设{an}的公比不为1的等比数列,其前n项和为sn,且a5,a3,a4成等差数列.1,求{an}公比.2,证明对任意k(正数),s(k+2),sk,s(k+1)成等差数列.
来源:学生作业帮助网 编辑:六六作业网 时间:2024/11/29 03:43:51
设{an}的公比不为1的等比数列,其前n项和为sn,且a5,a3,a4成等差数列.1,求{an}公比.2,证明对任意k(正数),s(k+2),sk,s(k+1)成等差数列.设{an}的公比不为1的等比
设{an}的公比不为1的等比数列,其前n项和为sn,且a5,a3,a4成等差数列.1,求{an}公比.2,证明对任意k(正数),s(k+2),sk,s(k+1)成等差数列.
设{an}的公比不为1的等比数列,其前n项和为sn,且a5,a3,a4成等差数列.
1,求{an}公比.2,证明对任意k(正数),s(k+2),sk,s(k+1)成等差数列.
设{an}的公比不为1的等比数列,其前n项和为sn,且a5,a3,a4成等差数列.1,求{an}公比.2,证明对任意k(正数),s(k+2),sk,s(k+1)成等差数列.
(1)数列{an}是公比不为1的等比数列且a5,a3,a4成等差数列,则2a3=a4+a5,即q^2+q-2=0,解得q=1(舍)或q=-2
(2)S(k+2)+S(k+1)=[a1(1-q^(k+2)]/(1-q)+[a1(1-q^(k+1)]/(1-q)=[a1/(1-q)][2-q^(k+2)-q^(k+1)] =[a1/(1-q)][2-q^k(q^2+q)]=[a1/(1-q)][2-2q^k]
Sk=[a1/(1-q)][1-q^k
故S(k+2)+S(k+1)= 2Sk即对任意k(正数),s(k+2),sk,s(k+1)成等差数列
(1)、q=-2