Combination






In mathematics, a combination is a selection of items from a collection, such that (unlike permutations) the order of selection does not matter. For example, given three fruits, say an apple, an orange and a 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


(nk)=n(n−1)⋯(n−k+1)k(k−1)⋯1,{displaystyle {binom {n}{k}}={frac {n(n-1)dotsb (n-k+1)}{k(k-1)dotsb 1}},}{binom {n}{k}}={frac {n(n-1)dotsb (n-k+1)}{k(k-1)dotsb 1}},

which can be written using factorials as n!k!(n−k)!{displaystyle textstyle {frac {n!}{k!(n-k)!}}}textstyle {frac {n!}{k!(n-k)!}} whenever k≤n{displaystyle kleq n}kleq n, and which is zero when k>n{displaystyle k>n}k>n. The set of all k-combinations of a set S is often denoted by (Sk){displaystyle textstyle {binom {S}{k}}}{displaystyle textstyle {binom {S}{k}}}.


Combinations refer to the combination of n things taken k at a time without repetition. To refer to combinations in which repetition is allowed, the terms k-selection,[1]k-multiset,[2] or k-combination with repetition are often used.[3] If, in the above example, it were possible to have two of any one kind of fruit there would be 3 more 2-selections: one with two apples, one with two oranges, and one with two pears.


Although the set of three fruits was small enough to write a complete list of combinations, with large sets this becomes impractical. 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.




Contents






  • 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 multisubsets




  • 3 Number of k-combinations for all k


  • 4 Probability: sampling a random combination


  • 5 See also


  • 6 Notes


  • 7 References


  • 8 External links





Number of k-combinations





3-element subsets of a 5-element set


The number of k-combinations from a given set S of n elements is often denoted in elementary combinatorics texts by C(n,k){displaystyle C(n,k)}C(n,k), or by a variation such as Ckn{displaystyle C_{k}^{n}}C_{k}^{n}, nCk{displaystyle {}_{n}C_{k}}{}_{n}C_{k}, nCk{displaystyle {}^{n}C_{k}}{}^{n}C_{k}, Cn,k{displaystyle C_{n,k}}C_{{n,k}} or even Cnk{displaystyle C_{n}^{k}}C_{n}^{k} (the latter form was standard in French, Romanian, Russian, Chinese[4] and Polish texts[citation needed]). The same number however occurs in many other mathematical contexts, where it is denoted by (nk){displaystyle {tbinom {n}{k}}}{tbinom {n}{k}} (often read as "n choose k"); notably it occurs as a coefficient in the binomial formula, hence its name binomial coefficient. One can define (nk){displaystyle {tbinom {n}{k}}}{tbinom {n}{k}} for all natural numbers k at once by the relation


(1+X)n=∑k≥0(nk)Xk,{displaystyle (1+X)^{n}=sum _{kgeq 0}{binom {n}{k}}X^{k},}{displaystyle (1+X)^{n}=sum _{kgeq 0}{binom {n}{k}}X^{k},}

from which it is clear that


(n0)=(nn)=1,{displaystyle {binom {n}{0}}={binom {n}{n}}=1,}{displaystyle {binom {n}{0}}={binom {n}{n}}=1,}

and further,



(nk)=0{displaystyle {binom {n}{k}}=0}{displaystyle {binom {n}{k}}=0} for k > n.

To see that these coefficients count k-combinations from S, one can first consider a collection of n distinct variables Xs labeled by the elements s of S, and expand the product over all elements of S:


s∈S(1+Xs);{displaystyle prod _{sin S}(1+X_{s});}prod _{sin 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 Xs. Now setting all of the Xs equal to the unlabeled variable X, so that the product becomes (1 + X)n, the term for each k-combination from S becomes Xk, 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


(nk)=(n−1k−1)+(n−1k),{displaystyle {binom {n}{k}}={binom {n-1}{k-1}}+{binom {n-1}{k}},}{displaystyle {binom {n}{k}}={binom {n-1}{k-1}}+{binom {n-1}{k}},}

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



(nk)=n(n−1)(n−2)⋯(n−k+1)k!{displaystyle {binom {n}{k}}={frac {n(n-1)(n-2)cdots (n-k+1)}{k!}}}{binom {n}{k}}={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


(nk)=(nn−k),{displaystyle {binom {n}{k}}={binom {n}{n-k}},}{displaystyle {binom {n}{k}}={binom {n}{n-k}},}

for 0 ≤ kn. 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 (nk)-combination.


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


(nk)=n!k!(n−k)!,{displaystyle {binom {n}{k}}={frac {n!}{k!(n-k)!}},}{binom {n}{k}}={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 (nk)!, 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:



(nk)={(nk−1)n−k+1kif k>0(n−1k)nn−kif k<n(n−1k−1)nkif n,k>0{displaystyle {binom {n}{k}}={begin{cases}{binom {n}{k-1}}{frac {n-k+1}{k}}&quad {text{if }}k>0\{binom {n-1}{k}}{frac {n}{n-k}}&quad {text{if }}k<n\{binom {n-1}{k-1}}{frac {n}{k}}&quad {text{if }}n,k>0end{cases}}}{binom {n}{k}}={begin{cases}{binom {n}{k-1}}{frac {n-k+1}{k}}&quad {text{if }}k>0\{binom {n-1}{k}}{frac {n}{n-k}}&quad {text{if }}k<n\{binom {n-1}{k-1}}{frac {n}{k}}&quad {text{if }}n,k>0end{cases}}.

