In mathematics, the pigeonhole principle states that if items are put into containers, with, then at least one container must contain more than one item. For example, of three gloves (none of which is ambidextrous/reversible), at least two must be right-handed or at least two must be left-handed, because there are three objects but only two categories of handedness to put them into. This seemingly obvious statement, a type of counting argument, can be used to demonstrate possibly unexpected results. For example, given that the population of London is more than one unit greater than the maximum number of hairs that can be on a human's head, the principle requires that there must be at least two people in London who have the same number of hairs on their heads.
Although the pigeonhole principle appears as early as 1624 in a book attributed to Jean Leurechon,[1] it is commonly called Dirichlet's box principle or Dirichlet's drawer principle after an 1834 treatment of the principle by Peter Gustav Lejeune Dirichlet under the name German: Schubfachprinzip ("drawer principle" or "shelf principle").[2]
The principle has several generalizations and can be stated in various ways. In a more quantified version: for natural numbers and, if objects are distributed among sets, the pigeonhole principle asserts that at least one of the sets will contain at least objects. For arbitrary and, this generalizes to
k+1=\lfloor(n-1)/m\rfloor+1=\lceiln/m\rceil
\lfloor … \rfloor
\lceil … \rceil
Though the principle's most straightforward application is to finite sets (such as pigeons and boxes), it is also used with infinite sets that cannot be put into one-to-one correspondence. To do so requires the formal statement of the pigeonhole principle: "there does not exist an injective function whose codomain is smaller than its domain". Advanced mathematical proofs like Siegel's lemma build upon this more general concept.
Dirichlet published his works in both French and German, using either the German German: Schubfach or the French French: [[wikt:tiroir|tiroir]]. The strict original meaning of these terms corresponds to the English drawer, that is, an open-topped box that can be slid in and out of the cabinet that contains it. (Dirichlet wrote about distributing pearls among drawers.) These terms morphed to pigeonhole in the sense of a small open space in a desk, cabinet, or wall for keeping letters or papers, metaphorically rooted in structures that house pigeons.
Because furniture with pigeonholes is commonly used for storing or sorting things into many categories (such as letters in a post office or room keys in a hotel), the translation pigeonhole may be a better rendering of Dirichlet's original "drawer". That understanding of the term pigeonhole, referring to some furniture features, is fading—especially among those who do not speak English natively but as a lingua franca in the scientific world—in favor of the more pictorial interpretation, literally involving pigeons and holes. The suggestive (though not misleading) interpretation of "pigeonhole" as "dovecote" has lately found its way back to a German back-translation of the "pigeonhole principle" as the "German: Taubenschlagprinzip".[3]
Besides the original terms "German: Schubfachprinzip" in German[4] and "French: Principe des tiroirs" in French,[5] other literal translations are still in use in Arabic (Arabic: "مبدأ برج الحمام"), Bulgarian ("Bulgarian: принцип на чекмеджетата"), Chinese ("Chinese: 抽屉原理"), Danish ("Danish: Skuffeprincippet"), Dutch ("Dutch; Flemish: ladenprincipe"), Hungarian ("Hungarian: skatulyaelv"), Italian ("Italian: principio dei cassetti"), Japanese ("Japanese: 引き出し論法"), Persian ("Persian: اصل لانه کبوتری"), Polish ("Polish: zasada szufladkowa"), Portuguese ("Portuguese: Princípio das Gavetas"), Swedish ("Swedish: Lådprincipen"), Turkish ("Turkish: çekmece ilkesi"), and Vietnamese ("Vietnamese: nguyên lý hộp").
Suppose a drawer contains a mixture of black socks and blue socks, each of which can be worn on either foot. You pull a number of socks from the drawer without looking. What is the minimum number of pulled socks required to guarantee a pair of the same color? By the pigeonhole principle socks, using one pigeonhole per color), the answer is three items). Either you have three of one color, or you have two of one color and one of the other.
If people can shake hands with one another (where), the pigeonhole principle shows that there is always a pair of people who will shake hands with the same number of people. In this application of the principle, the "hole" to which a person is assigned is the number of hands that person shakes. Since each person shakes hands with some number of people from 0 to, there are possible holes. On the other hand, either the "0" hole, the hole, or both must be empty, for it is impossible (if) for some person to shake hands with everybody else while some person shakes hands with nobody. This leaves people to be placed into at most non-empty holes, so the principle applies.
This hand-shaking example is equivalent to the statement that in any graph with more than one vertex, there is at least one pair of vertices that share the same degree.[6] This can be seen by associating each person with a vertex and each edge with a handshake.
