SOLUTION MANUAL
Abstract Algebra: An Interactive Approach
by William Paulsen
TU
TO
R
G
U
R
U
, Answers to Even-Numbered
Problems
TU
Section 0.1
2) q = 15, r = 12
4) q = −21, r = 17
6) q = 87, r = 67
8) q = −1, r = 215
TO
10) 1 + n < 1 + (n − 1)2 = n2 + 2(1 − n) < n2
12) If (n − 1)2 + 3(n − 1) + 4 = 2k, then n2 + 3n + 4 = 2(k + n + 1).
14) If 4n−1 − 1 = 3k, then 4n − 1 = 3(4k + 1).
16) (1 + x)n = (1 + x)(1 + x)n−1 ≥ (1 + x)(1 + (n − 1)x) = 1 + nx + x2 (n − 1) ≥
1 + nx
18) (n − 1)2 + (2n − 1) = n2 .
20) (n − 1)2 ((n − 1) + 1)2 /4 + n3 = n2 (n + 1)2 /4.
22) (n − 1)/((n − 1) + 1) + 1/(n(n + 1)) = n/(n + 1).
R
24) 4 · 100 + (−11) · 36 = 4.
26) (−6) · 464 + 5 · 560 = 16.
28) (−2) · 465 + 9 · 105 = 15.
30) (−54) · (487) + (−221) · (−119) = 1.
G
32) Let c = gcd(a, b). Then c is the smallest positive element of the set A =
all integers of the form au + bv. If we multiply all element of A by d, we get
the set of all integers of the form dau + dbv, and the smallest positive element
of this set would be dc. Thus, gcd(da, db) = dc.
U
34) Since both x/gcd(x, y) and y/gcd(x, y) are both integers, we see that
(x · y)/gcd(x, y) is a multiple of both x and y. If lcm(x, y) = ax = by is
smaller then (x · y)/gcd(x, y), then (x · y)/lcm(x, y) would be greater than
gcd(x, y). Yet (x · y)/lcm(x, y) = y/a = x/b would be a divisor of both x and
R
y.
36) 2 · 3 · 23 · 29.
38) 7 · 29 · 31.
40) 3 · 132 · 101.
U
42) u = −222222223, v = 1777777788.
44) 34 · 372 · 3336672 .
Section 0.2
2) If a/b = c/d, so that ad = bc, then ab(c2 +d2 ) = abc2 +abd2 = a2 cd+b2 cd =
cd(a2 + b2 ). Thus, ab/(a2 + b2 ) = cd/(c2 + d2 ).
4) a) One-to-one, 3x + 5 = 3y + 5 ⇒ x = y. b) Onto, f ((y − 5)/3) = y.
6) a) One-to-one, x/3 − 2/5 = y/3 − 2/5 ⇒ x = y. b) Onto, f (3y + 6/5) = y.
1
, 2 Answers to Even-Numbered Problems
8) a) One-to-one, if x > 0, y < 0 then y = 3x > 0. b) Onto, if y ≥ 0,
f (y/3) = y. If y < 0, f (y) = y.
10) a) Not one-to-one f (1) = f (2) = 1. b) Onto, f (2y − 1) = y.
12) a) One-to-one, if x even, y odd, then y = 2x + 2 is even. b) Not onto,
f (x) ̸= 3.
14) a) Not one-to-one f (5) = f (8) = 24. b) Not onto, f (x) ̸= 1.
TU
16) Suppose f were one-to-one, and let B̃ = f (A), so that f˜ : A → B̃ would
be a bijection. By lemma 0.5, |A| = |B̃|, but |B̃| ≤ |B| < |A|.
18) Suppose f were not one-to-one. Then there is a case where f (a1 ) = f (a2 ),
and we can consider the set à = A − {a1 }, and the function f˜ : à → B would
still be onto. But |Ã| < |B| so by Problem 17 f˜ cannot be onto. Hence, f is
one-to-one.
20) x4 + 2x2 .
TO
22) x3 − 3x{+ 2.
