The sum of squares of first n natural numbers is given by 1-62n3-3n2-n- Find the sum of squares of the first 10 natural numbers-

Given, the sum of squares of first n natural numbers =1/6n(n+1)(2n+1) ∴ The sum of squares of first 10 natural numbers =1/6(10)(10+1)(2 × 10 + 1)=1/6× 10 × 11 × ...

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Standard VII

Mathematics

Finding the Value of an Expression

The sum of sq...

Question

The sum of squares of first n natural numbers is given by $\frac{1}{6} (2 n^{3} + 3 n^{2} + n)$ . Find the sum of squares of the first 10 natural numbers.

360

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385

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415

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435

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Solution

The correct option is B 385
Given, the sum of squares of first n natural numbers $= \frac{1}{6} n (n + 1) (2 n + 1)$
$∴$ The sum of squares of first 10 natural numbers
$= \frac{1}{6} (10) (10 + 1) (2 \times 10 + 1) = \frac{1}{6} \times 10 \times 11 \times 21$ [put n = 10]
= 385

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Similar questions

Q. The sum of squares of first n natural numbers is given by

\frac{1}{6} n (n + 1) (2 n + 1)

\frac{1}{6} (2 n^{3} + 3 n^{2} + n)

. Find the sum of squares of the first 10 natural numbers.

Question 87

The sum of squares of first n natural numbers is given by $\frac{1}{6} n (n + 1) (2 n + 1)$ or $\frac{1}{6} (2 n^{3} + 3 n^{2} + n)$ . Find the sum of squares of the first 10 natural numbers.

Sum of squares of the first n natural numbers is given by:

The remainder obtained when the sum of squares first n odd natural numbers is divided the sum of squares of first n even natural numbers is

Q. Assertion :The variance of first

n

natural numbers is

\frac{n^{2} - 1}{6}

. Reason: The sum of the first

n

odd natural numbers is

n^{2}

and the sum of squares of first

n

odd natural numbers is

\frac{n}{3} (4 n^{2} - 1)

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The sum of squares of first n natural numbers is given by 16(2n3+3n2+n). Find the sum of squares of the first 10 natural numbers.

The correct option is B 385Given, the sum of squares of first n natural numbers =16n(n+1)(2n+1) ∴ The sum of squares of first 10 natural numbers =16(10)(10+1)(2×10+1)=16×10×11×21 [put n = 10] = 385

The sum of squares of first n natural numbers is given by $\frac{1}{6} (2 n^{3} + 3 n^{2} + n)$ . Find the sum of squares of the first 10 natural numbers.

The correct option is B 385
Given, the sum of squares of first n natural numbers $= \frac{1}{6} n (n + 1) (2 n + 1)$
$∴$ The sum of squares of first 10 natural numbers
$= \frac{1}{6} (10) (10 + 1) (2 \times 10 + 1) = \frac{1}{6} \times 10 \times 11 \times 21$ [put n = 10]
= 385