Difference between revisions of "Euclidean algorithm"

(Intermediate)
 
(38 intermediate revisions by 18 users not shown)
Line 2: Line 2:
  
 
==Main idea and Informal Description==
 
==Main idea and Informal Description==
The basic idea is to repeatedly use the fact that <math>\gcd({a,b}) \equiv \gcd({a,a - b})</math>
+
The basic idea is to repeatedly use the fact that <math>\gcd({a,b}) \equiv \gcd({b,a - b})</math>
  
If we have two non-negative integers <math>a,b</math> with <math>a\ge b</math> and <math>b=0</math>, then the greatest common divisor is <math>{a}</math>. If <math>a\ge b>0</math>, then the set of common divisors of <math>{a}</math> and <math>b</math> is the same as the set of common divisors of <math>b</math> and <math>r</math> where <math>r</math> is the [[remainder]] of division of <math>{a}</math> by <math>b</math>. Indeed, we have <math>a=mb+r</math> with some integer<math>m</math>, so, if <math>{d}</math> divides both <math>{a}</math> and <math>b</math>, it must divide both <math>{a}</math> and <math>mb</math> and, thereby, their difference <math>r</math>. Similarly, if <math>{d}</math> divides both <math>b</math> and <math>r</math>, it should divide <math>{a}</math> as well. Thus, the greatest common divisors of <math>{a}</math> and <math>b</math> and of <math>b</math> and <math>r</math> coincide: <math>GCD(a,b)=GCD(b,r)</math>. But the pair <math>(b,r)</math> consists of smaller numbers than the pair <math>(a,b)</math>! So, we reduced our task to a simpler one. And we can do this reduction again and again until the smaller number becomes <math>0</math>
+
If we have two non-negative integers <math>a,b</math> with <math>a|b</math> and <math>b\ne0</math>, then the greatest common divisor is <math>{a}</math>. If <math>a\ge b>0</math>, then the set of common divisors of <math>{a}</math> and <math>b</math> is the same as the set of common divisors of <math>b</math> and <math>r</math> where <math>r</math> is the [[remainder]] of division of <math>{a}</math> by <math>b</math>. Indeed, we have <math>a=mb+r</math> with some integer <math>m</math>, so, if <math>{d}</math> divides both <math>{a}</math> and <math>b</math>, it must divide both <math>{a}</math> and <math>mb</math> and, thereby, their difference <math>r</math>. Similarly, if <math>{d}</math> divides both <math>b</math> and <math>r</math>, it should divide <math>{a}</math> as well. Thus, the greatest common divisors of <math>{a}</math> and <math>b</math> and of <math>b</math> and <math>r</math> coincide: <math>GCD(a,b)=GCD(b,r)</math>. But the pair <math>(b,r)</math> consists of smaller numbers than the pair <math>(a,b)</math>! So, we reduced our task to a simpler one. And we can do this reduction again and again until the smaller number becomes <math>0</math>.
  
 
== General Form ==
 
== General Form ==
Line 10: Line 10:
  
 
* If <math>b=0</math>, then <math>\gcd(a,b)=a</math>.
 
* If <math>b=0</math>, then <math>\gcd(a,b)=a</math>.
* Otherwise take the remainder when <math>{a}</math> is divided by <math>a (\bmod {b})</math>, and find <math>\gcd(a,a \bmod {b})</math>.
+
* Otherwise take the remainder when <math>{a}</math> is divided by <math>a \pmod{b}</math>, and find <math>\gcd(a,a \bmod {b})</math>.
 
* Repeat this until the remainder is 0.<br>
 
* Repeat this until the remainder is 0.<br>
  
<math>a (\bmod b) \equiv r_1</math><br>
+
<math>a \pmod{b} \equiv r_1</math><br>
<math>b (\bmod r_1) \equiv r_2</math><br>
+
<math>b \pmod {r_1} \equiv r_2</math><br>
 
<math> \vdots</math> <br>
 
<math> \vdots</math> <br>
<math>r_{n-1} (\bmod r_n) \equiv 0</math><br>
+
<math>r_{n-1} \pmod {r_n} \equiv 0</math><br>
 
Then <math>\gcd({a,b}) = r_n</math><br>
 
Then <math>\gcd({a,b}) = r_n</math><br>
 +
 +
~The congruence sign above should be replaced by the normal equal sign. It's important to note that <math>a \pmod{b} = r</math><br>is the same as <math>a \equiv {r} \pmod{b}</math>.
  
