Combination

"Combin" redirects here. For the mountain massif, see Grand Combin.

For other uses, see Combination (disambiguation).

In mathematics a combination is a way of selecting several things out of a larger group, where (unlike permutations) order does not matter. In smaller cases it is possible to count the number of combinations. For example given three fruit, say an apple, orange and pear, there are three combinations of two that can be drawn from this set: an apple and a pear; an apple and an orange; or a pear and an orange. More formally a k-combination of a set S is a subset of k distinct elements of S. If the set has n elements the number of k-combinations is equal to the binomial coefficient

$\binom nk = \frac{n(n-1)\ldots(n-k+1)}{k(k-1)\dots1},$

which can be written using factorials as $\frac{n!}{k!(n-k)!}$ whenever $k\leq n$ , and which is zero when $k > n$ . The set of all k-combinations of a set S is sometimes denoted by $\binom Sk\,$ .

Combinations can consider the combination of n things taken k at a time without or with repetitions.^[1] In the above example repetitions were not allowed. If however it was possible to have two of any one kind of fruit there would be 3 more combinations: one with two apples, one with two oranges, and one with two pears.

With large sets, it becomes necessary to use mathematics to find the number of combinations. For example, a poker hand can be described as a 5-combination (k = 5) of cards from a 52 card deck (n = 52). The 5 cards of the hand are all distinct, and the order of cards in the hand does not matter. There are 2,598,960 such combinations, and the chance of drawing any one hand at random is 1 / 2,598,960.

1 Number of k-combinations
- 1.1 Example of counting combinations
- 1.2 Enumerating k-combinations
2 Number of combinations with repetition
- 2.1 Example of counting multicombinations
3 Number of k-combinations for all k
4 Probability: sampling a random combination
5 See also
6 References
7 External links

Number of k-combinations

3-element subsets of a 5-element set

Main article: Binomial coefficient

The number of k-combinations from a given set S of n elements is often denoted in elementary combinatorics texts by C(n, k), or by a variation such as $C^n_k$ , $n C k$ , $n C k$ or even $C_n^k$ (the latter form is standard in French, Russian, and Polish texts). The same number however occurs in many other mathematical contexts, where it is denoted by $\tbinom nk$ ; notably it occurs as coefficient in the binomial formula, hence its name binomial coefficient. One can define $\tbinom nk$ for all natural numbers k at once by the relation

$\textstyle(1+X)^n=\sum_{k\geq0}\binom nk X^k,$

from which it is clear that $\tbinom n0=\tbinom nn=1$ and $\tbinom nk=0$ for k > n. To see that these coefficients count k-combinations from S, one can first consider a collection of n distinct variables X_s labeled by the elements s of S, and expand the product over all elements of S:

$\textstyle\prod_{s\in S}(1+X_s);$

it has 2ⁿ distinct terms corresponding to all the subsets of S, each subset giving the product of the corresponding variables X_s. Now setting all of the X_s equal to the unlabeled variable X, so that the product becomes (1 + X)ⁿ, the term for each k-combination from S becomes X^k, so that the coefficient of that power in the result equals the number of such k-combinations.

Binomial coefficients can be computed explicitly in various ways. To get all of them for the expansions up to (1 + X)ⁿ, one can use (in addition to the basic cases already given) the recursion relation

$\binom nk=\binom{n-1}{k-1}+\binom{n-1}k,\text{ for }0<k<n,$

which follows from (1 + X)ⁿ = (1 + X)^{n − 1}(1 + X); this leads to the construction of Pascal's triangle.

For determining an individual binomial coefficient, it is more practical to use the formula

$\binom nk = \frac{n(n-1)(n-2)\cdots(n-k+1)}{k!}.$

The numerator gives the number of k-permutations of n, i.e., of sequences of k distinct elements of S, while the denominator gives the number of such k-permutations that give the same k-combination when the order is ignored.

When k exceeds n/2, the above formula contains factors common to the numerator and the denominator, and canceling them out gives the relation

$\binom nk = \binom n{n-k},\text{ for }0 \le k \le n.$

This expresses a symmetry that is evident from the binomial formula, and can also be understood in terms of k-combinations by taking the complement of such a combination, which is an (n − k)-combination.

Finally there is a formula which exhibits this symmetry directly, and has the merit of being easy to remember:

$\binom nk = \frac{n!}{k!(n-k)!},$

where n! denotes the factorial of n. It is obtained from the previous formula by multiplying denominator and numerator by (n − k)!, so it is certainly inferior as a method of computation to that formula.

The last formula can be understood directly, by considering the n! permutations of all the elements of S. Each such permutation gives a k-combination by selecting its first k elements. There are many duplicate selections: any combined permutation of the first k elements among each other, and of the final (n − k) elements among each other produces the same combination; this explains the division in the formula.

From the above formulas follow relations between adjacent numbers in Pascal's triangle in all three directions:

$\binom nk = \binom n{k-1} \frac {n-k+1}k,\text{ for }k>0$ ,

$\binom nk = \binom {n-1}k \frac n{n-k},\text{ for }{k<n}$ ,

$\binom nk = \binom {n-1}{k-1} \frac nk,\text{ for }n,k>0$ .

