求(log4 3+log8 3)*(log3 2+log9 2)。(前一个数为底数,后一个为真数)
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解决时间 2021-11-18 18:12
- 提问者网友:王者佥
- 2021-11-18 13:36
求(log4 3+log8 3)*(log3 2+log9 2)。(前一个数为底数,后一个为真数)
最佳答案
- 五星知识达人网友:酒安江南
- 2021-11-18 14:18
用换底公式
原式=(lg3/lg4+lg3/lg8)(lg2/lg3+lg2/lg9)
=(lg3/2lg2+lg3/3lg2)(lg2/lg3+lg2/2lg3)
=[(1/2+1/3)(lg3/lg2)][(1+1/2)(lg2/lg3)]
=(1/2+1/3)(1+1/2)
=5/4
原式=(lg3/lg4+lg3/lg8)(lg2/lg3+lg2/lg9)
=(lg3/2lg2+lg3/3lg2)(lg2/lg3+lg2/2lg3)
=[(1/2+1/3)(lg3/lg2)][(1+1/2)(lg2/lg3)]
=(1/2+1/3)(1+1/2)
=5/4
全部回答
- 1楼网友:躲不过心动
- 2021-11-18 17:14
log43+log83=1/2log2 3+1/3log2 3=5/6log2 3
log3 2+log 92=log3 2+1/2log3 2=3/2log3 2
相乘=5/4
log3 2+log 92=log3 2+1/2log3 2=3/2log3 2
相乘=5/4
- 2楼网友:掌灯师
- 2021-11-18 16:10
(log4 3+log8 3)*(log3 2+log9 2)
=(lg3/2lg2+lg3/3lg2)(lg3/lg2+lg2/2lg3)
=(1/2+1/3)(1+1/2)
=5/4
=(lg3/2lg2+lg3/3lg2)(lg3/lg2+lg2/2lg3)
=(1/2+1/3)(1+1/2)
=5/4
- 3楼网友:神鬼未生
- 2021-11-18 15:51
(log3 2+log9 2)*(log4 3+log8 3)
=(lg2/lg3+lg2/lg9)*(lg3/lg4+lg3/lg8)
=(lg2/lg3+lg2/2lg3)*(lg3/2lg2+lg3/3lg2
=3/2*lg2/lg3*5/6*lg3/lg2
=3/2*5/6=5/4
=(lg2/lg3+lg2/lg9)*(lg3/lg4+lg3/lg8)
=(lg2/lg3+lg2/2lg3)*(lg3/2lg2+lg3/3lg2
=3/2*lg2/lg3*5/6*lg3/lg2
=3/2*5/6=5/4
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