Difference between revisions of "2023 AIME I Problems/Problem 15"
m (→Problem 20) |
(→Problem) |
||
(11 intermediate revisions by 8 users not shown) | |||
Line 1: | Line 1: | ||
− | ==Problem | + | ==Problem== |
Find the largest prime number <math>p<1000</math> for which there exists a complex number <math>z</math> satisfying | Find the largest prime number <math>p<1000</math> for which there exists a complex number <math>z</math> satisfying | ||
− | |||
* the real and imaginary part of <math>z</math> are both integers; | * the real and imaginary part of <math>z</math> are both integers; | ||
− | |||
* <math>|z|=\sqrt{p},</math> and | * <math>|z|=\sqrt{p},</math> and | ||
− | |||
* there exists a triangle whose three side lengths are <math>p,</math> the real part of <math>z^{3},</math> and the imaginary part of <math>z^{3}.</math> | * there exists a triangle whose three side lengths are <math>p,</math> the real part of <math>z^{3},</math> and the imaginary part of <math>z^{3}.</math> | ||
==Solution== | ==Solution== | ||
+ | Assume that <math>z=a+bi</math>. Then, | ||
+ | <cmath>z^3=(a^3-3ab^2)+(3a^2b-b^3)i</cmath>Note that by the Triangle Inequality, | ||
+ | <cmath>|(a^3-3ab^2)-(3a^2b-b^3)|<p\implies |a^3+b^3-3ab^2-3a^2b|<a^2+b^2</cmath>Thus, we know | ||
+ | <cmath>|a+b||a^2+b^2-4ab|<a^2+b^2</cmath>Without loss of generality, assume <math>a>b</math> (as otherwise, consider <math>i^3\overline z=b+ai</math>). If <math>|a/b|\geq 4</math>, then | ||
+ | <cmath>17b^2\geq a^2+b^2>|a+b||a^2+b^2-4ab|\geq |b-4b||16b^2-16b^2+b^2|=3b^3</cmath>`Thus, this means <math>b\leq\frac{17}3</math> or <math>b\leq 5</math>. Also note that the roots of <math>x^2-4x+1</math> are <math>2\pm\sqrt 3</math>, so thus if <math>b\geq 6</math>, | ||
+ | <cmath>2\sqrt 3b=(2(2-\sqrt 3)-4)b<a<4b</cmath>Note that | ||
+ | <cmath>1000>p=a^2+b^2\geq 12b^2+b^2=13b^2</cmath>so <math>b^2<81</math>, and <math>b<9</math>. If <math>b=8</math>, then <math>16\sqrt 3\leq a\leq 32</math>. Note that <math>\gcd(a,b)=1</math>, and <math>a\not\equiv b\pmod 2</math>, so <math>a=29</math> or <math>31</math>. However, then <math>5\mid a^2+b^2</math>, absurd. | ||
+ | |||
+ | If <math>b=7</math>, by similar logic, we have that <math>14\sqrt 3 <a< 28</math>, so <math>b=26</math>. However, once again, <math>5\mid a^2+b^2</math>. If <math>b=6</math>, by the same logic, <math>12\sqrt3<a<24</math>, so <math>a=23</math>, where we run into the same problem. Thus <math>b\leq 5</math> indeed. | ||
+ | |||
+ | If <math>b=5</math>, note that | ||
+ | <cmath>(a+5)(a^2+25-20a)<a^2+25\implies a<20</cmath>We note that <math>p=5^2+18^2=349</math> works. Thus, we just need to make sure that if <math>b\leq 4</math>, <math>a\leq 18</math>. But this is easy, as | ||
+ | <cmath>p>(a+b)(a^2+b^2-4ab)\geq (4+18)(4^2+18^2-4\cdot 4\cdot 18)>1000</cmath>absurd. Thus, the answer is <math>\boxed{349}</math>. | ||
+ | |||
+ | ==Solution 2== | ||
Denote <math>z = a + i b</math>. Thus, <math>a^2 + b^2 = p</math>. | Denote <math>z = a + i b</math>. Thus, <math>a^2 + b^2 = p</math>. | ||
Line 84: | Line 96: | ||
To facilitate efficient search, we apply the following criteria: | To facilitate efficient search, we apply the following criteria: | ||
− | \begin{enumerate} | + | \begin{enumerate*} |
\item To satisfy (7) and <math>a^2 + b^2 < 1000</math>, we have <math>1 \leq b \leq 15</math>. | \item To satisfy (7) and <math>a^2 + b^2 < 1000</math>, we have <math>1 \leq b \leq 15</math>. | ||
In the outer layer, we search for <math>b</math> in a decreasing order. | In the outer layer, we search for <math>b</math> in a decreasing order. | ||
Line 120: | Line 132: | ||
\item We use the following criteria to quickly eliminate <math>a</math> that make <math>a^2 + b^2</math> a composite number. | \item We use the following criteria to quickly eliminate <math>a</math> that make <math>a^2 + b^2</math> a composite number. | ||
− | + | ||
− | + | * For <math>b \equiv 1 \pmod{2}</math>, we eliminate <math>a</math> satisfying <math>a \equiv 1 \pmod{2}</math>. | |
− | + | ||
− | + | * For <math>b \equiv \pm 1 \pmod{5}</math> (resp. <math>b \equiv \pm 2 \pmod{5}</math>), we eliminate <math>a</math> satisfying <math>a \equiv \pm 2 \pmod{5}</math> (resp. <math>a \equiv \pm 1 \pmod{5}</math>). | |
