原式
=2/(a-1)+(a+3)/((1+a)(1-a))
=(2a+2-a-3)/(1+a)(1-a)
=(a-1)/(1+a)(1-a)
=1/(a+1)
2/a-1+(a+3)/1-aa=
1个回答
相关问题
-
设A是三阶矩阵,a1,a2,a3是列向量,且线性无关,Aa1=a1-a2+2a3,Aa2=a1+a2+3a3,Aa3=-
-
设三维列向量a1,a2,a3线性无关,A是三阶矩阵,且有Aa1=a1+2a2+3a3,Aa2=2a2+3a3,Aa3=3
-
a(a+1)-a(aa-4)/(a+1)(aa-2a)(a+2)
-
已知a1,a2,a3线性无关,若a1+aa2,2a1+a2+aa3,a1+2a2-a3亦线性无关,求a
-
设a1,a2为n维列向量,A为n阶正交矩阵,证明:(1)[Aa1,Aa2]=[a1,a2] (2){Aa1}={a1}
-
已知a=√3-√2,求(aa+2a+1/aaa-a)-(2/a-1)
-
(aa−b−a2a2−2ab+b2)÷(aa+b−a2a2−b2)+1,其中a=[2/3],b=-3.
-
求计算元素有规律的行列式2 a a a aa 2 a a aa a 2 a aa a a 2 aa a a a 2还有1
-
计算:(1)[1/a−1−aa−1];(2)a2a2+2a•(a2a−2−4a−2);(3)a2+1a−1−a+1;(4