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Question
solution
$x = \underline{\quad\quad}$, $y = \underline{\quad\quad}$ solution
determine what operation(s) you would use to solve each system by elimination.
- $3x + 2y = 1$
$4x + 3y = -2$
addition
subtraction
multiply 1 equation/add
multiply 1 equation/subtract
multiply both equations/add
multiply both equations/subtract
- $2x + 5y = 17$
$6x - 5y = -9$
addition
subtraction
multiply 1 equation/add
multiply 1 equation/subtract
multiply both equations/add
multiply both equations/subtract
- $-2x + 15y = -32$
$7x - 5y = 17$
addition
subtraction
multiply 1 equation/add
multiply 1 equation/subtract
multiply both equations/add
multiply both equations/subtract
solving a system using elimination by addition/subtraction/multiplication
- $2x + 5y = 17$
$6x - 5y = -9$
$x = \underline{\quad\quad}$, $y = \underline{\quad\quad}$ solution
- $7x - 5y = 17$
$-2x + 15y = -32$
$x = \underline{\quad\quad}$, $y = \underline{\quad\quad}$ solution
- $-3x - 3y = 9$
$3x - 4y = 5$
$x = \underline{\quad\quad}$, $y = \underline{\quad\quad}$ solution
- $2x + 6y = 18$
$x + 3y = 9$
$x = \underline{\quad\quad}$, $y = \underline{\quad\quad}$ solution
Step1: Solve system 3
Step1.1: Eliminate x, multiply eq1 by 4, eq2 by 3
$4\times(3x+2y=1) \implies 12x+8y=4$
$3\times(4x+3y=-2) \implies 12x+9y=-6$
Step1.2: Subtract new eq1 from new eq2
$(12x+9y)-(12x+8y)=-6-4$
$y=-10$
Step1.3: Substitute y=-10 into eq1
$3x+2(-10)=1 \implies 3x-20=1 \implies 3x=21 \implies x=7$
Step2: Solve system 4
Step2.1: Eliminate y via addition
$(2x+5y)+(6x-5y)=17+(-9)$
$8x=8 \implies x=1$
Step2.2: Substitute x=1 into eq1
$2(1)+5y=17 \implies 2+5y=17 \implies 5y=15 \implies y=3$
Step3: Solve system 5
Step3.1: Eliminate x via addition
$(-2x+15y)+(7x-5y)=-32+17$
$5x+10y=-15 \implies x+2y=-3$
Step3.2: Isolate x, substitute into eq2
$x=-3-2y$
$7(-3-2y)-5y=17 \implies -21-14y-5y=17 \implies -19y=38 \implies y=-2$
Step3.3: Substitute y=-2 into x expression
$x=-3-2(-2)=-3+4=1$
Step4: Solve system 6
Step4.1: Eliminate y via addition
$(2x+5y)+(6x-5y)=17+(-9)$
$8x=8 \implies x=1$
Step4.2: Substitute x=1 into eq1
$2(1)+5y=17 \implies 5y=15 \implies y=3$
Step5: Solve system7
Step5.1: Eliminate x via addition
$(7x-5y)+(-2x+15y)=17+(-32)$
$5x+10y=-15 \implies x+2y=-3$
Step5.2: Isolate x, substitute into eq1
$x=-3-2y$
$7(-3-2y)-5y=17 \implies -21-19y=17 \implies -19y=38 \implies y=-2$
Step5.3: Substitute y=-2 into x expression
$x=-3-2(-2)=1$
Step6: Solve system8
Step6.1: Eliminate x via subtraction
$(-3x-3y)-(3x-4y)=9-5$
$-6x+y=4$
Step6.2: Isolate y, substitute into eq1
$y=6x+4$
$-3x-3(6x+4)=9 \implies -3x-18x-12=9 \implies -21x=21 \implies x=-1$
Step6.3: Substitute x=-1 into y expression
$y=6(-1)+4=-2$
Step7: Solve system9
Step7.1: Eliminate x, multiply eq2 by 2
$2\times(x+3y=9) \implies 2x+6y=18$
Step7.2: Subtract new eq2 from eq1
$(2x+6y)-(2x+6y)=18-18 \implies 0=0$
Infinite solutions: $x=9-3y$ for all real y
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- Infinite solutions: $x=9-3y$ (for any real number $y$)