指数运算例题(指数运算)

导读 大家好,我是小典,我来为大家解答以上问题。指数运算例题,指数运算很多人还不知道,现在让我们一起来看看吧!1.已知2^a*5^b=10 两边以10...

大家好,我是小典,我来为大家解答以上问题。指数运算例题,指数运算很多人还不知道,现在让我们一起来看看吧!

1.已知2^a*5^b=10

两边以10为底去对数,设lg2=t,则lg5=1-t

alg2+blg5=1

at+b(1-t)=1

(a-1)t+t+(b-1)(1-t)+(1-t)=1

(a-1)t+(b-1)(1-t)=0

(a-1)/(b-1)=1-1/t

2^c*5^d=10同理

(c-1)/(d-1)=1-1/t

所以(a-1)/(b-1)=(c-1)/(d-1)

(a-1)(d-1)=(b-1)(c-1)

2.f(x)=(a^x-a^-x)/(a^x+a^-x)=(a^2x-1)/(a^2x+1)

f(x)+f(y)=(a^2x-1)/(a^2x+1)+(a^2y-1)/(a^2y+1)

=[a^2(x+y)+a^2x-a^2y-1+a^2(x+y)-a^2x+a^2y-1]/[(a^2x+1)(a^2y+1)]

=2[a^2(x+y)-1]/[(a^2x+1)(a^2y+1)]

f(x)f(y)=(a^2x-1)/(a^2x+1)*(a^2y-1)/(a^2y+1)

=[a^2(x+y)-a^2x-a^2y+1]/[(a^2x+1)(a^2y+1)]

f(x)f(y)+1=[a^2(x+y)-a^2x-a^2y+1]/[(a^2x+1)(a^2y+1)]+1

=[a^2(x+y)-a^2x-a^2y+1+(a^2x+1)(a^2y+1)]/[(a^2x+1)(a^2y+1)]

=2[a^2(x+y)+1]/[(a^2x+1)(a^2y+1)]

[f(x)+f(y)]/[f(x)f(y)+1]=[a^2(x+y)-1]/[a^2(x+y)+1]=f(x+y)

所以f(x+y)=[f(x)+f(y)]/[f(x)f(y)+1]

本文到此讲解完毕了,希望对大家有帮助。

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