复习:行列式按某行(列展开定理及推论 第i行 D 展开 a4n+024n++a4n∑4,4,(i=l,2,.,m 1 涕j列 展开 ayta1.2. 推论 aiAsita2As2++aiAsn=0 (ifs) 1yA+22十+mAm0(f) 综合定理及推论得: D i=i ∑4uAx D i=i 0 i≠j 0 k=1 k= i≠j
复习:行列式按某行(列)展开定理及推论 按第 行 展开 i D ==== 1 ( 1,2, , ) n ij ij j a A i n = = = 按第 列 展开 j ==== 1 ( 1,2, , ) n ij ij i a A j n = = = ai1Ai1+ai2Ai2+.+ainAin a1jA1j+a2jA2j+.+anjAnj ai1As1+ai2As2+.+ainAsn=0 (i≠s) a1jA1t+a2jA2t+.+anjAnt=0 (j≠t) 推论 1 n ki kj k a A = 1 n ik jk k a A = 0 D i j i j = = 0 D i j i j = = 综合定理及推论得:
l.4克莱姆(Cramer)法则 n个未知量n个方程的线性方程组,在系数行列式不 为零时的行到式解法,称为克莱姆(Cramer)法则. 设一个含有n个未知量n个方程的线性方程组 mx1+412X2+.+41mXm=b1 2七1+422+.+02mxn=b2 mx+02k2+.+amXn=bn 或表示为之4,bi山,2," j=1
n个未知量n个方程的线性方程组, 在系数行列式不 为零时的行列式解法, 称为克莱姆(Cramer)法则. 设一个含有n个未知量n个方程的线性方程组 11 1 12 2 1 1 21 1 22 2 2 2 1 1 2 2 (*) n n n n n n nn n n a x a x a x b a x a x a x b a x a x a x b + + + = + + + = + + + = 1 1,2, , n ij j i j a x b i n = 或表示为 = = 1.4 克莱姆(Cramer)法则
定理1设线性非齐次方程 组()的系数行列式 D= ≠0 L n 则(有唯一解合出 D D (j=1,2,.,0 其中, 41b1 1, D (j=1,2,.,n)
定理1 设线性非齐次方程 组(*)的系数行列式 11 1 1 0 n n nn a a D a a = 则(*)有唯一解 1 2 1 2 , , , n n D D D x x x D D D = = = 11 1, 1 1 1, 1 1 1 , 1 , 1 j j n j n n j n n j nn a a b a a D a a b a a − + − + = 其中, ( j=1, 2, . , n) 即: j j D x D = ( j=1, 2, . , n)
证明:()是解(2)解唯 山将与分01,2,m ∑gx,=bi=1,2,.,n(*) i=1 代入()左端,又将D按第列展开,得 喜易同四D蓝446 i=l k=l D24,)D264,4) b,D 注]D后 ∑a D,k=i =b:(i=1,2,.,n i= 0,k≠i a,jr anj bn anjt
证明: (1)是解. (2)解唯一. (1)将 j xj D D = 代入(*)左端, 1 1 n ij j a D = = 1 1 1 ( ) n n ij kj k j k a A b D = = = 1 1 1 ( ) n n ij kj k k j a A b D = = = 1 1 1 ( ) n ij kj n k k j b a A D = = = 1 b Di D = (*) 1 n ij kj j a A = = 1 1,2, , n ij j i j a x b i n = = = =bi ( i=1, 2, . , n) , 0, k i i D k = [注] (j=1,2,. ,n) 1 ( ) ij j j n D D a = 11 1, 1 1 1, 1 1 1 , 1 , 1 j j n j n n j n n j nn a a b a a D a a b a a − + − + = 又将Dj按第j列展开,得 1 ( ) n k kj k b A =
(2)若有二组数x1,心2,x,m满足(),则 2 Cyn 0X1 12 21 L22 (l2n 421X1 L22 (2n DX =X Amxi An2 41式1+012式2+·+01nXn12 2 L21X1+022X2+.+2nXn02 A2n 122 anan2annXn an2 b nn =D .X1 D D≠0) 同理 Dx=D→=,j=l,2,.,n
5 (2)若有一组数x1 , x2 , . , xn满足(*), 则 12 1 22 2 2 11 1 21 1 1 1 n n n n nn a x a x a a a a x a a a = 11 1 12 2 1 12 1 21 1 22 2 2 22 2 1 1 2 2 2 n n n n n n n n nn n n nn a x a x a x a a a x a x a x a a a x a x a x a a + + + + + + = + + + 12 1 2 22 2 1 2 n n n n nn b a a b a a b a a = 1 1 ( 0) D x D D = 12 1 22 11 21 1 2 1 2 n n n n nn a a a a x a a a a a =D1 同理 , 1,2, , j j D x j n D = = Dx1 = Dxj =Dj