3x + 14 if x is even,
24) f (x) =
6x + 2 if x is odd.
26) If f (g(x)) = f (g(y)), then since f is one-to-one, g(x) = g(y). Since g is
onto, x = y.
28) There is some c ∈ C such that f (y) ̸= c for all y ∈ B. Then f (g(x)) ̸= c
since g(x) ∈ B.
30) If x even and y odd, f (x) = f{ (y) means y = x + 8 is even. Onto is proven
R
−1 x + 3 if x is even,
by finding the inverse: f (x) =
x − 5 if x is odd.
32) Associative, (x ∗ y) ∗ z = x ∗ (y ∗ z) = x + y + z − 2.
34) Not associative, (x ∗ y) ∗ z = x − y − z, x ∗ (y ∗ z) = x − y + z.
36) Yes.
G
38) Yes.
40) Yes.
42) f (x) is both one-to-one and onto.
Section 0.3
U
2) 55
4) 25
6) 36
8) 7
R
10) 10
12) 91
14) 43
16) 223
U
18) 73
20) 1498
22) 3617
24) 3875
26) First find 0 ≤ q ≤ u · v such that q ≡ x(mod u) and q ≡ y(mod v). Then
find k so that k ≡ q(mod u · v) and k ≡ z(mod w).
28) 12
, Answers to Even-Numbered Problems 3
30) 4
32) 35
34) 17
36) 30
38) 51
TU
40) 3684623194282304903214
42) 21827156424272739145155343596495185185220332
44) 1334817563332517248
Section 0.4
2) Since 1+2⌊an ⌋ is an integer, 1+2⌊an ⌋−an will have the same denominator
as an . Thus, the numerator an+1 is the denominator of an . Note that the
TO
fractions will already be in lowest terms.
4) Since the sequence begins b0 = 0, b1 = 1, b2 = 1, b3 = 2,. . . we see
that the equations are true for n = 1. Assume both equations are true for
the previous n, that is, b2n−2 = bn−1 and b2n−1 = bn−1 + bn . Then by
the recursion formula, b2n = bn−1 + (bn−1 + bn ) − 2(bn−1 mod (bn−1 + bn )).
But (bn−1 mod (bn−1 + bn )) = bn−1 , since bn−1 + bn > bn−1 . So b2n = bn .
Then we can compute b2n+1 = bn−1 + bn + bn − 2(bn−1 + bn mod bn ). But
(bn−1 + bn mod bn ) = (bn−1 mod bn ), and bn+1 = bn−1 + bn − 2(bn−1 mod bn ).
R
Thus, b2n+1 = bn + bn+1 .
6) a2n+1 = b2n+1 /b2n+2 = (bn + bn+1 )/bn+1 = (bn /bn+1 ) + 1 = an + 1.
8) If ai = aj for i > j, then because an+1 is determined solely on an , a2i−j =
ai . In fact, the sequence will repeat forever, so there would be only a finite of
G
rational numbers in the sequence. But this contradicts that every rational is
in the sequence, which is an infinite set.
10) In computing the long division of p/q, the remainders at each stage is
given by the sequence in Problem 9. Since this sequence eventually repeats,
U
the digits produced by the long division algorithm will eventually repeat.
12) If p3 /q 3 = 2 with p and q coprime, then 2|p, but replacing p = 2r shows
2|q too.
14) If p2 /q 2 = 5 with p and q coprime, then 5|p, but replacing p = 5r shows
R
5|q too.
16) If p3 /q 3 = 3 with p and q coprime, then 3|p, but replacing p = 3r shows
3|q too.
18) If 1/a were rational, then a = 1/a−1 would be rational.
U
20) Given x and y, choose any irrational z, and find a rational q between x − z
and y − z. Then q + z is irrational by Problem 19.
√ √
22) x2 = 5 + 2 6, and 6 is irrational, so x2 is too. If x were rational, then
x2 would be rational.
√ √
24) 2 − 2 and 2 are both irrational, but the sum is 2.
√ √
26) a6 = 2 + 4, a102 = 2 + 8.
