计算 2log3 2-log32/9+log3 8-5^log5 3
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计算2log32-log32/9+log38-5^log53计算2log32-log32/9+log38-5^log53计算2log32-log32/9+log38-5^log532log32-log
计算 2log3 2-log32/9+log3 8-5^log5 3
计算 2log3 2-log32/9+log3 8-5^log5 3
计算 2log3 2-log32/9+log3 8-5^log5 3
2log3 2-log32/9+log3 8-5^log5 3
=2l0g3 2-log3 2+log3 9-3
=log3 2+2-3
=iog3 2-1
计算 2log3 2-log32/9+log3 8-5^log5 3
计算 2log3 2-log32/9+log3 8-5^log5 3
2log3 2-log32/9+log3 8-5^log5 3
算 2log3 2-log32/9+log3 8-5^2log5 3 .
2-log32/9+log3 8-5的(2倍的log5 3)
log3 2=m 试用m表示log32 18
知log3^2=m,用m表示log32^18
计算9^log3 4+2
已知log3 2=m,使用m表示log32 18过程
已知log3(2)=m,试用m表示log32(18)
计算log3[(9^2 * 27^(1/3))/3^(log3 234)]
log3(log32) (log32)二次方比较大小
已知log(32)9=p,log(27)25=q,适用p,q表示lg5p=log32(9)=2/5×log2(3)=2/5×1/log3(2)∴log3(2)=2/5pq=log27(25)=2/3×log3(5)∴log3(5)=3q/2lg5=log3(5)/log3(10)=log3(5)/[log3(2)+log3(5)]=15pq/(4+15pq)结果怎么出来的?
log3^2怎么计算
log3 8除以log3 2怎么计算
设函数f(x)=log3((x-2)/x-a)在区间(1,2)内有零点,则实数a的取值范围是()A.(-1,-log32) B.(0,log32) C.(log32,1) D.(1,log34)
求值(log43+log83)(log32+log92) 注:log后面那为数是底数=5/6*log3/log2*3/2*log2/log3=5/4 怎么来的
你可以将原式变为 log23+log32 =log23/log22+log22/log33 =log3/1+1/log3 =log3+1/log3 相信你知道log(2)xalogaM=M怎么算的