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question 1
Solve the system of equations and choose the correct answer from the list of options.
d + e = 15
−d + e = −5
Label the ordered pair as (d, e).
A (0, 0)
B (10, −5)
C (5, 10)
D (10, 5)
question2
A set of equations is given below:
Equation S: y = x + 9
Equation T: y = 2x + 1
Which of the following steps can be used to find the solution to the set of equations?
A x = 2x + 1
B x + 9 = 2x
C x + 1 = 2x + 9
D x + 9 = 2x + 1
Question 3
A set of equations is given below:
Equation C: y = 6x + 9
Equation D: y = 6x + 2
Which of the following options is true about the solution to the given set of equations?
A One solution
B No solution
C Two solutions
D Infinite solutions
question 4
Solve the system of equations and choose the correct answer from the list of options.
2x + y = −4
y = 3x + 2
A negative 6 over five comma negative 8 over 5
B negative 8 over 5 comma negative 6 over 5
C negative 5 over 6 comma negative 11 over 5
D negative 11 over 5 comma negative 6 over 5
question 5
A system of equations is given below:
y = –2x + 1
6x + 2y = 22
Which of the following steps could be used to solve by substitution?
A 6x + 2(−2x + 1) = 22
B −2x + 1 = 6x + 2y
C 6(−2x + 1) + 2y = 22
D 6(y = −2x + 1)

Respuesta :

meredith48034
1. d
2. d
3. b
4. a
5. a
those are the answers to the questions
lublana

Answer:

1.D

2.D

3.B

4.A

5.A

Step-by-step explanation:

1.We are given that two equations

[tex]d+e=15[/tex]

[tex]-d+e=-5[/tex]

Adding two equations then we get

[tex]2 e=10[/tex]

[tex]e=\frac{10}{2}=5[/tex]

Substitute e=5 in equation one then we get

[tex]5+e=15[/tex]

[tex] d=15-5[/tex]

[tex]d=10[/tex]

Hence, the ordered pair as (10, 5).

Therefore,Option D is true.

2.We are given that two equations

Equation S:[tex]y=x+9[/tex]

Equatin T:[tex]y=2x+1[/tex]

Using substitution method

Substitute the value of y from equation one in equation second then we get

[tex]x+9=2x+1[/tex]

Therefore, option D is true.

3.We are given that two equations

Equation C :[tex]y=6x+9[/tex]

Equation D[tex]:y=6x+2[/tex]

The two equations can be written as

[tex]6x-y+9=0[/tex]

[tex]6x-y+2=0[/tex]

[tex]a_1=6,b_1=-1,c_1=9[/tex]

[tex]a_2=6,b_2=-1,c_2=2[/tex]

[tex]\frac{a_1}{a_2}=\frac{6}{6}=1:1[/tex]

[tex]\frac{b_1}{b_2}=\frac{-1}{-1}=1:1[/tex]

[tex]\frac{c_1}{c_2}=\frac{9}{2}[/tex]

[tex]\frac{a_1}{a_2}=\frac{b_1}{b_2}\neq\frac{c_1}{c_2}[/tex]

Therefore, system of equations have no solution

Hence, option B is true.

4.We are given that two equations

[tex]2x+y=-4[/tex]

[tex]y=3x+2[/tex]

Using substitution method

Substitute value of y from equation second in equation one

Then we get

[tex]2x+3x=2=-4[/tex]

[tex]5 x=-4-2[/tex]

[tex]5 x=-6[/tex]

[tex]x=-\frac{6}{5}[/tex]

Substitute the value of x in equation second then we get

[tex]y=3\times( -\frac{6}{5})+2[/tex]

[tex]y=\frac{-18+10}{5}[/tex]

[tex]y=-\frac{8}{5}[/tex]

Hence, option A is true.

5.We are given that two equations

[tex]y=-2x+1[/tex]

[tex]6x+2y=22[/tex]

Using substitution method

Substitute value of y from equation one in second equation then we get

[tex]6x+2(-2x+1)=22[/tex]

Hence, option A is true.

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