一道数列的数学题 。。求解
数列{an}和{bn}的各项由下列关系式确定,Bk=(1/k)*(lga1+lga2+lga3+…+lgak),k=1,2,…,n(n>=3)(1)若数列{an}室等比数...
数列{an}和{bn}的各项由下列关系式确定,Bk=(1/k)*(lga1+lga2+lga3+…+lgak),k=1,2,…,n(n>=3)
(1)若数列{an}室等比数列,求证{bn}是等差数列
(2)若a1不等于a2,且常数F满足bk=Flgak(k=1,2,...,n),求F,并证明数列{an}仍是等比数列 展开
(1)若数列{an}室等比数列,求证{bn}是等差数列
(2)若a1不等于a2,且常数F满足bk=Flgak(k=1,2,...,n),求F,并证明数列{an}仍是等比数列 展开
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1)设公比为q,即ak=a1q^(n-1)
Bk=(1/k)*(lga1+lga2+lga3+…+lgak)
=(1/k)*[lg(a1*a2*a3……ak)]
=(1/k)*{lg[a1*a1q*a1q^2……a1q^(n-1)]}
=(1/k)*{lg{a1^k*q^[1+2+3+……+(k-1)]}}
=(1/k)*{lg{(a1^k)*q^[k(k-1)/2]}}
=(1/k)*{lg(a1^k+lgq^[k(k-1)/2]}
=(1/k)*{klg(a1)+[k(k-1)/2]lgq}
=lga1+[(k-1)/2]lgq
B(k-1)=lga1+([k-2)/2]lgq
bk-b(k-1)=lga1+[(k-1)/2]lgq-{lga1+([k-2)/2]lgq}=(1/2)lgq
所以{bn}是等差数列
2)bk=Flgak,b1=Flga1
Bk=(1/k)*(lga1+lga2+lga3+…+lgak),b1=(1/1)*lga1,
所以F=1
bk=lgak=(1/k)*(lga1+lga2+lga3+…+lgak)
klgak=lga1+lga2+lga3+…+lgak,
lg(ak^k)=lg(a1*a2*……*ak)
ak^k=a1*a2*……*ak
k=2时,a2^2=a1*a2,
Bk=(1/k)*(lga1+lga2+lga3+…+lgak)
=(1/k)*[lg(a1*a2*a3……ak)]
=(1/k)*{lg[a1*a1q*a1q^2……a1q^(n-1)]}
=(1/k)*{lg{a1^k*q^[1+2+3+……+(k-1)]}}
=(1/k)*{lg{(a1^k)*q^[k(k-1)/2]}}
=(1/k)*{lg(a1^k+lgq^[k(k-1)/2]}
=(1/k)*{klg(a1)+[k(k-1)/2]lgq}
=lga1+[(k-1)/2]lgq
B(k-1)=lga1+([k-2)/2]lgq
bk-b(k-1)=lga1+[(k-1)/2]lgq-{lga1+([k-2)/2]lgq}=(1/2)lgq
所以{bn}是等差数列
2)bk=Flgak,b1=Flga1
Bk=(1/k)*(lga1+lga2+lga3+…+lgak),b1=(1/1)*lga1,
所以F=1
bk=lgak=(1/k)*(lga1+lga2+lga3+…+lgak)
klgak=lga1+lga2+lga3+…+lgak,
lg(ak^k)=lg(a1*a2*……*ak)
ak^k=a1*a2*……*ak
k=2时,a2^2=a1*a2,
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F不可能等于1 等于1/2
谁会证最后一个问!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!
谁会证最后一个问!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!
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