Abstract Algebra: An Interactive Approach
by William Paulsen
TU
TO
R
G
U
R
U
, Answers to Even-Numbered
Problems
TU
Section 0.1
2) q = 15, r = 12
4) q = −21, r = 17
6) q = 87, r = 67
8) q = −1, r = 215
TO
10) 1 + n < 1 + (n − 1)2 = n2 + 2(1 − n) < n2
12) If (n − 1)2 + 3(n − 1) + 4 = 2k, then n2 + 3n + 4 = 2(k + n + 1).
14) If 4n−1 − 1 = 3k, then 4n − 1 = 3(4k + 1).
16) (1 + x)n = (1 + x)(1 + x)n−1 ≥ (1 + x)(1 + (n − 1)x) = 1 + nx + x2 (n − 1) ≥
1 + nx
18) (n − 1)2 + (2n − 1) = n2 .
20) (n − 1)2 ((n − 1) + 1)2 /4 + n3 = n2 (n + 1)2 /4.
22) (n − 1)/((n − 1) + 1) + 1/(n(n + 1)) = n/(n + 1).
R
24) 4 · 100 + (−11) · 36 = 4.
26) (−6) · 464 + 5 · 560 = 16.
28) (−2) · 465 + 9 · 105 = 15.
30) (−54) · (487) + (−221) · (−119) = 1.
G
32) Let c = gcd(a, b). Then c is the smallest positive element of the set A =
all integers of the form au + bv. If we multiply all element of A by d, we get
the set of all integers of the form dau + dbv, and the smallest positive element
of this set would be dc. Thus, gcd(da, db) = dc.
U
34) Since both x/gcd(x, y) and y/gcd(x, y) are both integers, we see that
(x · y)/gcd(x, y) is a multiple of both x and y. If lcm(x, y) = ax = by is
smaller then (x · y)/gcd(x, y), then (x · y)/lcm(x, y) would be greater than
gcd(x, y). Yet (x · y)/lcm(x, y) = y/a = x/b would be a divisor of both x and
R
y.
36) 2 · 3 · 23 · 29.
38) 7 · 29 · 31.
40) 3 · 132 · 101.
U
42) u = −222222223, v = 1777777788.
44) 34 · 372 · 3336672 .
Section 0.2
2) If a/b = c/d, so that ad = bc, then ab(c2 +d2 ) = abc2 +abd2 = a2 cd+b2 cd =
cd(a2 + b2 ). Thus, ab/(a2 + b2 ) = cd/(c2 + d2 ).
4) a) One-to-one, 3x + 5 = 3y + 5 ⇒ x = y. b) Onto, f ((y − 5)/3) = y.
6) a) One-to-one, x/3 − 2/5 = y/3 − 2/5 ⇒ x = y. b) Onto, f (3y + 6/5) = y.
1
, 2 Answers to Even-Numbered Problems
8) a) One-to-one, if x > 0, y < 0 then y = 3x > 0. b) Onto, if y ≥ 0,
f (y/3) = y. If y < 0, f (y) = y.
10) a) Not one-to-one f (1) = f (2) = 1. b) Onto, f (2y − 1) = y.
12) a) One-to-one, if x even, y odd, then y = 2x + 2 is even. b) Not onto,
f (x) ̸= 3.
14) a) Not one-to-one f (5) = f (8) = 24. b) Not onto, f (x) ̸= 1.
TU
16) Suppose f were one-to-one, and let B̃ = f (A), so that f˜ : A → B̃ would
be a bijection. By lemma 0.5, |A| = |B̃|, but |B̃| ≤ |B| < |A|.
18) Suppose f were not one-to-one. Then there is a case where f (a1 ) = f (a2 ),
and we can consider the set à = A − {a1 }, and the function f˜ : à → B would
still be onto. But |Ã| < |B| so by Problem 17 f˜ cannot be onto. Hence, f is
one-to-one.
20) x4 + 2x2 .
TO
22) x3 − 3x{+ 2.
