How do you find the sum given $Sigma(2i+1)$ from i=1 to 5?

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How do you find the sum given $Sigma(2i+1)$ from i=1 to 5?

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Answer 1 · 2016-10-31T13:57:29

$sum_(i=1)^(i=5)(2i+1) = 35$

Explanation:

$sum_(i=1)^(i=5)(2i+1) = (2(1)+1) + (2(2)+1) + (2(3)+1) + (2(4)+1) + (2(5)+1)$
$:. sum_(i=1)^(i=5)(2i+1) = (2+1) + (4+1) + (6+1) + (8+1) + (10+1)$
$:. sum_(i=1)^(i=5)(2i+1) = 3 + 5 + 7 + 9 + 11$
$:. sum_(i=1)^(i=5)(2i+1) = 35$

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How do you find the sum given $Sigma(2i+1)$ from i=1 to 5?

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