Question

lesson 3 rsg
two common strategies for solving systems of equations are graphing and substitution. in previous units, solving systems of linear equations has been done with these two methods. use the same methods and apply them to the systems below.
for these systems, show how to solve algebraically and with a graph. you may use graphing technology if you desire.

1. \\(\

$$\begin{cases} y = x^2 + 5x \\\\ y = 6 \\end{cases}$$

\\)
a. solve by substitution.
b. solve by graphing.
\\(\

$$\begin{cases} y = x^2 - 3x - 10 \\\\ y = -2x + 10 \\end{cases}$$

\\)
a. solve by substitution.
b. solve by graphing.

Explanation:

Problem 14

Part a: Solve by substitution

Step 1: Substitute \( y = 6 \) into the first equation

We have the system \(

$$\begin{cases}y = x^2 + 5x\\y = 6\end{cases}$$

\). Substitute \( y = 6 \) into \( y=x^2 + 5x \), we get \( 6=x^2 + 5x \).

Step 2: Rearrange into standard quadratic form

Rearrange the equation \( 6=x^2 + 5x \) to \( x^2+5x - 6=0 \).

Step 3: Factor the quadratic equation

Factor \( x^2+5x - 6 \). We need two numbers that multiply to \(- 6\) and add to \(5\). The numbers are \(6\) and \(- 1\). So, \(x^2+5x - 6=(x + 6)(x - 1)=0\).

Step 4: Solve for \(x\)

Set each factor equal to zero: \(x+6 = 0\) or \(x - 1=0\). Solving these, we get \(x=-6\) or \(x = 1\).

Step 1: Analyze the first equation \(y=x^2 + 5x\)

The equation \(y=x^2+5x\) is a parabola. The vertex of a parabola \(y = ax^2+bx + c\) is at \(x=-\frac{b}{2a}\). Here, \(a = 1\), \(b = 5\), so \(x=-\frac{5}{2}=-2.5\). Substitute \(x=-2.5\) into \(y=x^2 + 5x\), we get \(y=(-2.5)^2+5\times(-2.5)=6.25-12.5=-6.25\). So the vertex is \((-2.5,-6.25)\). The parabola opens upwards since \(a = 1>0\).

Step 2: Analyze the second equation \(y = 6\)

The equation \(y = 6\) is a horizontal line.

Step 3: Find the intersection points

To graph, plot the parabola \(y=x^2 + 5x\) and the line \(y = 6\). The points where they intersect are the solutions. From the algebraic solution, we know the intersection points are \((-6,6)\) and \((1,6)\). When we graph the parabola (opening upwards, vertex at \((-2.5,-6.25)\)) and the horizontal line \(y = 6\), we can see that they intersect at \(x=-6\) and \(x = 1\) (with \(y = 6\) in both cases).

Step 1: Substitute \(y=-2x + 10\) into the first equation

We have the system \(

$$\begin{cases}y=x^2-3x - 10\\y=-2x + 10\end{cases}$$

\). Substitute \(y=-2x + 10\) into \(y=x^2-3x - 10\), we get \(-2x + 10=x^2-3x - 10\).

Step 2: Rearrange into standard quadratic form

Rearrange the equation \(-2x + 10=x^2-3x - 10\) to \(x^2-3x+2x-10 - 10=0\), which simplifies to \(x^2-x - 20=0\).

Step 3: Factor the quadratic equation

Factor \(x^2-x - 20\). We need two numbers that multiply to \(-20\) and add to \(-1\). The numbers are \(-5\) and \(4\). So, \(x^2-x - 20=(x - 5)(x + 4)=0\).

Step 4: Solve for \(x\)

Set each factor equal to zero: \(x - 5=0\) or \(x + 4=0\). Solving these, we get \(x = 5\) or \(x=-4\).

Step 5: Find the corresponding \(y\) values

• When \(x = 5\), substitute into \(y=-2x + 10\), \(y=-2\times5+10=0\).
• When \(x=-4\), substitute into \(y=-2x + 10\), \(y=-2\times(-4)+10=8 + 10=18\).

Answer:

The solutions are \((-6,6)\) and \((1,6)\)

Part b: Solve by graphing