Find the value of 1 <mrow class="MJX-TeXAtom-ORD"> 2 ( 2

Oakey1w

Oakey1w

Answered question

2022-06-20

Find the value of 1 2 ( 2 2 1 ) + 1 3 ( 3 2 1 ) + 1 4 ( 4 2 1 ) + .

Answer & Explanation

Haggar72

Haggar72

Beginner2022-06-21Added 25 answers

You can continue with the partial sums as
n = 2 N ( 1 n + 1 2 ( n + 1 ) + 1 2 ( n 1 ) ) = n = 2 N ( ( 1 2 ( n 1 ) 1 2 n ) + ( 1 2 ( n + 1 ) 1 2 n ) ) = n = 2 N ( 1 2 ( n 1 ) 1 2 n ) + n = 2 N ( 1 2 ( n + 1 ) 1 2 n ) = 1 4 1 2 N + 1 2 ( N + 1 ) = 1 4 1 2 N ( N + 1 ) .
Now take the limit N + and conclude.
Layla Velazquez

Layla Velazquez

Beginner2022-06-22Added 11 answers

Use this in
n 2 1 ( n 1 ) ( n ) ( n + 1 )
Here's what you'll get :
(*) n 2 1 2 ( 1 ( n 1 ) ( n ) 1 ( n ) ( n + 1 ) ) 1 2 ( n 2 1 ( n 1 ) ( n ) n 2 1 ( n ) ( n + 1 ) )
So , the first sum is
(1) n 2 1 ( n 1 ) ( n ) = n 2 ( 1 ( n 1 ) 1 n ) = 1
and the secong sum will be
(2) n 2 1 ( n ) ( n + 1 ) = n 2 ( 1 n 1 n + 1 ) = 1 2
Using the values of sums from (1) and (2) in (∗)
n 2 1 n ( n 2 1 ) = 1 2 ( 1 1 2 ) 1 4

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