How did we get from the matrix above to the matrix in the bottom in part c? 10:370 1 -102 -2R3 → R3 -2R₂10-26:30-0V₁ =1thus, we getx₁ - 2x3 = 0x₂x3 = 0letx₁ = 2tx₂ = tStep3c)for1X2:) (²)-(8)X31R₁ →2tt√бi R₁6-1бi2√бi130-0J) ()-(-2=√6i6X11/²¹) (0)√xDo8

Answered: Image /qna-images/answer/b2d4f8e2-3e4f-4597-ba32-d8476b67d529.jpg

Answered: 10:37 01 -1 02-2 R3 → R3 -2R₂ 1 0 -2 0…

10:37 01 -1 02-2 R3 → R3 -2R₂ 1 0 -2 0 1 -1 00 V₁ X2 YO x3 thus, we get x1 - 2x3 = 0 - x₂x3 = 0 let x₁ = 2t x₂ = t = 2t 4 90-0 0 2 -1. 1 t

Algebra & Trigonometry with Analytic Geometry

13th Edition

ISBN:9781133382119

Author:Swokowski

Publisher:Swokowski

Chapter10: Sequences, Series, And Probability

Section10.5: The Binomial Theorem

Problem 16E

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Question

How did we get from the matrix above to the matrix in the bottom in part c?

10:37
0 1 -1
02 -2
R3 → R3 -2R₂
10
-2
6:30-0
V₁ =
1
thus, we get
x₁ - 2x3 = 0
x₂x3 = 0
let
x₁ = 2t
x₂ = t
Step3
c)
for
1
X2
:) (²)-(8)
X3
1
R₁ →
2t
t
√бi R₁
6
-1
бi
2
√бi
1
30-0
J) ()-(
-2
=
√6i
6
X1
1/²¹) (0)
√x
Do
8

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