Together with the basic cases $\tbinom n0=1=\tbinom nn$ , these allow successive computation of respectively all numbers of combinations from the same set (a row in Pascal's triangle), of k-combinations of sets of growing sizes, and of combinations with a complement of fixed size n − k.

Example of counting combinations

As a concrete example, one can compute the number of five-card hands possible from a standard fifty-two card deck as:

${52 \choose 5} = \frac{52\times51\times50\times49\times48}{5\times4\times3\times2\times1} = \frac{311,875,200}{120} = 2,598,960.$

Alternatively one may use the formula in terms of factorials and cancel the factors in the numerator against parts of the factors in the denominator, after which only multiplication of the remaining factors is required:

$\begin{alignat}{2}{52 \choose 5} &= \frac{52!}{5!47!} \\ &= \frac{52\times51\times50\times49\times48\times\cancel{47!}}{5\times4\times3\times2\times\cancel{1}\times\cancel{47!}} \\ &= \frac{52\times51\times50\times49\times48}{5\times4\times3\times2} \\ &= \frac{(26\times\cancel{2})\times(17\times\cancel{3})\times(10\times\cancel{5})\times49\times(12\times\cancel{4})}{\cancel{5}\times\cancel{4}\times\cancel{3}\times\cancel{2}} \\ &= {26\times17\times10\times49\times12} \\&= 2,598,960.\end{alignat}$

Another alternative computation, almost equivalent to the first, is based on writing

${n \choose k} = \frac { ( n - 0 ) }1 \times \frac { ( n - 1 ) }2 \times \frac { ( n - 2 ) }3 \times \cdots \times \frac { ( n - (k - 1) ) }k,$

which gives

${52 \choose 5} = \frac{52}1 \times \frac{51}2 \times \frac{50}3 \times \frac{49}4 \times \frac{48}5 = 2,598,960.$

When evaluated as $52 \div 1 \times 51 \div 2 \times 50 \div 3 \times 49 \div 4 \times 48 \div 5$ , this can be computed using only integer arithmetic. The reason that all divisions are without remainder is that the intermediate results they produce are themselves binomial coefficients.

Using the symmetric formula in terms of factorials without performing simplifications gives a rather extensive calculation:

$\begin{align} {52 \choose 5} &= \frac{n!}{k!(n-k)!} = \frac{52!}{5!(52-5)!} = \frac{52!}{5!47!} \\ &= \tfrac{80,658,175,170,943,878,571,660,636,856,403,766,975,289,505,440,883,277,824,000,000,000,000}{120\times258,623,241,511,168,180,642,964,355,153,611,979,969,197,632,389,120,000,000,000} \\ &= 2,598,960. \end{align}$

Enumerating k-combinations

One can enumerate all k-combinations of a given set $S$ of n elements in some fixed order, which establishes a bijection from an interval of $\tbinom nk$ integers with the set of those k-combinations. Assuming $S$ is itself ordered, for instance $S = {1,2, ..., n$ }, there are two natural possibilities for ordering its k-combinations: by comparing their smallest elements first (as in the illustrations above) or by comparing their largest elements first. The latter option has the advantage that adding a new largest element to $S$ will not change the initial part of the enumeration, but just add the new k-combinations of the larger set after the previous ones. Repeating this process, the enumeration can be extended indefinitely with k-combinations of ever larger sets. If moreover the intervals of the integers are taken to start at 0, then the k-combination at a given place i in the enumeration can be computed easily from i, and the bijection so obtained is known as the combinatorial number system. It is also known as "rank"/"ranking" and "unranking" in computational mathematics.^[2]^[3]

Number of combinations with repetition

Example of counting multicombinations

For example, if you have ten types of donuts (n = 10) on a menu to choose from and you want three donuts (k = 3), the number of ways to choose can be calculated as

$\binom{10+3-1}3 = \binom{12}3 = \frac{12\times11\times10}{3\times2\times1} = 220.$

The analogy with the k-combination case can be stressed by writing the numerator as a rising power

$\binom{n + k - 1}{k} = \frac{n(n+1)\cdots(n+k-1)}{k!}.$

There is an easy way to understand the above result. Label the elements of S with numbers 0, 1, ..., n − 1, and choose a k-combination from the set of numbers { 1, 2, ..., n + k − 1 } (so that there are n − 1 unchosen numbers). Now change this k-combination into a k-multicombination of S by replacing every (chosen) number x in the k-combination by the element of S labeled by the number of unchosen numbers less than x. This is always a number in the range of the labels, and it is easy to see that every k-multicombination of S is obtained for one choice of a k-combination.

