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प्रश्न
| Column I | Column II |
| (a) `4, 1, 1/4, 1/16` | (i) A.P |
| (b) 2, 3, 5, 7 | (ii) Sequence |
| (c) 13, 8, 3, –2, –7 | (iii) G.P. |
उत्तर
| Column I | Column II |
| (a) `4, 1, 1/4, 1/16` | (i) G.P |
| (b) 2, 3, 5, 7 | (ii) Sequence |
| (c) 13, 8, 3, –2, –7 | (iii) A.P. |
Explanation:
(a) `4, 1, 1/4, 1/16`
Here, `a_2/a_1 = 1/4`
`a_3/a_2 = 1/4`
And `a_4/a_3 = (1/16)/(1/4) = 1/4`
Hence it is G.P.
(b) 2, 3, 5, 7
Here a2 – a1 = 3 – 2 = 1
a3 – a2 = 5 – 3 = 2
∴ a2 – a1 ≠ a3 – a2
Hence it is not A.P
`a_2/a_1 = 3/2, a_3/a_2 = 5/3`
So, `3/2 ≠ 5/3`
So it is not G.P.
Hence it is sequence
(c) 13, 8, 3, – 2, – 7
Here a2 – a1 = 8 – 13 = – 5
a3 – a2 = 3 – 8 = – 5
So, a2 – a1 = a3 – a2 = – 5
So, it is an A.P.
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