~~)^2} \implies \implies d=\sqrt{( -15 )^2 + ( 36 )^2} \\\\\\ d=\sqrt{ 225 + 1296 } \implies d=\sqrt{ 1521 }\implies d=39[/tex]
of 2: Determine the domain and range of the graph below
The range of the graph is,
⇒ Range = { y | - 1 < y < 3 }
The domain of the graph is,
⇒ Domain = { x | - 4 < x < 2 }
What is an expression?Mathematical expression is defined as the collection of the numbers variables and functions by using operations like addition, subtraction, multiplication, and division.
Given that;
The graph is shown in figure.
Now, We know that;
The range of the graph is the value of y where the function of graph is defined.
Hence, The range of the graph is,
⇒ Range = { y | - 1 < y < 3 }
And, The domain of the function is defined the value of y where the function of graph is defined.
Hence, The domain of graph is,
⇒ Domain = { x | - 4 < x < 2 }
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This problem relates to the QDA model, in which the observations within each class are drawn from a normal distribution with a class- specific mean vector and a class specific covariance matrix. We con- sider the simple case where p = 1; i.e. there is only one feature. Suppose that we have K classes, and that if an observation belongs to the kth class then X comes from a one-dimensional normal dis- tribution, X ~ N(uk, o?). Recall that the density function for the one-dimensional normal distribution is given in (4.16). Prove that in this case, the Bayes classifier is not linear. Argue that it is in fact quadratic. Hint: For this problem, you should follow the arguments laid out in Section 4.4.1, but without making the assumption that oỉ = ... o^2k =
In the case of a one-dimensional normal distribution with K classes, the Bayes classifier is not linear but is in fact quadratic.
We begin by noting that the Bayes classifier for the one-dimensional normal distribution is given by:
[tex]h(x) = argmaxk P(Ck|x) = argmaxk P(x|Ck)P(Ck)[/tex]
We can rewrite this as:
[tex]h(x) = argmaxk (1/√2πσk) exp(-1/2σ2k(x-uk)2) P(Ck)[/tex]
We can see that this is a quadratic equation in the form: ax2 + bx + c = 0. We can illustrate this by substituting the values for a, b, and c:
[tex]a = -1/2σ2k[/tex]
b = 0
[tex]c = ln(P(Ck)) - 1/2σ2k u2k[/tex]
We can see that this equation is not linear and is instead quadratic. Therefore, we can conclude that in the case of a one-dimensional normal distribution with K classes, the Bayes classifier is not linear but is in fact quadratic.
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Terrell's company sells candy in packs that are supposed to contain 50% red candies, 25% orange, and 25% yellow. He randomly selected a pack containing 16 candies and counted how many of each color were in the pack. Here are his results: Color Red Orange Yellow Observed counts 9 5 2 He wants to use these results to carry out a x2 goodness-of-fit test to determine if the color distribution disagrees with the target percentages. Which count(s) make this sample fail the large counts condition for this test? Choose 2 answers: A The observed count of yellow candies. B The observed count of orange candies
the counts that make this sample fail the large counts condition for the chi-square goodness-of-fit test are
B) The observed count of orange candies and
C) The observed count of yellow candies.
Given,
Terrell's company sells candy in packs that are supposed to contain 50% red candies, 25% orange, and 25% yellow.
The large counts condition for a chi-square goodness-of-fit test requires that the expected count for each category is at least 5.
To determine which counts in Terrell's sample fail this condition, we first need to calculate the expected counts for each color:
Expected count of red candies = 0.5 x 16 = 8
Expected count of orange candies = 0.25 x 16 = 4
Expected count of yellow candies = 0.25 x 16 = 4
The observed count of red candies meets the large counts condition because the expected count and the observed count are both 8. However, the observed counts of orange and yellow candies do not meet the large counts condition because the expected count for each is 4, but the observed count is less than 5.
Therefore, the counts that make this sample fail the large counts condition for the chi-square goodness-of-fit test are
B) The observed count of orange candies and
C) The observed count of yellow candies.
