已知log12(7)=a,log12(3)=b,试用a,b表示log28(63)
展开全部
log12(7)=a,
lg7/lg12=a
lg7=alg12
log12(3)=b
lg3/lg12=b
lg3=blg12
lg3=b(lg3+lg4)
lg3=blg3+blg4
(1-b)lg3=blg4
lg4=(1-b)lg3/b
lg4=(1-b)blg12/b
lg4=(1-b)lg12
log28(63)
=lg63/lg28
=(lg7+lg9)/(lg7+lg4)
=(alg12+2blg12)/(alg12+(1-b)lg12)
=(a+2b)/(a+1-b)
lg7/lg12=a
lg7=alg12
log12(3)=b
lg3/lg12=b
lg3=blg12
lg3=b(lg3+lg4)
lg3=blg3+blg4
(1-b)lg3=blg4
lg4=(1-b)lg3/b
lg4=(1-b)blg12/b
lg4=(1-b)lg12
log28(63)
=lg63/lg28
=(lg7+lg9)/(lg7+lg4)
=(alg12+2blg12)/(alg12+(1-b)lg12)
=(a+2b)/(a+1-b)
本回答由提问者推荐
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询
