Lim-199-299-399- n99-n100- -EAMCET 1994-

Lim_π→∞1^99+2^99+3^99+⋯⋯ n^99/n^100= lim_π→∞∑_r=1^n ( r^99/n^100 ) = lim_π→∞1/n∑_r=1^n ( r/n )^99 = ∫_0^1 x^99 dx= [ x^100/100 ]^1_0 =1/100 ...

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Byju's Answer

Standard XII

Mathematics

Definite Integral as Limit of Sum

limπ→∞199+299...

Question

${lim}_{π \to \infty} \frac{1^{99} + 2^{99} + 3^{99} + \dots \dots n^{99}}{n^{100}} =$ [EAMCET 1994]

$\frac{9}{100}$

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$\frac{1}{100}$

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$\frac{1}{99}$

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$\frac{1}{101}$

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Solution

The correct option is B
$\frac{1}{100}$

${lim}_{π \to \infty} \frac{1^{99} + 2^{99} + 3^{99} + \dots \dots n^{99}}{n^{100}} = {lim}_{π \to \infty} \sum_{r = 1}^{n} (\frac{r^{99}}{n^{100}})$
$= {lim}_{π \to \infty} \frac{1}{n} \sum_{r = 1}^{n} {(\frac{r}{n})}^{99} = \int_{0}^{1} x^{99} d x = {[\frac{x^{100}}{100}]}_{0}^{1} = \frac{1}{100}$

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Similar questions

${lim}_{π \to \infty} \frac{1^{99} + 2^{99} + 3^{99} + \dots \dots n^{99}}{n^{100}} =$ [EAMCET 1994]

Q. What is the remainder when p - q is divided by 100, if

p = 2^{99} + 4^{99} + 6^{99} + 8^{99} + . . . . . . . . . + 100^{99}

and

q = 1^{99} + 3^{99} + 5^{99} + 7^{99} + . . . . . . . . . . + 99^{99} ?

Based on the information given in the table, identify the kind of series the table represents :

$\begin{matrix} Marks & Frequency 100 - 199 & 80 200 - 299 & 123 300 - 399 & 34 400 - 499 & 48 \end{matrix}$

Q. An clement, X has the following isotopic composition,

^{299} X : 90

^{199} X : 8

^{202} X : 2

%
the weighted average atomic mass of the naturally- occurring element 'X' is closest to:

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limπ→∞199+299+399+⋯⋯n99n100= [EAMCET 1994]

The correct option is B 1100 limπ→∞199+299+399+⋯⋯n99n100=limπ→∞∑nr=1(r99n100) =limπ→∞1n∑nr=1(rn)99=∫10 x99 dx=[x100100]10=1100

${lim}_{π \to \infty} \frac{1^{99} + 2^{99} + 3^{99} + \dots \dots n^{99}}{n^{100}} =$ [EAMCET 1994]