Difference between revisions of "Wilson's Theorem"
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== Proof == | == Proof == | ||
− | Wilson's theorem is easily verifiable for 2 and 3, so let's consider <math>p>3</math>. If <math>{p}</math> is composite, then its positive factors are among <math>1, 2, 3, \dots, p-1</math>. Hence, <math>\gcd( (p - 1)!, p) > 1</math>, so <math>(p-1)! \neq -1 \pmod{p}</math>. | + | Wilson's theorem is easily verifiable for 2 and 3, so let's consider <math>p>3</math>. If <math>{p}</math> is composite, then its positive factors are among |
+ | <center><math>1, 2, 3, \dots, p-1</math>.</center> <br> | ||
+ | Hence, <math>\gcd( (p - 1)!, p) > 1</math>, so <math>(p-1)! \neq -1 \pmod{p}</math>. | ||
− | However if <math>{p}</math> is prime, then each of the above integers are relatively prime to <math>{p}</math>. So for each of these integers a there is another <math>b</math> such that <math>ab \equiv 1 \pmod{p}</math>. It is important to note that this <math>b</math> is unique modulo <math>{p}</math>, and that since <math>{p}</math> is prime, <math>a = b</math> if and only if <math>{a}</math> is <math>1</math> or <math>p-1</math>. Now if we omit 1 and <math>p-1</math>, then the others can be grouped into pairs whose product is congruent to one, <math>2\cdot3\cdot4\cdots(p-2) \equiv 1\pmod{p}</math> | + | However if <math>{p}</math> is prime, then each of the above integers are relatively prime to <math>{p}</math>. So for each of these integers a there is another <math>b</math> such that <math>ab \equiv 1 \pmod{p}</math>. It is important to note that this <math>b</math> is unique modulo <math>{p}</math>, and that since <math>{p}</math> is prime, <math>a = b</math> if and only if <math>{a}</math> is <math>1</math> or <math>p-1</math>. Now if we omit 1 and <math>p-1</math>, then the others can be grouped into pairs whose product is congruent to one, |
+ | <center><math>2\cdot3\cdot4\cdots(p-2) \equiv 1\pmod{p}</math></center> <br> | ||
Finally, multiply this equality by <math>p-1</math> to complete the proof. | Finally, multiply this equality by <math>p-1</math> to complete the proof. |
Revision as of 10:39, 18 June 2006
Contents
[hide]Statement
If and only if is a prime, then is a multiple of . In other words .
Proof
Wilson's theorem is easily verifiable for 2 and 3, so let's consider . If is composite, then its positive factors are among
Hence, , so .
However if is prime, then each of the above integers are relatively prime to . So for each of these integers a there is another such that . It is important to note that this is unique modulo , and that since is prime, if and only if is or . Now if we omit 1 and , then the others can be grouped into pairs whose product is congruent to one,
Finally, multiply this equality by to complete the proof.
Example
Let be a prime number such that dividing by 4 leaves the remainder 1. Show that there is an integer such that is divisible by .
<Solutions?>