MCQ
The greatest integer less than or equal to $\int_1^2 \log _2\left(x^3+1\right) d x+\int_1^{\log 2}\left(2^x-1\right)^{\frac{1}{3}} d x$ is. . . . .
- A$2$
- B$3$
- C$4$
- ✓$5$
$x^3+1=2^y \Rightarrow x=\left(2^y-1\right)^{1 / 3}=f^{-1}(y)$
$f^{-1}(x)=\left(2^x-1\right)^{1 / 3}$
$=\int_1^2 \log _2\left(x^3+1\right) d x+\int_1^{\log _2 9}\left(2^x-1\right)^{1 / 3} d x$
$=\int_1^2 f(x) d x+\int_1^{\log _2 9} f^{-1}(x) d x=2 \log _2 9-1$
$=8<9<2^{7 / 2} \Rightarrow 3<\log _2 9<\frac{7}{2}$
$=5<2 \log _2 9-1<6$
${\left[2 \log _2 9-1\right]=5}$
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