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Question Number 186805 by pascal889 last updated on 10/Feb/23

	Answered by Rasheed.Sindhi last updated on 10/Feb/23

	$r = \frac{a_{4}}{a_{10}} = \frac{a_{1}}{a_{4}}$ $r = \frac{a + 3 d}{a + 9 d} = \frac{a}{a + 3 d}$ $r - 1 = \frac{a + 3 d}{a + 9 d} - 1 = \frac{a}{a + 3 d} - 1$ $r - 1 = \frac{- 6 d}{a + 9 d} = \frac{- 3 d}{a + 3 d}$ $\frac{r - 1}{- 3 d} = \frac{2}{a + 9 d} = \frac{1}{a + 3 d}$ $a + 9 d = 2 a + 6 d$ $a = 3 d$ $\frac{r - 1}{- 3 d} = \frac{1}{a + 3 d} \Rightarrow \frac{r - 1}{- a} = \frac{1}{2 a}$ $1 - r = \frac{1}{2}$ $r = \frac{1}{2}$ $f i r s t t e r m o f g p : 4$ $c o m m o n r a t i o = \frac{1}{2}$ $S_{6} = 4 (\frac{1 - {(1 / 2)}^{6}}{1 - 1 / 2}) = 4 (\frac{63 / 64}{1 / 2})$ $4 (\frac{\frac{63}{64}}{\frac{1}{2}}) = 4 \times \frac{63}{64} \times 2 = \frac{63}{8} = 7 \frac{7}{8}$
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