用单调有界数列收敛准则证明数列极限存在.(1)X1>0,Xn+1=1/2(Xn+a/Xn)(n=1,2...,a>0) (2)X1=√2,Xn+1
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用单调有界数列收敛准则证明数列极限存在.(1)X1>0,Xn+1=1/2(Xn+a/Xn)(n=1,2...,a>0) (2)X1=√2,Xn+1
用单调有界数列收敛准则证明数列极限存在.
(1)X1>0,Xn+1=1/2(Xn+a/Xn)(n=1,2...,a>0)
(2)X1=√2,Xn+1=√(2Xn)(n=1,2...)
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答
(1)X1>0,Xn+1=1/2(Xn+a/Xn)(n=1,2...,a>0)Xn+1=1/2(Xn+a/Xn)=(Xn^2+a)/2Xn》2Xn√a/2Xn=√a 故Xn》√a n》2 数列有下界又:X3-X2=1/2(X2+a/X2)-X2=(1/2)(a/X2-X2)=(a-X2^2)/(2X2)《0 X3《X2而:Xn+1-Xn=1/2(Xn+a/X...