 
Usually the Euclidean algorithm is written down just as a chain of divisions with remainder:
 
Usually the Euclidean algorithm is written down just as a chain of divisions with remainder:
Line 26: Line 28:
 
<math>r_1 = r_2 \cdot q_3 + r_3</math><br>
 
<math>r_1 = r_2 \cdot q_3 + r_3</math><br>
 
<math>\vdots</math><br>
 
<math>\vdots</math><br>
<math>r_{n-1} = r_n \cdot q_{n+2} +0</math><br>
+
<math>r_{n-1} = r_n \cdot q_{n+1} +0</math><br>
 
and so <math>\gcd({a,b}) = r_n</math><br>
 
and so <math>\gcd({a,b}) = r_n</math><br>
  
== Simple Example ==
+
== Example ==
To see how it works, just take an example. Say <math>a=112,b=42</math>. We have <math>112\equiv 28\pmod {42}</math>, so <math>{\gcd(112,42)}=\gcd(42,28)</math>. Similarly, <math>42\equiv 14\pmod {28}</math>, so <math>\gcd(42,28)=\gcd(28,14)</math>. Then <math>28\equiv {0}\pmod {14}</math>, so <math>{\gcd(28,14)}={\gcd(14,0)} = 14</math>. Thus <math>\gcd(112,42)=14</math>.
+
To see how it works, just take an example. Say <math>a = 93, b=42</math>. <br/>
 +
We have <math>93 \equiv 9 \pmod{42}</math>, so <math>\gcd(93,42) = \gcd(42,9)</math>. <br/>
 +
Similarly, <math>42 \equiv 6 \pmod{9}</math>, so <math>\gcd(42,9) = \gcd(9,6)</math>. <br/>
 +
Continuing, <math>9 \equiv 3 \pmod{6}</math>, so <math>\gcd(9,6) = \gcd(6,3)</math>. <br/>
 +
Then <math>6 \equiv 0 \pmod{3}</math>, so <math>\gcd(6,3) = \gcd(3,0) = 3</math>. <br/>
 +
Thus <math>\gcd(93,42) = 3</math>.
  
* <math>{112 = 2 \cdot 42 + 28 \qquad (1)}</math>
+
* <math>93 = 2 \cdot 42 + 9 \qquad (1)</math>
* <math>42 = 1\cdot 28+14\qquad (2)</math>
+
* <math>42 = 4 \cdot 9 + 6 \qquad (2)</math>
* <math>28 = 2\cdot 14+0\qquad (3)</math>
+
* <math>9 = 1 \cdot 6 + 3 \qquad (3)</math>
 +
* <math>6 = 2 \cdot 3 + 0 \qquad (4)</math>
  
== Linear Representation ==
+
== Extended Euclidean Algorithm ==
 
An added bonus of the Euclidean algorithm is the "linear representation" of the greatest common divisor. This allows us to write <math>\gcd(a,b)=ax+by</math>, where <math>x,y</math> are some elements from the same [[Euclidean Domain]] as <math>a</math> and <math>b</math> that can be determined using the algorithm. We can work backwards from whichever step is the most convenient.
 
An added bonus of the Euclidean algorithm is the "linear representation" of the greatest common divisor. This allows us to write <math>\gcd(a,b)=ax+by</math>, where <math>x,y</math> are some elements from the same [[Euclidean Domain]] as <math>a</math> and <math>b</math> that can be determined using the algorithm. We can work backwards from whichever step is the most convenient.
  
