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प्रश्न
Find four numbers in A.P. whose sum is 20 and the sum of whose squares is 120.
उत्तर
Let the four numbers in A.P be (a – 3d), (a – d), (a + d) and (a + 3d).
Then, (a – 3d) + (a – d) + (a + d) + (a + 3d) = 20
`\implies` 4a = 20
`\implies` a = 5
It is given that
(a – 3d)2 + (a – d)2 + (a + d)2 + (a + 3d)2 = 120
`\implies` a2 + 9d2 – 6ad + a2 + d2 – 2ad + a2 + d2 + 2ad + a2 + 9d2 + 6ad = 120
`\implies` 4a2 + 20d2 = 120
`\implies` a2 + 5d2 = 30
`\implies` 52 + 5d2 = 30
`\implies` 25 + 5d2 = 30
`\implies` 5d2 = 5
`\implies` d2 = 1
`\implies` d = ±1
When a = 5, d = 1
a – 3d = 5 – 3(1) = 2
a – d = 5 – 1 = 4
a + d = 5 + 1 = 6
a + 3d = 5 + 3(1) = 8
When a = 5, d = –1
a – 3d = 5 – 3(–1) = 8
a – d = 5 – (–1) = 6
a + d = 5 + (–1) = 4
a + 3d = 5 + 3(–1) = 2
Thus, the four parts are (2, 4, 6, 8) or (8, 6, 4, 2).
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