Difference between revisions of "2020 CIME I Problems/Problem 13"

Revision as of 23:46, 6 July 2022

Problem 13

Chris writes on a piece of paper the positive integers from $1$ to $8$ in that order. Then, he randomly writes either $+$ or $\times$ between every two adjacent numbers, each with equal probability. The expected value of the expression he writes can be expressed as $\frac{p}{q}$ for relatively prime positive integers $p$ and $q$ . Find the remainder when $p+q$ is divided by $1000$ .

$\frac 23 \cdot h + \frac 25 \cdot a=26$

$h+a=49$

$\frac 23 \cdot (49-a) + \frac 25 \cdot a=26$

$\frac {98}{3}-\frac {2a}{3} + \frac {2a}{5}=26$

$\frac {-4a}{15}= \frac {-20}{3}$

First we thought we should make two variables for two different types of games, $a$ (away games) $h$ (home games). We knew $\frac 23 \cdot h + \frac 25 \cdot a=26$ We also knew that $h+a=49$ , which means $h=49-a$ . So we replaced $h$ in our first equation with $49-a$ , so now it is: $\frac 23 \cdot (49-a) + \frac 25 \cdot a=26$ . Solving this we get: $\frac {98}{3}-\frac {2a}{3} + \frac {2a}{5}=26$ solving this further, we get $\frac {-4a}{15}= \frac {-20}{3}$ . Solving this we get $a=25,$ and going back to $h=49-a,$ we replace $a$ with $25$ and because $49-25=24, h=24$ .

Solution

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 ==Problem 13==
 Chris writes on a piece of paper the positive integers from <math>1</math> to <math>8</math> in that order. Then, he randomly writes either <math>+</math> or <math>\times</math> between every two adjacent numbers, each with equal probability. The expected value of the expression he writes can be expressed as <math>\frac{p}{q}</math> for relatively prime positive integers <math>p</math> and <math>q</math>. Find the remainder when <math>p+q</math> is divided by <math>1000</math>.
+<math>\frac 23 \cdot h + \frac 25 \cdot a=26</math>
+<math>h+a=49</math>
+<math>\frac 23 \cdot (49-a) + \frac 25 \cdot a=26</math>
+<math>\frac {98}{3}-\frac {2a}{3} + \frac {2a}{5}=26</math>
+<math>\frac {-4a}{15}= \frac {-20}{3}</math>
+First we thought we should make two variables for two different types of games, <math>a</math> (away games) <math>h</math> (home games). We knew <math>\frac 23 \cdot h + \frac 25 \cdot a=26</math> We also knew that <math>h+a=49</math>, which means <math>h=49-a</math>. So we replaced <math>h</math> in our first equation with <math>49-a</math>, so now it is: <math>\frac 23 \cdot (49-a) + \frac 25 \cdot a=26</math>. Solving this we get: <math>\frac {98}{3}-\frac {2a}{3} + \frac {2a}{5}=26</math> solving this further, we get <math>\frac {-4a}{15}= \frac {-20}{3}</math>. Solving this we get <math>a=25,</math> and going back to <math>h=49-a,</math> we replace <math>a</math> with <math>25</math> and because <math>49-25=24, h=24</math>.
 ==Solution==

2020 CIME I (Problems • Answer Key • Resources)
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Difference between revisions of "2020 CIME I Problems/Problem 13"

Revision as of 23:46, 6 July 2022

Problem 13

Solution

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