In the previous example, we can work backwards from equation <math>(2)</math>:
+
Continuing the previous example, our goal is to find <math>a</math> and <math>b</math> such that <math>93a + 42b = \gcd(93,42) = 3.</math>  We can work backwards from equation <math>(3)</math> since <math>3</math> appears there:
 +
 
 +
<math>3 = 9 - 1 \cdot 6</math>
 +
 
 +
We currently have <math>3</math> as a linear combination of <math>6</math> and <math>9</math>.  Our goal is to replace <math>6</math> and <math>9</math> so that we have a linear combination of <math>42</math> and <math>93</math> only.  We start by rearranging <math>(2)</math> to <math>6 = 42 - 4 \cdot 9</math> so we can substitute <math>6</math> to express <math>3</math> as a linear combination of <math>9</math> and <math>42</math>:
 +
 
 +
<math>3 = 9 - 1 \cdot (42 - 4 \cdot 9)</math> <br>
 +
<math>3 = -1 \cdot 42 + 5 \cdot 9.</math> <br>
 +
 
 +
Continuing, we rearrange <math>(1)</math> to substitute <math>9 = 93 - 2 \cdot 42</math>:
 +
 
 +
<math>3 = -1 \cdot 42 + 5 \cdot (93 - 2 \cdot 42)</math> <br>
 +
<math>3 = -11 \cdot 42 + 5 \cdot 93. \qquad (5)</math> <br>
  
<math>14 = 42-1\cdot 28</math><br>
+
We have found one linear combination.  To find others, since <math>42 \cdot 93 - 93 \cdot 42 = 0</math>, dividing both sides by <math>\gcd(93,42) = 3</math> gives <math>14 \cdot 93 - 31 \cdot 42 = 0</math>.  We can add <math>k</math> times this equation to <math>(5)</math>, so we can write <math>3</math> as a linear combination of <math>93</math> and <math>42</math>
<math>14 = 42-1\cdot (112-2\cdot 42)</math><br>
+
 
<math>14 = 3\cdot 42-1\cdot 112.</math><br>
+
<math>3 = (14k + 5) \cdot 93 + (-31k - 11) \cdot 42</math>
 +
 
 +
for any integer <math>k</math>.
  
 
== Problems ==
 
== Problems ==
 
===Introductory===
 
===Introductory===
 +
https://artofproblemsolving.com/community/c1677139h2442945p20256095
 +
 
===Intermediate===
 
===Intermediate===
 +
* [[2020 AMC 10A Problems/Problem 24]]
 
* [[1985 AIME Problems/Problem 13]]
 
* [[1985 AIME Problems/Problem 13]]
 +
* [[1959 IMO Problems/Problem 1]] (Note: this problem is widely regarded as the easiest problem ever asked in the IMO)
 +
* [[2021 AIME I Problems/Problem 10]]
 +
 
===Olympiad===
 
===Olympiad===
* [[1959 IMO Problems/Problem 1]]
 
  
 
==See Also==
 
==See Also==

Latest revision as of 21:50, 8 May 2022

The Euclidean algorithm (also known as the Euclidean division algorithm or Euclid's algorithm) is an algorithm that finds the greatest common divisor (GCD) of two elements of a Euclidean domain, the most common of which is the nonnegative integers $\mathbb{Z}{\geq 0}$, without factoring them.

Main idea and Informal Description

The basic idea is to repeatedly use the fact that $\gcd({a,b}) \equiv \gcd({b,a - b})$

If we have two non-negative integers $a,b$ with $a|b$ and $b\ne0$, then the greatest common divisor is ${a}$. If $a\ge b>0$, then the set of common divisors of ${a}$ and $b$ is the same as the set of common divisors of $b$ and $r$ where $r$ is the remainder of division of ${a}$ by $b$. Indeed, we have $a=mb+r$ with some integer $m$, so, if ${d}$ divides both ${a}$ and $b$, it must divide both ${a}$ and $mb$ and, thereby, their difference $r$. Similarly, if ${d}$ divides both $b$ and $r$, it should divide ${a}$ as well. Thus, the greatest common divisors of ${a}$ and $b$ and of $b$ and $r$ coincide: $GCD(a,b)=GCD(b,r)$. But the pair $(b,r)$ consists of smaller numbers than the pair $(a,b)$! So, we reduced our task to a simpler one. And we can do this reduction again and again until the smaller number becomes $0$.