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the expected orange
and
the expected yellow
Question content area top
Part 1
The brain volumes (cm3) of 50 brains vary from a low of 904 cm3 to a high of 1488 cm3. Use the range rule of thumb to estimate the standard deviation s and compare the result to the exact standard deviation of 156.9 cm3, assuming the estimate is accurate if it is within 15 cm3.
Question content area bottom
Part 1
The estimated standard deviation is enter your response here cm3.
(Type an integer or a decimal. Do not round.)
Answer:
The range rule of thumb states that the estimated standard deviation s is approximately equal to the range divided by 4.
Range = 1488 - 904 = 584 cm3
Therefore, the estimated standard deviation s is approximately:
s = Range / 4 = 584 / 4 = 146 cm3
The given exact standard deviation is 156.9 cm3.
Since the estimate is within 15 cm3 of the exact standard deviation, we can say that the estimate is accurate.
Find a format option that would result in the following output format:
>> 5/16 + 2/7ans = 67/112
The format option that would result in the following output format:
>> 5/16 + 2/7ans = 67/112 is format compact; format rational; format shortG;
To achieve the desired output format of ">> 5/16 + 2/7ans = 67/112", you can use the following format option in MATLAB:
>> format compact; format rational; format shortG;
This sets the format to:
compact, to suppress excess blank lines in output
rational, to display fractions instead of decimal approximations
shortG, to display numbers in short format
With this format option, MATLAB will display the result of the computation as a fraction, and the output will be compact and free of excessive whitespace.
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probability the top 4 cards include 3 different ranks, with one rank apprears twice (for example, an ace of hearts, a 3 of clubs, a 3 of hearts, and a 7 of spades).
(a) The probability that the top card is an ace or a king is [tex]$\frac{2}{13}[/tex]
(b) The probability that the top card is spades and the second card is clubs is [tex]$\frac{1}{2652}[/tex]
(c) The probability that the top card is spades and the second card is an ace is [tex]$ \frac{1}{663}[/tex]
(d) The probability that the top 3 cards are all spades is [tex]$\frac{1}{132600}[/tex]
(e) The probability that the top 4 cards include 3 different ranks, with one rank appears twice is [tex]$\frac{2}{925}[/tex]
As per the data given:
A standard deck of 52 cards has 13 ranks (ace, 2, 3, 4, 5, 6, 7, 8, 9, 10, jack, queen, king) and 4 suits (spades, hearts, diamonds, and clubs), such that there is exactly one card for any given rank and suit.
a) The probability that the top card is an ace or a king:
The probability that the top card is an ace [tex]$\frac{4}{52} = \frac{1}{13}[/tex]
The probability that the top card is an king [tex]$\frac{4}{52}=\frac{1}{13}[/tex]
The probability that the top card is an ace or a king is [tex]$\frac{1}{13} +\frac{1}{13} =\frac{2}{13}[/tex].
b) The probability that the top card is spades is [tex]$\frac{1}{52}[/tex]
Already a card is drawn then the probability that the second card is clubs is [tex]$\frac{1}{51}[/tex]
The probability that the top card is spades and the second card is clubs is [tex]$\frac{1}{52}\times\frac{1}{51} = \frac{1}{2652}[/tex]
c) The probability that the top card is spades is [tex]$\frac{1}{52}[/tex]
Already a card s drawn then the probability that the second card is an ace is [tex]$\frac{4}{51}[/tex]
The probability that the top card is spades and the second card is an ace is [tex]$\frac{1}{52}\times\frac{4}{51} = \frac{4}{2652} = \frac{1}{663}[/tex]
d) The probability that the top 3 cards are all spades is [tex]$\frac{1}{52}\times\frac{1}{51}\times\frac{1}{50} = \frac{1}{132600}[/tex]
e) There are C(52, 4) ways to choose 4 cards from the deck, and the 4 ways to choose the rank that appears twice.
So, the total number of ways to choose 4 cards with 3 different ranks and one rank appearing twice is 4 C(52, 4) = 4 × 270725.
The number of ways to choose the 4 cards such that they include 3 different ranks, with one rank appearing twice is 4 C(13, 2) C(4, 2) = 672.
