Difference between revisions of "1985 AHSME Problems/Problem 29"

Latest revision as of 17:44, 18 October 2025

Problem

In their base $10$ representations, the integer $a$ consists of a sequence of $1985$ eights and the integer $b$ consists of a sequence of $1985$ fives. What is the sum of the digits of the base $10$ representation of the integer $9ab$ ?

$\mathrm{(A)\ } 15880 \qquad \mathrm{(B) \ }17856 \qquad \mathrm{(C) \ } 17865 \qquad \mathrm{(D) \ } 17874 \qquad \mathrm{(E) \ }19851$

Solution 1

By the formula for the sum of a geometric series, $\begin{align*}a &= 8 \cdot 10^0 + 8 \cdot 10^1 + \dotsb + 8 \cdot 10^{1984} \\ &= \frac{8\left(10^{1985}-1\right)}{10-1} \\ &= \frac{8\left(10^{1985}-1\right)}{9},\end{align*}$ and similarly $b = \frac{5\left(10^{1985}-1\right)}{9},$ so $\begin{align*}9ab &= 9\cdot\frac{8\left(10^{1985}-1\right)}{9}\cdot\frac{5\left(10^{1985}-1\right)}{9} \\ &= \frac{40\left(10^{1985}-1\right)^2}{9} \\ &= \frac{40\left(10^{3970}-2 \cdot 10^{1985}+1\right)}{9} \\ &= \frac{4\left(10^{3971}-2 \cdot 10^{1986}+10\right)}{9}.\end{align*}$

We now compute the decimal expansion of this expression. Firstly, $10^{3971} = 100 \dotsb 0$ , with $1$ one and $3971$ zeroes, and $2 \cdot 10^{1986} = 200 \dotsb 0$ , with $1$ two and $1986$ zeroes. Subtracting therefore gives $10^{3971}-2 \cdot 10^{1986} = 99 \dotsb 9800 \dotsb 0,$ where there are $3971-1986-1 = 1984$ nines followed by $1$ eight and then $1986$ zeroes. Adding $10$ transforms this to $99 \dotsb 9800 \dotsb 010$ , now with $1984$ nines followed by $1$ eight, $1984$ zeroes, $1$ one, and a final zero.

Using long division, and noting that $80 = 8 \cdot 9 + 8$ and $81 = 9 \cdot 9$ , it follows that $\frac{4\left(10^{3971}-2 \cdot 10^{1986}+10\right)}{9} = 11 \dotsb 1088 \dotsb 890,$ with $1984$ ones, $1$ zero, then $1984$ eights, $1$ nine, and a final zero. Lastly, using long multiplication and noting that $9 \cdot 4 = 36$ , $8 \cdot 4 = 32$ , and $8 \cdot 4 + 3 = 35$ , we obtain $\frac{4\left(10^{3971}-2 \cdot 10^{1986}+10\right)}{9} = 44 \dotsb 4355 \dotsb 560,$ where there are $1984$ fours, $1$ three, $1984$ fives, $1$ six, and a final zero, so the sum of the digits is $\begin{align*}1984 \cdot 4 + 3 + 1984 \cdot 5 + 6 + 0 &= 1984 \cdot 9 + 9 \\ &= 1985 \cdot 9 \\ &= \boxed{\text{(C)} \ 17865}.\end{align*}$

Solution 2

Factoring out the 8 and the 5, we get $9ab = 10\cdot4\cdot9\cdot111 \dotsb 1 \cdot 111\dotsb1,$ where there are $1985$ ones in both numbers.

This is equal to $10 \cdot 4 \cdot (1000\dotsb 0 - 1) \cdot 111\dotsb 1$ where there is an initial $1$ followed by $1985$ zeros and the second number has $1985$ ones.

Multiplying then subtracting gives us $4 \cdot 10 \cdot 111\dotsb 10888 \dotsb 89,$ where there are $1984$ ones and $1984$ eights.

Multiplying one last time, then adding the $0$ at the end gives us $44 \dotsb 4355 \dotsb 560,$ where there are $1984$ fours, $1$ three, $1984$ fives, $1$ six, and a final zero, so the sum of the digits is $1984(4+5)+6+3 = 1985 \cdot 9 = \boxed{ \text{ C) }17865}$

1985 AHSME (Problems • Answer Key • Resources)
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Difference between revisions of "1985 AHSME Problems/Problem 29"

Latest revision as of 17:44, 18 October 2025

Contents

Problem

Solution 1

Solution 2

See Also

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