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Question 1163863: Question: The sum of three numbers in a GP is 14. If the first two terms are each increased by 1 and the third term decreased by 1, the resulting sumber are in ARITHMETIC sequence. Find the Geometric sequence.
How far I got:
a + ar + ar^2 = 14 (1)
(a+1), (ar+1), (ar^2 - 1) = AP with sum of 15 (2)
Since the(2) is an AP:(ar+1) = [(a+1) + (ar^2 - 1)]/ 2
(ar+1) = [a(1+ar^2)]/2
2(ar+1) = a(1+ar^2)
Am I on the right path or does it need some other approach?
Than you
Answer by ikleyn(52879)   (Show Source):
You can put this solution on YOUR website! .
Your first equation is
a + ar + ar^2 = 14 (1)
Let's will make the second equation.
Since the(2) is an AP : (ar+1) = [(a+1) + (ar^2 - 1)]/ 2
Simplify it by canceling "1" and "-1" inside the [ . . . ].
(ar+1) = [a + ar^2]/ 2
2ar + 2 = a + ar^2
a - 2ar + ar^2 = 2 (2)
Write equations (1) and (2) together
a + ar + ar^2 = 14 (1)
a - 2ar + ar^2 = 2 (2)
Subtract eq(2) from eq(1)
3ar = 12
ar = 12/3 = 4. (3)
Now, in equation (1), replace ar by 4 TWO TIMES, based on (3). You will get then
a + 4 + 4r = 14
a + r = 14-4 = 10.
Now you have two equations
a + r = 10
and
ar = 4.
You can solve it via substitution a = 10 - r
(10-r)*r = 4
10r - r^2 = 4
r^2 - 10r + 4 = 0
and so on . . .
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