3x + 14 if x is even,
24) f (x) =
6x + 2 if x is odd.
26) If f (g(x)) = f (g(y)), then since f is one-to-one, g(x) = g(y). Since g is
onto, x = y.
28) There is some c ∈ C such that f (y) ̸= c for all y ∈ B. Then f (g(x)) ̸= c
since g(x) ∈ B.
30) If x even and y odd, f (x) = f{ (y) means y = x + 8 is even. Onto is proven
R
−1 x + 3 if x is even,
by finding the inverse: f (x) =
x − 5 if x is odd.
32) Associative, (x ∗ y) ∗ z = x ∗ (y ∗ z) = x + y + z − 2.
34) Not associative, (x ∗ y) ∗ z = x − y − z, x ∗ (y ∗ z) = x − y + z.
36) Yes.
G
38) Yes.
40) Yes.
42) f (x) is both one-to-one and onto.
Section 0.3
U
2) 55
4) 25
6) 36
8) 7
R
10) 10
12) 91
14) 43
16) 223
U
18) 73
20) 1498
22) 3617
24) 3875
26) First find 0 ≤ q ≤ u · v such that q ≡ x(mod u) and q ≡ y(mod v). Then
find k so that k ≡ q(mod u · v) and k ≡ z(mod w).
28) 12
, Answers to Even-Numbered Problems 3
30) 4
32) 35
34) 17
36) 30
38) 51
TU
40) 3684623194282304903214
42) 21827156424272739145155343596495185185220332
44) 1334817563332517248
Section 0.4
2) Since 1+2⌊an ⌋ is an integer, 1+2⌊an ⌋−an will have the same denominator
as an . Thus, the numerator an+1 is the denominator of an . Note that the
TO
fractions will already be in lowest terms.
4) Since the sequence begins b0 = 0, b1 = 1, b2 = 1, b3 = 2,. . . we see
that the equations are true for n = 1. Assume both equations are true for
the previous n, that is, b2n−2 = bn−1 and b2n−1 = bn−1 + bn . Then by
the recursion formula, b2n = bn−1 + (bn−1 + bn ) − 2(bn−1 mod (bn−1 + bn )).
But (bn−1 mod (bn−1 + bn )) = bn−1 , since bn−1 + bn > bn−1 . So b2n = bn .
Then we can compute b2n+1 = bn−1 + bn + bn − 2(bn−1 + bn mod bn ). But
(bn−1 + bn mod bn ) = (bn−1 mod bn ), and bn+1 = bn−1 + bn − 2(bn−1 mod bn ).
R
Thus, b2n+1 = bn + bn+1 .
6) a2n+1 = b2n+1 /b2n+2 = (bn + bn+1 )/bn+1 = (bn /bn+1 ) + 1 = an + 1.
8) If ai = aj for i > j, then because an+1 is determined solely on an , a2i−j =
ai . In fact, the sequence will repeat forever, so there would be only a finite of
G
rational numbers in the sequence. But this contradicts that every rational is
in the sequence, which is an infinite set.
10) In computing the long division of p/q, the remainders at each stage is
given by the sequence in Problem 9. Since this sequence eventually repeats,
U
the digits produced by the long division algorithm will eventually repeat.
12) If p3 /q 3 = 2 with p and q coprime, then 2|p, but replacing p = 2r shows
2|q too.
14) If p2 /q 2 = 5 with p and q coprime, then 5|p, but replacing p = 5r shows
R
5|q too.
16) If p3 /q 3 = 3 with p and q coprime, then 3|p, but replacing p = 3r shows
3|q too.
18) If 1/a were rational, then a = 1/a−1 would be rational.
U
20) Given x and y, choose any irrational z, and find a rational q between x − z
and y − z. Then q + z is irrational by Problem 19.
√ √
22) x2 = 5 + 2 6, and 6 is irrational, so x2 is too. If x were rational, then
x2 would be rational.
√ √
24) 2 − 2 and 2 are both irrational, but the sum is 2.
√ √
26) a6 = 2 + 4, a102 = 2 + 8.