A concrete example may be helpful. Suppose there are 4 types of fruits (apple, orange, pear, banana) at a grocery store, and you want to buy 12 pieces of fruit. So n = 4 and k = 12. Use label 0 for apples, 1 for oranges, 2 for pears, and 3 for bananas. A selection of 12 fruits can be translated into a selection of 12 distinct numbers in the range 1,...,15 by selecting as many consecutive numbers starting from 1 as there are apples in the selection, then skip a number, continue choosing as many consecutive numbers as there are oranges selected, again skip a number, then again for pears, skip one again, and finally choose the remaining numbers (as many as there are bananas selected). For instance for 2 apples, 7 oranges, 0 pears and 3 bananas, the numbers chosen will be 1, 2, 4, 5, 6, 7, 8, 9, 10, 13, 14, 15. To recover the fruits, the numbers 1, 2 (not preceded by any unchosen numbers) are replaced by apples, the numbers 4, 5, ..., 10 (preceded by one unchosen number: 3) by oranges, and the numbers 13, 14, 15 (preceded by three unchosen numbers: 3, 11, and 12) by bananas; there are no chosen numbers preceded by exactly 2 unchosen numbers, and therefore no pears in the selection. The total number of possible selections is

$\binom{4+12-1}{12} = \binom{15}{12} = \binom{15}3 = \frac{15\times14\times13}{3\times2\times1} = 455.$

Number of k-combinations for all k

The number of k-combinations for all k, $\sum_{0\leq{k}\leq{n}}\binom nk = 2^n$ , is the sum of the nth row (counting from 0) of the binomial coefficients. These combinations are enumerated by the 1 digits of the set of base 2 numbers counting from 0 to $2 n - 1$ , where each digit position is an item from the set of n.

Probability: sampling a random combination

There are various algorithms to pick out a random combination from a given set or list. Rejection sampling is extremely slow for large sample sizes. One way to select a k-combination efficiently from a population of size n is to iterate across each element of the population, and at each step pick that element with a dynamically changing probability of $\frac{k-\#\ samples\ chosen}{n-\#\ samples\ visited}$ .

References

^ Erwin Kreyszig, Advanced Engineering Mathematics, John Wiley & Sons, INC, 1999
^ http://www.site.uottawa.ca/~lucia/courses/5165-09/GenCombObj.pdf
^ http://www.sagemath.org/doc/reference/sage/combinat/subset.html

External links

C code to generate all combinations of n elements chosen as k
Many Common types of permutation and combination math problems, with detailed solutions
The Unknown Formula For combinations when choices can be repeated and order does NOT matter
[1] Combinations with repetitions (by: Akshatha AG and Smitha B)

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Combinatorics

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Synonyms:

Union, conjunction, connection, association / Alliance, coalition, confederacy, league, complot, conspiracy, cabal / Mixture, compound, amalgamation

Look at other dictionaries:

combination — com·bi·na·tion n 1 a: an alliance of individuals, states, or esp. corporations united to achieve a common (as economic) end see also combination in restraint of trade compare joint venture 1, merger … Law dictionary
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Combination — Com bi*na tion, n. [LL. combinatio. See {Combine}.] 1. The act or process of combining or uniting persons and things. [1913 Webster] Making new compounds by new combinations. Boyle. [1913 Webster] A solemn combination shall be made Of our dear… … The Collaborative International Dictionary of English
Combination — (1992), manga de Leeza Sei. À ce jour, 5 volumes édités par Génération comics en France ; toujours en cours au Japon. Histoire Hashiba la tête brûlée et Sasaki le taciturne, la combinaison la plus improbable mais la plus efficace qu on… … Wikipédia en Français
Combination — コンビネーション (Konbinēshon) Editorial Kōbunsha Publicado en Val Pretty Primera edición 1991 Última edición … Wikipedia Español
combination — [käm΄bə nā′shən] n. [ME combinacioun < LL combinatio, a joining two by two] 1. a combining or being combined 2. a thing formed by combining 3. an association of persons, firms, political parties, etc. for a common purpose 4. a) the series of… … English World dictionary
combination — late 14c., combinacyoun, from O.Fr. combination (14c., Mod.Fr. combinaison), from L.L. combinationem (nom. combinatio) a joining two by two, noun of action from pp. stem of combinare (see COMBINE (Cf. combine)) … Etymology dictionary
combination — [n1] mixture, blend aggregate, amalgam, amalgamation, blending, brew, coalescence, combo, composite, compound, connection, consolidation, everything but kitchen sink*, fusion, junction, medley, merger, miscellany, mishmash*, mix, olio, order,… … New thesaurus
combination — ► NOUN 1) the action of combining two or more different things. 2) something in which the component elements are individually distinct. 3) a sequence of numbers or letters used to open a combination lock. 4) (combinations) dated a single… … English terms dictionary
Combination — (v. lat.), 1) Verbindung von Mehreren durch Zusammenfügung in eine Reihe od. Ordnung; 2) (Log.), Verbindung mehrerer Urtheile zu Erforschung der Wahrheit, indem eins aus dem anderen als Folgerung hergeleitet wird; bei jedem Syllogismus ist C., u … Pierer's Universal-Lexikon
Combination — Combination, im Allgemeinen die Zusammenstellung von mehreren, in eine gewisse Reihe oder Ordnung, im gewöhnlichen Sprachgebrauche aber die Fertigkeit, aus gemachten Wahrnehmungen oder Erfahrungen Schlüsse zu ziehen und Urtheile zu fällen, durch… … Damen Conversations Lexikon

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Combination

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