Let = ( v → 1 , v → 2 , v → 3 ) be any basis of ℝ 3 consisting of perpendicular unit vectors, such that v → 3 = v → 1 × v → 2 . In Exercises 31 through 36, find the matrix B of the given linear transformation T from ℝ 3 to ℝ 3 . Interpret T geometrically. 31. T ( x → ) = v → 2 × x →
Let = ( v → 1 , v → 2 , v → 3 ) be any basis of ℝ 3 consisting of perpendicular unit vectors, such that v → 3 = v → 1 × v → 2 . In Exercises 31 through 36, find the matrix B of the given linear transformation T from ℝ 3 to ℝ 3 . Interpret T geometrically. 31. T ( x → ) = v → 2 × x →
Solution Summary: The author explains how the matrix B can be obtained from column by column method.
Let
=
(
v
→
1
,
v
→
2
,
v
→
3
)
be any basis of
ℝ
3
consisting of perpendicular unit vectors, such that
v
→
3
=
v
→
1
×
v
→
2
. In Exercises 31 through 36, find the matrix B of the given linear transformation T from
ℝ
3
to
ℝ
3
. Interpret T geometrically.
31.
T
(
x
→
)
=
v
→
2
×
x
→
Quantities that have magnitude and direction but not position. Some examples of vectors are velocity, displacement, acceleration, and force. They are sometimes called Euclidean or spatial vectors.
13) Let U = {j, k, l, m, n, o, p} be the universal set. Let V = {m, o,p), W = {l,o, k}, and X = {j,k). List the elements of
the following sets and the cardinal number of each set.
a) W° and n(W)
b) (VUW) and n((V U W)')
c) VUWUX and n(V U W UX)
d) vnWnX and n(V WnX)
9) Use the Venn Diagram given below to determine the number elements in each of the following sets.
a) n(A).
b) n(A° UBC).
U
B
oh
a
k
gy
ท
W
z r
e t
་
C
10) Find n(K) given that n(T) = 7,n(KT) = 5,n(KUT) = 13.
Chapter 3 Solutions
Linear Algebra With Applications (classic Version)
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