Solve for x, y
x = \frac{9}{7} = 1\frac{2}{7} \approx 1.285714286
y = \frac{81}{7} = 11\frac{4}{7} \approx 11.571428571
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3x+2y=27,10x+2y=36
To solve a pair of equations using substitution, first solve one of the equations for one of the variables. Then substitute the result for that variable in the other equation.
3x+2y=27
Choose one of the equations and solve it for x by isolating x on the left hand side of the equal sign.
3x=-2y+27
Subtract 2y from both sides of the equation.
x=\frac{1}{3}\left(-2y+27\right)
Divide both sides by 3.
x=-\frac{2}{3}y+9
Multiply \frac{1}{3} times -2y+27.
10\left(-\frac{2}{3}y+9\right)+2y=36
Substitute -\frac{2y}{3}+9 for x in the other equation, 10x+2y=36.
-\frac{20}{3}y+90+2y=36
Multiply 10 times -\frac{2y}{3}+9.
-\frac{14}{3}y+90=36
Add -\frac{20y}{3} to 2y.
-\frac{14}{3}y=-54
Subtract 90 from both sides of the equation.
y=\frac{81}{7}
Divide both sides of the equation by -\frac{14}{3}, which is the same as multiplying both sides by the reciprocal of the fraction.
x=-\frac{2}{3}\times \frac{81}{7}+9
Substitute \frac{81}{7} for y in x=-\frac{2}{3}y+9. Because the resulting equation contains only one variable, you can solve for x directly.
x=-\frac{54}{7}+9
Multiply -\frac{2}{3} times \frac{81}{7} by multiplying numerator times numerator and denominator times denominator. Then reduce the fraction to lowest terms if possible.
x=\frac{9}{7}
Add 9 to -\frac{54}{7}.
x=\frac{9}{7},y=\frac{81}{7}
The system is now solved.
3x+2y=27,10x+2y=36
Put the equations in standard form and then use matrices to solve the system of equations.
\left(\begin{matrix}3&2\\10&2\end{matrix}\right)\left(\begin{matrix}x\\y\end{matrix}\right)=\left(\begin{matrix}27\\36\end{matrix}\right)
Write the equations in matrix form.
inverse(\left(\begin{matrix}3&2\\10&2\end{matrix}\right))\left(\begin{matrix}3&2\\10&2\end{matrix}\right)\left(\begin{matrix}x\\y\end{matrix}\right)=inverse(\left(\begin{matrix}3&2\\10&2\end{matrix}\right))\left(\begin{matrix}27\\36\end{matrix}\right)
Left multiply the equation by the inverse matrix of \left(\begin{matrix}3&2\\10&2\end{matrix}\right).
\left(\begin{matrix}1&0\\0&1\end{matrix}\right)\left(\begin{matrix}x\\y\end{matrix}\right)=inverse(\left(\begin{matrix}3&2\\10&2\end{matrix}\right))\left(\begin{matrix}27\\36\end{matrix}\right)
The product of a matrix and its inverse is the identity matrix.
\left(\begin{matrix}x\\y\end{matrix}\right)=inverse(\left(\begin{matrix}3&2\\10&2\end{matrix}\right))\left(\begin{matrix}27\\36\end{matrix}\right)
Multiply the matrices on the left hand side of the equal sign.
\left(\begin{matrix}x\\y\end{matrix}\right)=\left(\begin{matrix}\frac{2}{3\times 2-2\times 10}&-\frac{2}{3\times 2-2\times 10}\\-\frac{10}{3\times 2-2\times 10}&\frac{3}{3\times 2-2\times 10}\end{matrix}\right)\left(\begin{matrix}27\\36\end{matrix}\right)
For the 2\times 2 matrix \left(\begin{matrix}a&b\\c&d\end{matrix}\right), the inverse matrix is \left(\begin{matrix}\frac{d}{ad-bc}&\frac{-b}{ad-bc}\\\frac{-c}{ad-bc}&\frac{a}{ad-bc}\end{matrix}\right), so the matrix equation can be rewritten as a matrix multiplication problem.
\left(\begin{matrix}x\\y\end{matrix}\right)=\left(\begin{matrix}-\frac{1}{7}&\frac{1}{7}\\\frac{5}{7}&-\frac{3}{14}\end{matrix}\right)\left(\begin{matrix}27\\36\end{matrix}\right)
Do the arithmetic.
\left(\begin{matrix}x\\y\end{matrix}\right)=\left(\begin{matrix}-\frac{1}{7}\times 27+\frac{1}{7}\times 36\\\frac{5}{7}\times 27-\frac{3}{14}\times 36\end{matrix}\right)
Multiply the matrices.
\left(\begin{matrix}x\\y\end{matrix}\right)=\left(\begin{matrix}\frac{9}{7}\\\frac{81}{7}\end{matrix}\right)
Do the arithmetic.
x=\frac{9}{7},y=\frac{81}{7}
Extract the matrix elements x and y.
3x+2y=27,10x+2y=36
In order to solve by elimination, coefficients of one of the variables must be the same in both equations so that the variable will cancel out when one equation is subtracted from the other.
3x-10x+2y-2y=27-36
Subtract 10x+2y=36 from 3x+2y=27 by subtracting like terms on each side of the equal sign.
3x-10x=27-36
Add 2y to -2y. Terms 2y and -2y cancel out, leaving an equation with only one variable that can be solved.
-7x=27-36
Add 3x to -10x.
-7x=-9
Add 27 to -36.
x=\frac{9}{7}
Divide both sides by -7.
10\times \frac{9}{7}+2y=36
Substitute \frac{9}{7} for x in 10x+2y=36. Because the resulting equation contains only one variable, you can solve for y directly.
\frac{90}{7}+2y=36
Multiply 10 times \frac{9}{7}.
2y=\frac{162}{7}
Subtract \frac{90}{7} from both sides of the equation.
y=\frac{81}{7}
Divide both sides by 2.
x=\frac{9}{7},y=\frac{81}{7}
The system is now solved.
Examples
Quadratic equation
{ x } ^ { 2 } - 4 x - 5 = 0
Trigonometry
4 \sin \theta \cos \theta = 2 \sin \theta
Linear equation
y = 3x + 4
Arithmetic
699 * 533
Matrix
\left[ \begin{array} { l l } { 2 } & { 3 } \\ { 5 } & { 4 } \end{array} \right] \left[ \begin{array} { l l l } { 2 } & { 0 } & { 3 } \\ { -1 } & { 1 } & { 5 } \end{array} \right]
Simultaneous equation
\left. \begin{cases} { 8x+2y = 46 } \\ { 7x+3y = 47 } \end{cases} \right.
Differentiation
\frac { d } { d x } \frac { ( 3 x ^ { 2 } - 2 ) } { ( x - 5 ) }
Integration
\int _ { 0 } ^ { 1 } x e ^ { - x ^ { 2 } } d x
Limits
\lim _{x \rightarrow-3} \frac{x^{2}-9}{x^{2}+2 x-3}