作业帮64^1/3-(-2/3)^0+log(2)8+(log(8)9)/(log(2)3)
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64^1/3-(-2/3)^0+log(2)8+(log(8)9)/(log(2)3)
64^1/3-(-2/3)^0+log(2)8+(log(8)9)/(log(2)3)
64^1/3-(-2/3)^0+log(2)8+(log(8)9)/(log(2)3)
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=4-1+3+2/3
=20/3
64^1/3-(-2/3)^0+log(2)8+(log(8)9)/(log(2)3)
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2log(5)25+3log(2)64=?
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log(9)x+log(x^2)3=1的解为?原方程可可化为log(3 ²)x+log(x)²3=1 ,∴1/2*log(3)X+1/2*log(x)3=1,∴[log(3)x]²-2log(x)3+1=0,即[log(3)x-1]²=0请问这里的[log(3)x]²-2log(x)3+1=0是怎么推出来的,刚学基础不好,
log∨6 (64)*log∨4 (1/27)*log∨3( 36)
log∨6 (64)*log∨4 (1/27)*log∨3( 36)
log(1/2)3,log(1/3)3,log(1/4)3比大小