Hence, the probability is [tex]$\frac{672}{270725} =\frac{2}{925}[/tex]
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A standard deck of 52 cards has 13 ranks (ace, 2, 3, 4, 5, 6, 7, 8, 9, 10, jack, queen, king) and 4 suits (spades, hearts, diamonds, and clubs), such that there is exactly one card for any given rank and suit. The deck is randomly arranged. What is the probability that
(a) the top card is an ace or a king.
(b) the top card is spades and the second card is clubs.
(c) the top card is spades and the second card is an ace.
(d) the top 3 cards are all spades.
(e) the top 4 cards include 3 different ranks, with one rank appears twice (for example, an ace of hearts, a 3 of clubs, a 3 of hearts, and a 7 of spades).
What is 1+57327392393629323
Answer:
57327392393629324
Step-by-step explanation:
An aquarium 6 m long, 1 m wide, and 1 m deep is full of water. Find the work needed to pump half of the water out of the aquarium. (Use 9.8 m/s2 for g and the fact that the density of water is 1000 kg/m3.)
Show how to approximate the required work by a Riemann sum. (Enter xi* as xi.)
n
lim ∑ (____)
i=1
Express the work as an integral ?
Evaluate the integral ?
The work required to pump out half of the water from the aquarium is approximately 2000 J.
The volume of the aquarium is V = (6 m) x (1 m) x (1 m) = 6 cubic meters. Since the density of water is 1000 kg/m3, the mass of the water in the aquarium is m = ρV = 1000 kg/m3 x 6 m3 = 6000 kg.
To pump out half of the water, we need to remove 1/2 x 6000 kg = 3000 kg of water. Since work is force times distance, we need to calculate the force required to lift this mass of water a distance of 1 m (the height of the aquarium).
The force required is F = mg = (3000 kg) x (9.8 m/s2) = 29,400 N. The work done is W = Fd = (29,400 N) x (1 m) = 29,400 J.
To approximate the required work by a Riemann sum, we can divide the height of the aquarium into n subintervals of width Δx, and choose a sample point xi* in each subinterval.
The force required to lift the water in each subinterval is approximately constant, so the work required to lift the water in each subinterval is approximately F(xi*)Δx. The total work required is therefore approximately given by the Riemann sum:
nlim ∑ F(xi*)Δxi= nlim ∑ (1000 x 6 x Δxi x xi*)i=1
Taking the limit as n goes to infinity, this Riemann sum becomes the integral:
∫0^1 1000 x 6 x x dx
Evaluating this integral gives:
∫0^1 6000 x^2 dx = [2000 x^3]0^1 = 2000 J
Therefore, the work required to pump out half of the water from the aquarium is approximately 2000 J. This approximation becomes more accurate as the number of subintervals n becomes larger.
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Arrange the following fractions in order
from least to greatest.
7 15 3 11 13
5 4 2 4 3
The order of the fraction from least of greatest are
3/11 7/154/3 4/213/5How to order the fractionsThe fractions in order from least to greatest.
7/15 3/11 13/5 4/2 4/3
converting to decimals
7/15 = 0.4667
3/11 = 0.2727
13/5 = 2.6
4/2 = 2
4/3 = 1.3333
The order is written as follows
3/11 = 0.2727
7/15 = 0.4667
4/3 = 1.3333
4/2 = 2
13/5 = 2.6
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N
O 0.21
0.34
0.45
O 0.55
5
Mark this and return
6
7
8
For students majoring in Hospitality Management, it was determined that 5% have visited 1-10 states, 16% have
visited 11-20 states, 45% have visited 21-30 states, 19% have visited 31-40 states, and 15% have visited 41-50
states. Suppose a Hospitality Management student is picked at random. What is the probability that the student has
not visited between 21 and 30 states?
10
Save and Exit
ext
Submit
The solution is, 66% that a randomly chosen student has visited 30 or fewer states.
What is probability?Probability can be defined as the ratio of the number of favorable outcomes to the total number of outcomes of an event.
here, we have,
The categories are mutually exclusive, so we have ...
