Difference between revisions of "2003 AIME II Problems/Problem 8"

(Added an additional, though tedious, solution.)
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<math>C_8 - C_7 = -588 \rightarrow \boxed{C_8 = 348}</math>.
 
<math>C_8 - C_7 = -588 \rightarrow \boxed{C_8 = 348}</math>.
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==Solution 4(Tedious) ==
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Start by labeling the two sequences:
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Sequence 1:<math>a,a+d_1,a+2d_1,\dots a+(n-1)d_1</math>,
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Sequence 2:<math>b,b+d_2,b+2d_2,\dots b+(n-1)d_2</math>.
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Additionally, we'll label the sequence given in the problem the function <math>f</math>, such that
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<math>f(1)=1440,f(2)=1716,f(3)=1848</math>.
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Then, <math>f(1)=ab,</math> <math>f(2)=(a+d_1)(b+d_2),</math> and <math>f(3)=(a+2d_1)(b+2d_2)</math>
  
 
==See also ==
 
==See also ==

Revision as of 12:45, 22 June 2021

Problem

Find the eighth term of the sequence $1440,$ $1716,$ $1848,\ldots,$ whose terms are formed by multiplying the corresponding terms of two arithmetic sequences.

Solution 1

If you multiply the corresponding terms of two arithmetic sequences, you get the terms of a quadratic function. Thus, we have a quadratic $ax^2+bx+c$ such that $f(1)=1440$, $f(2)=1716$, and $f(3)=1848$. Plugging in the values for x gives us a system of three equations:

$a+b+c=1440$

$4a+2b+c=1716$

$9a+3b+c=1848$

Solving gives $a=-72, b=492,$ and $c=1020$. Thus, the answer is $-72(8)^2+492\cdot8+1020= \boxed{348}.$

Solution 2

Setting one of the sequences as $a+nr_1$ and the other as $b+nr_2$, we can set up the following equalities

$ab = 1440$

$(a+r_1)(b+r_2)=1716$

$(a+2r_1)(b+2r_2)=1848$

We want to find $(a+7r_1)(b+7r_2)$

Foiling out the two above, we have

$ab + ar_2 + br_1 + r_1r_2 = 1716$ and $ab + 2ar_2 + 2br_1 + 4r_1r_2 = 1848$

Plugging in $ab=1440$ and bringing the constant over yields

$ar_2 + br_1 + r_1r_2 = 276$

$ar_2 + br_1 + 2r_1r_2 = 204$

Subtracting the two yields $r_1r_2 = -72$ and plugging that back in yields $ar_2 + br_1 = 348$

Now we find

$(a+7r_1)(b+7r_2) = ab + 7(ar_2 + br_1) + 49r_1r_2 = 1440 + 7(348) + 49(-72) = \boxed{348}$.

Solution 3

Let the first sequence be

$A={a+d_1, a + 2d_1, a + 3d_1, \cdots}$

and the second be

$B={b+d_2, b + 2d_2, b + 3d_2, \cdots}$,

with $(a+d_1)(b+d_2)=1440$. Now, note that the $n^{\text{th}}$ term of sequence $A$ is $a+d_1 n$ and the $n^{\text{th}}$ term of $B$ is $b + d_2  n$. Thus, the $n^{\text{th}}$ term of the given sequence is

$n^2(d_1 + d_2) + n(ad_2 + bd_1) + ab$,

a quadratic in $n$. Now, letting the given sequence be $C$, we see that

$C_n - C_{n-1} = n^2(d_1 + d_2) + n(ad_2 + bd_1) + ab - (n-1)^2(d_1 + d_2) - (n-1)(ad_2 + bd_1) - ab = n(2d_1 + 2d_2) + ad_2 + bd_1 - d_1 - d_2$,

a linear equation in $n$! Since $C_2 - C_1 = 276$ and $C_3 - C_2 = 132$, we can see that, in general, we have

$C_n - C_{n-1} = 420 - 144n$.

Thus, we can easily find

$C_4 - C_3 = -12 \rightarrow C_4 = 1836$,

$C_5 - C_4 = -156 \rightarrow C_5 = 1680$,

$C_6 - C_5 = -300 \rightarrow C_6 = 1380$,

$C_7 - C_6 = -444 \rightarrow C_7 = 936$, and finally

$C_8 - C_7 = -588 \rightarrow \boxed{C_8 = 348}$.

Solution 4(Tedious)

Start by labeling the two sequences:

Sequence 1:$a,a+d_1,a+2d_1,\dots a+(n-1)d_1$,

Sequence 2:$b,b+d_2,b+2d_2,\dots b+(n-1)d_2$.

Additionally, we'll label the sequence given in the problem the function $f$, such that

$f(1)=1440,f(2)=1716,f(3)=1848$.

Then, $f(1)=ab,$ $f(2)=(a+d_1)(b+d_2),$ and $f(3)=(a+2d_1)(b+2d_2)$

See also

2003 AIME II (ProblemsAnswer KeyResources)
Preceded by
Problem 7
Followed by
Problem 9
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15
All AIME Problems and Solutions

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