Simultaneous equations degree two
- Thread starter DanDan
- Start date
Hello, DanDan!
With a linear equation and a quadratic equation, Substitution is the suggested method.
Solve [1] for \(\displaystyle y\!:\;y \:=\:4x-7\)
Substitute into [2]: .\(\displaystyle 3x^2 - 4(4x-7) \:=\:7 \quad\Rightarrow\quad 3x^2 - 16x + 21 \:=\:0\)
. . . . \(\displaystyle (x-3)(3x-7) \:=\:0 \quad\Rightarrow\quad x \:=\:\begin{Bmatrix}3 \\ \frac{7}{3} \end{Bmatrix} \quad\Rightarrow\quad y \:=\:\begin{Bmatrix}5 \\ \frac{7}{3}\end{Bmatrix} \)
With a linear equation and a quadratic equation, Substitution is the suggested method.
Solve [1] for \(\displaystyle y\!:\;y \:=\:4x-7\)
Substitute into [2]: .\(\displaystyle 3x^2 - 4(4x-7) \:=\:7 \quad\Rightarrow\quad 3x^2 - 16x + 21 \:=\:0\)
. . . . \(\displaystyle (x-3)(3x-7) \:=\:0 \quad\Rightarrow\quad x \:=\:\begin{Bmatrix}3 \\ \frac{7}{3} \end{Bmatrix} \quad\Rightarrow\quad y \:=\:\begin{Bmatrix}5 \\ \frac{7}{3}\end{Bmatrix} \)