One can demonstrate there must be at least two people in London with the same number of hairs on their heads as follows.[7] [8] Since a typical human head has an average of around 150,000 hairs, it is reasonable to assume (as an upper bound) that no one has more than 1,000,000 hairs on their head holes). There are more than 1,000,000 people in London (is bigger than 1 million items). Assigning a pigeonhole to each number of hairs on a person's head, and assigning people to pigeonholes according to the number of hairs on their heads, there must be at least two people assigned to the same pigeonhole by the 1,000,001st assignment (because they have the same number of hairs on their heads; or,). Assuming London has 9.002 million people,[9] it follows that at least ten Londoners have the same number of hairs, as having nine Londoners in each of the 1 million pigeonholes accounts for only 9 million people.
For the average case with the constraint: fewest overlaps, there will be at most one person assigned to every pigeonhole and the 150,001st person assigned to the same pigeonhole as someone else. In the absence of this constraint, there may be empty pigeonholes because the "collision" happens before the 150,001st person. The principle just proves the existence of an overlap; it says nothing about the number of overlaps (which falls under the subject of probability distribution).
There is a passing, satirical, allusion in English to this version of the principle in A History of the Athenian Society, prefixed to A Supplement to the Athenian Oracle: Being a Collection of the Remaining Questions and Answers in the Old Athenian Mercuries (printed for Andrew Bell, London, 1710).[10] It seems that the question whether there were any two persons in the World that have an equal number of hairs on their head? had been raised in The Athenian Mercury before 1704.[11] [12]
Perhaps the first written reference to the pigeonhole principle appears in a short sentence from the French Jesuit Jean Leurechon's 1622 work Selectæ Propositiones:[1] "It is necessary that two men have the same number of hairs, écus, or other things, as each other." The full principle was spelled out two years later, with additional examples, in another book that has often been attributed to Leurechon, but might be by one of his students.[1]
The birthday problem asks, for a set of randomly chosen people, what is the probability that some pair of them will have the same birthday? The problem itself is mainly concerned with counterintuitive probabilities, but we can also tell by the pigeonhole principle that among 367 people, there is at least one pair of people who share the same birthday with 100% probability, as there are only 366 possible birthdays to choose from.
Imagine seven people who want to play in a tournament of teams items), with a limitation of only four teams holes) to choose from. The pigeonhole principle tells us that they cannot all play for different teams; there must be at least one team featuring at least two of the seven players:
Any subset of size six from the set = must contain two elements whose sum is 10. The pigeonholes will be labeled by the two element subsets,,, and the singleton, five pigeonholes in all. When the six "pigeons" (elements of the size six subset) are placed into these pigeonholes, each pigeon going into the pigeonhole that has it contained in its label, at least one of the pigeonholes labeled with a two-element subset will have two pigeons in it.
Hashing in computer science is the process of mapping an arbitrarily large set of data to fixed-size values. This has applications in caching whereby large data sets can be stored by a reference to their representative values (their "hash codes") in a "hash table" for fast recall. Typically, the number of unique objects in a data set is larger than the number of available unique hash codes, and the pigeonhole principle holds in this case that hashing those objects is no guarantee of uniqueness, since if you hashed all objects in the data set, some objects must necessarily share the same hash code.
The principle can be used to prove that any lossless compression algorithm, provided it makes some inputs smaller (as "compression" suggests), will also make some other inputs larger. Otherwise, the set of all input sequences up to a given length could be mapped to the (much) smaller set of all sequences of length less than without collisions (because the compression is lossless), a possibility that the pigeonhole principle excludes.
A notable problem in mathematical analysis is, for a fixed irrational number, to show that the set of fractional parts is dense in . One finds that it is not easy to explicitly find integers such that
|na-m|<e,
n1,n2\in\{1,2,\ldots,M+1\}
n1a\in\left(p+
k | |
M, p |
+
k+1 | |
M |
\right), n2a\in\left(q+
k | |||
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\right),
(n2-n1)a\in\left(q-p-
1 | q-p+ | |
M, |
1 | |
M |
\right).
p\in\left(
j | |
M, |
j+1 | |
M |
\right],
k=\sup\left\{r\inN:r[na]<
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l|l[(k+1)nar]-pr|<
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Variants occur in a number of proofs. In the proof of the pumping lemma for regular languages, a version that mixes finite and infinite sets is used: If infinitely many objects are placed into finitely many boxes, then two objects share a box.[13] In Fisk's solution to the Art gallery problem a sort of converse is used: If objects are placed into boxes, then there is a box containing at most objects.[14]
The following are alternative formulations of the pigeonhole principle.