P(≤30) = P(1–10) +P(10–20) +P(20–30)
= 5% +16% +45%
P(≤30) = 66%
The probability is 66% that a randomly chosen student has visited 30 or fewer states.
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If P(A)=.7, P(B)=.3, and A and B are independent, find P(A and B)
Step-by-step explanation:
AND is represented by multiplication.
OR is represented by addition.
so, for independent A and B,
P(A and B) = P(A) × P(B) = 0.7 × 0.3 = 0.21
If two events, A and B, are independent ,then
P([tex]\frac{A}{B}[/tex]) = P(A)
⇒ P(A∩B) / P(B) = P(A)
⇒P(A∩B) = P(A) × P(B)
According to question ,
P(A)=0.7
P(B)=0.3
Since A and B are independent events,
P(A∩B) = P(A) × P(B)
= 0.7 × 0.3
=0.21
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bayes is playing russian roulette. the revolver has six chambers. he puts two bullets in two adjacent chambers, spin the cylinder, hold the gun to his head, and pull the trigger. it clicks. so it is now the second try: he can choose either to spin the cylinder again or leave it as it is. bayes theorem
Probability of survival is 1/2, since only one of the two chambers is loaded. probability of survival is 4/5 is obtained by not re-spinning the chamber.
If I were faced with the choice, I would not choose either option as both choices involve significant risk. Instead, I would opt to not play the game at all as survival cannot be guaranteed.
In scenario mathematically, we can calculate the probabilities of survival for both options.
Let's assume that the chambers are numbered 1, 2, 3, 4, 5, and 6, with chamber 1 being the one that is lined up with the barrel after Bayes' first trigger pull.
If you choose to not re-spin the chamber and directly pull the trigger, the probability of survival is 4/5, since there are 4 remaining chambers that are not loaded.
If you choose to re-spin the chamber, the probability of survival:
The probability that the chamber aligned with the barrel is chamber 3 or 4 is 1/2. Given that chamber 3 or 4 is aligned with the barrel, the probability of survival is 1/2, since only one of the two chambers is loaded.
Therefore, the overall probability of survival if you choose to re-spin the chamber is (1/2) * (1/2) = 1/4.
Thus, the higher probability of survival is obtained by not re-spinning the chamber, with a probability of 4/5.
In the case with only one bullet, the probability of survival would be 5/6, making it a less dangerous scenario than this scenario with two bullets.
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_____The given question is incomplete, the complete question is given below:
bayes is playing russian roulette. the revolver has six chambers. he puts two bullets in two adjacent chambers, spin the cylinder, hold the gun to his head, and pull the trigger. it clicks and you survived.
so it is now the second try: may put the gun straight to your head and pull the trigger, or re-spin the gun before you do the same.
What is your choice and why? How does this differ from the case with only one bullet?
find the sample variance. the increases (in cents) in cigarette taxes for 17 states in a 6-month period are: 60, 20, 40, 40, 45, 12, 34, 51, 30, 70, 42, 31, 69, 32, 8, 18, 50 Use the range rule of thumb to estimate the standard deviation. Compare the estimate to actual standard deviation.
17.6866 is the range rule of thumb to estimate the standard deviation.
How to interpret a standard deviation?
The term "standard deviation" (or "") refers to the degree of dispersion of the data from the mean.
Data are said to be more closely grouped around the mean when the standard deviation is low and more dispersed when the standard deviation is high.
The rule of thumb for estimating standard deviation is given by
σ = Range/4
The range is difference between maximum and minimum values
σ ≈ 70 - 8/4
≈ 15.5
Use Microsoft excel or any other software to calculate the exact standard deviation
σ = √1/n∑ⁿi (xi - x)²
= 17.6866
Our approximated standard deviation is almost equal to actual standard deviation.
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I need the answer I’m doing hw I need 4th 5th and 6th question answer
Answer:
4. Yes it is proportional
5. -2 -1 0 1 2
1 3 5 7 9
6. -8 -4 8 (I don't know pick ur own numbers I guess)
-8 -6.5 -2
Step-by-step explanation:
the line is a bit off look at my old answer.