\(\lim \limits_{n \to \infty } { { {\rm{3}}{n^2}{\rm{ + 8}}} \over { { n^2} - n}} = \) .______
举一反三
- \( \lim \limits_{n \to \infty } { { n!} \over { { n^n}}} = \)______ 。
- 下列级数中,收敛的是( ). A: \(<br/>\sum\limits_{n = 1}^\infty { { 1 \over n}} \) B: \(<br/>\sum\limits_{n = 1}^\infty { { 1 \over { { n^2}}}} \) C: \(<br/>\sum\limits_{n = 1}^\infty { { 1 \over {\sqrt n }}} \) D: \( \sum\limits_{n = 1}^\infty { { 1 \over {\root 3 \of { { n^2}} }}} \)
- 将\(f(x) = {1 \over {2 - x}}\)展开成\(x \)的幂级数为( )。 A: \({1 \over {2 - x}} = \sum\limits_{n = 0}^\infty { { { { x^n}} \over { { 2^{n }}}}} \),\(( - 2,2)\) B: \({1 \over {2 - x}} = \sum\limits_{n = 0}^\infty { { { { x^n}} \over { { 2^{n }}}}} \),\(\left( { - 2,2} \right]\) C: \({1 \over {2 - x}} = \sum\limits_{n = 0}^\infty { { { { x^n}} \over { { 2^{n + 1}}}}} \),\(( - 2,2)\) D: \({1 \over {2 - x}} = \sum\limits_{n = 0}^\infty { { { { x^n}} \over { { 2^{n + 1}}}}} \),\(\left( { - 2,2} \right]\)
- 设幂级数\(\sum\limits_{n = 0}^\infty { { a_n}} {x^n}\)与\(\sum\limits_{n = 1}^\infty { { b_n}{x^n}} \)的收敛半径分别为\( { { \sqrt 5 } \over 3}\)与\({1 \over 3}\),则幂级数\(\sum\limits_{n = 1}^\infty { { {a_n^2} \over {b_n^2}}} {x^n}\)的收敛半径为( )。 A: 5 B: \( { { \sqrt 5 } \over 3}\) C: \({1 \over 3}\) D: \({1 \over 5}\)
- 将\(f(x)=e^x\)展开成\((x-3)\)的幂级数为( )。 A: \(\sum\limits_{n = 0}^\infty { { { { {(x - 3)}^n}} \over {n!}}} \matrix{ {} & {} \cr } ( - 1, 1)\) B: \({e^3}\sum\limits_{n = 0}^\infty { { { { {(x - 3)}^n}} \over {n!}}} \matrix{ {} & {} \cr } ( - 1, 1)\) C: \(\sum\limits_{n = 0}^\infty { { { { {(x - 3)}^n}} \over {n!}}} \matrix{ {} & {} \cr } ( - \infty , + \infty )\) D: \({e^3}\sum\limits_{n = 0}^\infty { { { { {(x - 3)}^n}} \over {n!}}} \matrix{ {} & {} \cr } ( - \infty , + \infty )\)