Let be positive integers. If
q1+q2+ … +qn-n+1
The simple form is obtained from this by taking, which gives objects. Taking gives the more quantified version of the principle, namely:
Let and be positive integers. If objects are distributed into boxes, then at least one of the boxes contains or more of the objects.[15]
This can also be stated as, if discrete objects are to be allocated to containers, then at least one container must hold at least
\lceilk/n\rceil
\lceilx\rceil
\lfloork/n\rfloor
\lfloorx\rfloor
A probabilistic generalization of the pigeonhole principle states that if pigeons are randomly put into pigeonholes with uniform probability, then at least one pigeonhole will hold more than one pigeon with probability
1-
(m)n | |
mn |
,
where is the falling factorial . For and for (and), that probability is zero; in other words, if there is just one pigeon, there cannot be a conflict. For (more pigeons than pigeonholes) it is one, in which case it coincides with the ordinary pigeonhole principle. But even if the number of pigeons does not exceed the number of pigeonholes, due to the random nature of the assignment of pigeons to pigeonholes there is often a substantial chance that clashes will occur. For example, if 2 pigeons are randomly assigned to 4 pigeonholes, there is a 25% chance that at least one pigeonhole will hold more than one pigeon; for 5 pigeons and 10 holes, that probability is 69.76%; and for 10 pigeons and 20 holes it is about 93.45%. If the number of holes stays fixed, there is always a greater probability of a pair when you add more pigeons. This problem is treated at much greater length in the birthday paradox.
A further probabilistic generalization is that when a real-valued random variable has a finite mean, then the probability is nonzero that is greater than or equal to, and similarly the probability is nonzero that is less than or equal to . To see that this implies the standard pigeonhole principle, take any fixed arrangement of pigeons into holes and let be the number of pigeons in a hole chosen uniformly at random. The mean of is, so if there are more pigeons than holes the mean is greater than one. Therefore, is sometimes at least 2.
The pigeonhole principle can be extended to infinite sets by phrasing it in terms of cardinal numbers: if the cardinality of set is greater than the cardinality of set, then there is no injection from to . However, in this form the principle is tautological, since the meaning of the statement that the cardinality of set is greater than the cardinality of set is exactly that there is no injective map from to . However, adding at least one element to a finite set is sufficient to ensure that the cardinality increases.
Another way to phrase the pigeonhole principle for finite sets is similar to the principle that finite sets are Dedekind finite: Let and be finite sets. If there is a surjection from to that is not injective, then no surjection from to is injective. In fact no function of any kind from to is injective. This is not true for infinite sets: Consider the function on the natural numbers that sends 1 and 2 to 1, 3 and 4 to 2, 5 and 6 to 3, and so on.
There is a similar principle for infinite sets: If uncountably many pigeons are stuffed into countably many pigeonholes, there will exist at least one pigeonhole having uncountably many pigeons stuffed into it.
This principle is not a generalization of the pigeonhole principle for finite sets however: It is in general false for finite sets. In technical terms it says that if and are finite sets such that any surjective function from to is not injective, then there exists an element of such that there exists a bijection between the preimage of and . This is a quite different statement, and is absurd for large finite cardinalities.
Yakir Aharonov et al. presented arguments that quantum mechanics may violate the pigeonhole principle, and proposed interferometric experiments to test the pigeonhole principle in quantum mechanics.[16] Later research has called this conclusion into question.[17] [18] In a January 2015 arXiv preprint, researchers Alastair Rae and Ted Forgan at the University of Birmingham performed a theoretical wave function analysis, employing the standard pigeonhole principle, on the flight of electrons at various energies through an interferometer. If the electrons had no interaction strength at all, they would each produce a single, perfectly circular peak. At high interaction strength, each electron produces four distinct peaks, for a total of 12 peaks on the detector; these peaks are the result of the four possible interactions each electron could experience (alone, together with the first other particle only, together with the second other particle only, or all three together). If the interaction strength was fairly low, as would be the case in many real experiments, the deviation from a zero-interaction pattern would be nearly indiscernible, much smaller than the lattice spacing of atoms in solids, such as the detectors used for observing these patterns. This would make it very difficult or impossible to distinguish a weak-but-nonzero interaction strength from no interaction whatsoever, and thus give an illusion of three electrons that did not interact despite all three passing through two paths.