+ | |||
\item For the remaining <math>\left( b, a \right)</math>, check whether (8) and the condition that <math>a^2 + b^2</math> is prime are both satisfied. | \item For the remaining <math>\left( b, a \right)</math>, check whether (8) and the condition that <math>a^2 + b^2</math> is prime are both satisfied. | ||
Line 142: | Line 155: | ||
~Steven Chen (Professor Chen Education Palace, www.professorchenedu.com) | ~Steven Chen (Professor Chen Education Palace, www.professorchenedu.com) | ||
+ | |||
+ | |||
+ | ==Video Solution== | ||
+ | |||
+ | https://youtu.be/tELK8fy36bs | ||
+ | |||
+ | ~MathProblemSolvingSkills.com | ||
+ | |||
==Animated Video Solution== | ==Animated Video Solution== |
Latest revision as of 00:49, 21 August 2024
Contents
Problem
Find the largest prime number for which there exists a complex number satisfying
- the real and imaginary part of are both integers;
- and
- there exists a triangle whose three side lengths are the real part of and the imaginary part of
Solution
Assume that . Then, Note that by the Triangle Inequality, Thus, we know Without loss of generality, assume (as otherwise, consider ). If , then `Thus, this means or . Also note that the roots of are , so thus if , Note that so , and . If , then . Note that , and , so or . However, then , absurd.
If , by similar logic, we have that , so . However, once again, . If , by the same logic, , so , where we run into the same problem. Thus indeed.
If , note that We note that works. Thus, we just need to make sure that if , . But this is easy, as absurd. Thus, the answer is .
Solution 2
Denote . Thus, .
Thus,
Because , , are three sides of a triangle, we have and . Thus,
Because , , are three sides of a triangle, we have the following triangle inequalities:
We notice that , and , , and form a right triangle. Thus, . Because , . Therefore, (3) holds.
Conditions (4) and (5) can be written in the joint form as
We have
and .
Thus, (5) can be written as
Therefore, we need to jointly solve (1), (2), (6). From (1) and (2), we have either , or . In (6), by symmetry, without loss of generality, we assume .
Thus, (1) and (2) are reduced to
Let . Plugging this into (6), we get
Because is a prime, and are relatively prime.
Therefore, we can use (7), (8), , and and are relatively prime to solve the problem.
To facilitate efficient search, we apply the following criteria:
\begin{enumerate*} \item To satisfy (7) and , we have . In the outer layer, we search for in a decreasing order. In the inner layer, for each given , we search for . \item Given , we search for in the range . \item We can prove that for , there is no feasible . The proof is as follows.
For , to satisfy , we have . Thus, . Thus, the R.H.S. of (8) has the following upper bound
Hence, to satisfy (8), a necessary condition is
However, this cannot be satisfied for . Therefore, there is no feasible solution for . Therefore, we only need to consider .
\item We eliminate that are not relatively prime to .
\item We use the following criteria to quickly eliminate that make a composite number.
- For , we eliminate satisfying .
- For (resp. ), we eliminate satisfying (resp. ).
\item For the remaining , check whether (8) and the condition that is prime are both satisfied.
The first feasible solution is and . Thus, .
\item For the remaining search, given , we only search for .
Following the above search criteria, we find the final answer as and . Thus, the largest prime is .
~Steven Chen (Professor Chen Education Palace, www.professorchenedu.com)
Video Solution
~Steven Chen (Professor Chen Education Palace, www.professorchenedu.com)
Video Solution
~MathProblemSolvingSkills.com
Animated Video Solution
~Star League (https://starleague.us)
See also
2023 AIME I (Problems • Answer Key • Resources) | ||
Preceded by Problem 14 |
Followed by Last Problem | |
1 • 2 • 3 • 4 • 5 • 6 • 7 • 8 • 9 • 10 • 11 • 12 • 13 • 14 • 15 | ||
All AIME Problems and Solutions |
The problems on this page are copyrighted by the Mathematical Association of America's American Mathematics Competitions.