General Form

Start with any two elements $a$ and $b$ of a Euclidean Domain

  • If $b=0$, then $\gcd(a,b)=a$.
  • Otherwise take the remainder when ${a}$ is divided by $a \pmod{b}$, and find $\gcd(a,a \bmod {b})$.
  • Repeat this until the remainder is 0.

$a \pmod{b} \equiv r_1$
$b \pmod {r_1} \equiv r_2$
$\vdots$
$r_{n-1} \pmod {r_n} \equiv 0$
Then $\gcd({a,b}) = r_n$

~The congruence sign above should be replaced by the normal equal sign. It's important to note that $a \pmod{b} = r$
is the same as $a \equiv {r} \pmod{b}$.

Usually the Euclidean algorithm is written down just as a chain of divisions with remainder:

for $r_{k+1} < r_k < r_{k-1}$
$a = b \cdot q_1+r_1$
$b = r_1 \cdot q_2 + r_2$
$r_1 = r_2 \cdot q_3 + r_3$
$\vdots$
$r_{n-1} = r_n \cdot q_{n+1} +0$
and so $\gcd({a,b}) = r_n$

Example

To see how it works, just take an example. Say $a = 93, b=42$.
We have $93 \equiv 9 \pmod{42}$, so $\gcd(93,42) = \gcd(42,9)$.
Similarly, $42 \equiv 6 \pmod{9}$, so $\gcd(42,9) = \gcd(9,6)$.
Continuing, $9 \equiv 3 \pmod{6}$, so $\gcd(9,6) = \gcd(6,3)$.
Then $6 \equiv 0 \pmod{3}$, so $\gcd(6,3) = \gcd(3,0) = 3$.
Thus $\gcd(93,42) = 3$.

  • $93 = 2 \cdot 42 + 9 \qquad (1)$
  • $42 = 4 \cdot 9 + 6 \qquad (2)$
  • $9 = 1 \cdot 6 + 3 \qquad (3)$
  • $6 = 2 \cdot 3 + 0 \qquad (4)$

Extended Euclidean Algorithm

An added bonus of the Euclidean algorithm is the "linear representation" of the greatest common divisor. This allows us to write $\gcd(a,b)=ax+by$, where $x,y$ are some elements from the same Euclidean Domain as $a$ and $b$ that can be determined using the algorithm. We can work backwards from whichever step is the most convenient.

Continuing the previous example, our goal is to find $a$ and $b$ such that $93a + 42b = \gcd(93,42) = 3.$ We can work backwards from equation $(3)$ since $3$ appears there:

$3 = 9 - 1 \cdot 6$

We currently have $3$ as a linear combination of $6$ and $9$. Our goal is to replace $6$ and $9$ so that we have a linear combination of $42$ and $93$ only. We start by rearranging $(2)$ to $6 = 42 - 4 \cdot 9$ so we can substitute $6$ to express $3$ as a linear combination of $9$ and $42$:

$3 = 9 - 1 \cdot (42 - 4 \cdot 9)$
$3 = -1 \cdot 42 + 5 \cdot 9.$

Continuing, we rearrange $(1)$ to substitute $9 = 93 - 2 \cdot 42$:

$3 = -1 \cdot 42 + 5 \cdot (93 - 2 \cdot 42)$
$3 = -11 \cdot 42 + 5 \cdot 93. \qquad (5)$

We have found one linear combination. To find others, since $42 \cdot 93 - 93 \cdot 42 = 0$, dividing both sides by $\gcd(93,42) = 3$ gives $14 \cdot 93 - 31 \cdot 42 = 0$. We can add $k$ times this equation to $(5)$, so we can write $3$ as a linear combination of $93$ and $42$

$3 = (14k + 5) \cdot 93 + (-31k - 11) \cdot 42$

for any integer $k$.

Problems

Introductory

https://artofproblemsolving.com/community/c1677139h2442945p20256095

Intermediate

Olympiad

See Also