同济大学线性代数第五版课后习题答案 下载本文

第一章 行列式

1? 利用对角线法则计算下列三阶行列式? 201 (1)1?4?1?

?183201 解 1?4?1

?183 ?2?(?4)?3?0?(?1)?(?1)?1?1?8 ?0?1?3?2?(?1)?8?1?(?4)?(?1) ??24?8?16?4??4? abc (2)bca?

cababc 解 bca

cab ?acb?bac?cba?bbb?aaa?ccc ?3abc?a3?b3?c3?

111 (3)abc?

a2b2c2111 解 abc

a2b2c2 ?bc2?ca2?ab2?ac2?ba2?cb2 ?(a?b)(b?c)(c?a)?

xyx?y (4)yx?yx?

x?yxyxyx?y 解 yx?yx

x?yxy ?x(x?y)y?yx(x?y)?(x?y)yx?y3?(x?y)3?x3 ?3xy(x?y)?y3?3x2 y?x3?y3?x3 ??2(x3?y3)?

2? 按自然数从小到大为标准次序? 求下列各排列的逆序数?

(1)1 2 3 4? 解 逆序数为0 (2)4 1 3 2?

解 逆序数为4? 41? 43? 42? 32? (3)3 4 2 1?

解 逆序数为5? 3 2? 3 1? 4 2? 4 1, 2 1? (4)2 4 1 3?

解 逆序数为3? 2 1? 4 1? 4 3? (5)1 3 ? ? ? (2n?1) 2 4 ? ? ? (2n)?

n(n?1) 解 逆序数为?

2 3 2 (1个) 5 2? 5 4(2个) 7 2? 7 4? 7 6(3个)

? ? ? ? ? ?

(2n?1)2? (2n?1)4? (2n?1)6? ? ? ?? (2n?1)(2n?2) (n?1个)

(6)1 3 ? ? ? (2n?1) (2n) (2n?2) ? ? ? 2? 解 逆序数为n(n?1) ? 3 2(1个) 5 2? 5 4 (2个) ? ? ? ? ? ?

(2n?1)2? (2n?1)4? (2n?1)6? ? ? ?? (2n?1)(2n?2) (n?1个) 4 2(1个) 6 2? 6 4(2个) ? ? ? ? ? ?

(2n)2? (2n)4? (2n)6? ? ? ?? (2n)(2n?2) (n?1个) 3? 写出四阶行列式中含有因子a11a23的项? 解 含因子a11a23的项的一般形式为

(?1)ta11a23a3ra4s?

其中rs是2和4构成的排列? 这种排列共有两个? 即24和42? 所以含因子a11a23的项分别是

(?1)ta11a23a32a44?(?1)1a11a23a32a44??a11a23a32a44? (?1)ta11a23a34a42?(?1)2a11a23a34a42?a11a23a34a42? 4? 计算下列各行列式?

41 (1)1001251202142? 0741 解 101252024c2?c342??????1010?123202?104?1?102?122?(?1)4?3 ?140117c4?7c30010103?14 ?4?110c2?c3991010123?142??????c00?2?0?

1?12c31717142 (2)31?114152203162? 2240 解 31?1211?c?4???c3?223?11402r4?r22521062215220360?????31?142221213240 00 ?r?4???r12?31?1142022030?0? 00 (3)?bdabacaebf?cfcd?deef?

解 ?bdabbf?accfcdae?deef?adf?bbb?ccce?ee

?adfbce?11111?11?11?4abcdef?

a1 (4)?001b?1001c?100? 1da1 解 ?001b?1001c?10r1?ar201?ab0??????1b10?1d00a1c?100 1d1?aba0c3?dc21?abaad ?(?1)(?1)2?1?1c1??????1c1?cd

0?1d0?10

5? 证明:

abad?abcd?ab?cd?ad?1? ?(?1)(?1)3?21??11?cda2abb2 (1)2aa?b2b?(a?b)3;

111 证明

a2abb2c2?c1a2ab?a2b2?a2 2aa?b2b?????2ab?a2b?2a

00111c3?c11222ab?ab?aab?a?(a?b)3 ? ?(?1)?(b?a)(b?a)12b?a2b?2a3?1ax?byay?bzaz?bxxyz (2)ay?bzaz?bxax?by?(a3?b3)yzx;

az?bxax?byay?bzzxy 证明

ax?byay?bzaz?bx ay?bzaz?bxax?by

az?bxax?byay?bz