SOLUTION: Three numbers form a geometric progression. If 4 is subtracted from the third term, then the three numbers will form an arithmetic progression. If, after this, 1 is subtracted from

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Question 1151135: Three numbers form a geometric progression. If 4 is subtracted from the third term, then the three numbers will form an arithmetic progression. If, after this, 1 is subtracted from the second and third terms of the progression, then it will again result in a geometric progression. Find these three numbers.
Answer by greenestamps(13198)   (Show Source): You can put this solution on YOUR website!


There are probably nicer ways to solve this problem.... But this is what I came up with.

The original geometric progression is

a, ar, ar^2

When 4 is subtracted from the third number, the resulting progression

a, ar, ar^2-4

is an arithmetic progression.

Then when 1 is subtracted from the second and third terms, the resulting progression

a, ar-1, ar^2-5

is again a geometric progression.

(1) Using the fact that the last progression is geometric:






[1]

(2) Using the fact that the second progression is arithmetic:


[2]

(3) Substituting [2] in [1]....







Both solutions satisfy the conditions of the problem.

(A) r = 3

From [1], a = 1/(2(3)-5) = 1/1 = 1.

The original sequence is

1, 3, 9

When 4 is subtracted from the third number, the resulting sequence is

1, 3, 5

which is an arithmetic progression.

Then when 1 is subtracted from each of the second and third terms, the resulting sequence is

1, 2, 4

which is again a geometric progression.

(B) r = 7

From [1], a = 1/(2(7)-5) = 1/9.

The original sequence is

1/9, 7/9, 49/9

When 4 is subtracted from the third number, the resulting sequence is

1/9, 7/9, 13/9

which is an arithmetic progression.

Then when 1 is subtracted from each of the second and third terms, the resulting sequence is

1/9, -2/9, 4/9

which is again a geometric progression.
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