MCQ
If ${I_m} = \int_1^x {{{(\log x)}^m}dx} $ satisfies the relation ${I_m} = k - l{I_{m - 1}},$ then
- A$k = e$
- ✓$l = m$
- C$k = \frac{1}{e}$
- DNone of these
$= ({(\log x)^m}.x)_1^x - \int_1^x {m{{(\log x)}^{m - 1}}.\frac{1}{x}x\,\,dx} $
$ = {(\log x)^m}.x - m{I_{m - 1}}$
$\therefore \,\,$${I_m} = k - l\,\,{I_{m - 1}} $
$\Rightarrow k - l\,{I_{m - 1}} = x{(\log x)^m} - m{I_{m - 1}}$
==> $k = x{(\log x)^m},l = m$.
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