Difference between revisions of "1982 AHSME Problems/Problem 15"

Latest revision as of 21:41, 16 August 2022

Problem

Let $[z]$ denote the greatest integer not exceeding $z$ . Let $x$ and $y$ satisfy the simultaneous equations

$\begin{align*} y&=2[x]+3 \\ y&=3[x-2]+5. \end{align*}$

If $x$ is not an integer, then $x+y$ is

$\text {(A) } \text{ an integer} \qquad \text {(B) } \text{ between 4 and 5} \qquad \text{(C) }\text{ between -4 and 4}\qquad\\ \text{(D) }\text{ between 15 and 16}\qquad \text{(E) } 16.5$

Solution

We simply ignore the floor of $x$ . Then, we have $y$ = $2x + 3$ = $3(x-2)+5$ . Solving for $3x - 1 = 2x + 3$ , we get $x = 4$ . For the floor of $x$ , we have $x$ is between $4$ and $5$ . Plugging in $8$ + $3$ = $11$ for $y$ , we have $y = 11$ . We have $11 + 4.x$ = $\boxed {(D)}$

~Arcticturn

Solution 2 (RIGID)

Since $x$ is not an integer, we let $x=a+b$ , where $0<b<1$ .

So $2[x]+3=2a+3$ . $3[x-2]+5=3a-1$ .

$2a+3=3a-1$ . $a=4$ . So we know that $x$ is between 4 and 5. $y=11$ . So $x+y$ is between $15$ and $16$ . Select $\boxed{D}$ .

~Alvie567

@@ Line 22: / Line 22: @@
 So <math>2[x]+3=2a+3</math>. <math>3[x-2]+5=3a-1</math>.
-<math>2a+3=3a-1</math>. <math>a=4</math>. So we know that <math>x</math> is between 4 and 5<math>. </math>y=11<math>. So </math>x+y<math> is between </math>15<math> and </math>16<math>. Select </math>\boxed{D}$.
+<math>2a+3=3a-1</math>. <math>a=4</math>. So we know that <math>x</math> is between 4 and 5. <math>y=11</math>. So <math>x+y</math> is between <math>15</math> and <math>16</math>. Select <math>\boxed{D}</math>.
-~hastapasta
+~Alvie567

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Difference between revisions of "1982 AHSME Problems/Problem 15"

Latest revision as of 21:41, 16 August 2022

Problem

Solution

Solution 2 (RIGID)