Together with the basic cases (n0)=1=(nn){displaystyle {tbinom {n}{0}}=1={tbinom {n}{n}}}{tbinom {n}{0}}=1={tbinom {n}{n}}, 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 nk.



Example of counting combinations


As a specific example, one can compute the number of five-card hands possible from a standard fifty-two card deck as:[5]


(525)=52×51×50×49×485×1=311,875,200120=2,598,960.{displaystyle {52 choose 5}={frac {52times 51times 50times 49times 48}{5times 4times 3times 2times 1}}={frac {311{,}875{,}200}{120}}=2{,}598{,}960.}{52 choose 5}={frac {52times 51times 50times 49times 48}{5times 4times 3times 2times 1}}={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:


(525)=52!5!47!=52×51×50×49×48×47!5×47!=52×51×50×49×485×2=(26×2)×(17×3)×(10×5)×49×(12×4)5×2=26×17×10×49×12=2,598,960.{displaystyle {begin{alignedat}{2}{52 choose 5}&={frac {52!}{5!47!}}\[5pt]&={frac {52times 51times 50times 49times 48times {cancel {47!}}}{5times 4times 3times 2times {cancel {1}}times {cancel {47!}}}}\[5pt]&={frac {52times 51times 50times 49times 48}{5times 4times 3times 2}}\[5pt]&={frac {(26times {cancel {2}})times (17times {cancel {3}})times (10times {cancel {5}})times 49times (12times {cancel {4}})}{{cancel {5}}times {cancel {4}}times {cancel {3}}times {cancel {2}}}}\[5pt]&={26times 17times 10times 49times 12}\[5pt]&=2{,}598{,}960.end{alignedat}}}{displaystyle {begin{alignedat}{2}{52 choose 5}&={frac {52!}{5!47!}}\[5pt]&={frac {52times 51times 50times 49times 48times {cancel {47!}}}{5times 4times 3times 2times {cancel {1}}times {cancel {47!}}}}\[5pt]&={frac {52times 51times 50times 49times 48}{5times 4times 3times 2}}\[5pt]&={frac {(26times {cancel {2}})times (17times {cancel {3}})times (10times {cancel {5}})times 49times (12times {cancel {4}})}{{cancel {5}}times {cancel {4}}times {cancel {3}}times {cancel {2}}}}\[5pt]&={26times 17times 10times 49times 12}\[5pt]&=2{,}598{,}960.end{alignedat}}}

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


(nk)=(n−0)1×(n−1)2×(n−2)3××(n−(k−1))k,{displaystyle {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}},}{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



(525)=521×512×503×494×485=2,598,960{displaystyle {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}{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 in the following order, 52 ÷ 1 × 51 ÷ 2 × 50 ÷ 3 × 49 ÷ 4 × 48 ÷ 5, this can be computed using only integer arithmetic. The reason is that when each division occurs, the intermediate result that is produced is itself a binomial coefficient, so no remainders ever occur.


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


(525)=n!k!(n−k)!=52!5!(52−5)!=52!5!47!=80,658,175,170,943,878,571,660,636,856,403,766,975,289,505,440,883,277,824,000,000,000,000120×258,623,241,511,168,180,642,964,355,153,611,979,969,197,632,389,120,000,000,000=2,598,960.{displaystyle {begin{aligned}{52 choose 5}&={frac {n!}{k!(n-k)!}}={frac {52!}{5!(52-5)!}}={frac {52!}{5!47!}}\[6pt]&={tfrac {80,658,175,170,943,878,571,660,636,856,403,766,975,289,505,440,883,277,824,000,000,000,000}{120times 258,623,241,511,168,180,642,964,355,153,611,979,969,197,632,389,120,000,000,000}}\[6pt]&=2{,}598{,}960.end{aligned}}}{displaystyle {begin{aligned}{52 choose 5}&={frac {n!}{k!(n-k)!}}={frac {52!}{5!(52-5)!}}={frac {52!}{5!47!}}\[6pt]&={tfrac {80,658,175,170,943,878,571,660,636,856,403,766,975,289,505,440,883,277,824,000,000,000,000}{120times 258,623,241,511,168,180,642,964,355,153,611,979,969,197,632,389,120,000,000,000}}\[6pt]&=2{,}598{,}960.end{aligned}}}


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 (nk){displaystyle {tbinom {n}{k}}}{tbinom {n}{k}} 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.[6][7]


There are many ways to enumerate k combinations. One way is to visit all the binary numbers less than 2n. Choose those numbers having k nonzero bits, although this is very inefficient even for small n (e.g. n = 20 would require visiting about one million numbers while the maximum number of allowed k combinations is about 186 thousand for k = 10). The positions of these 1 bits in such a number is a specific k-combination of the set { 1, …, n }.[8] Another simple, faster way is to track k index numbers of the elements selected, starting with {0 .. k−1} (zero-based) or {1 .. k} (one-based) as the first allowed k-combination and then repeatedly moving to the next allowed k-combination by incrementing the last index number if it is lower than n-1 (zero-based) or n (one-based) or the last index number x that is less than the index number following it minus one if such an index exists and resetting the index numbers after x to {x+1, x+2, …}.



Number of combinations with repetition



A k-combination with repetitions, or k-multicombination, or multisubset of size k from a set S is given by a sequence of k not necessarily distinct elements of S, where order is not taken into account: two sequences define the same multiset if one can be obtained from the other by permuting the terms. In other words, the number of ways to sample k elements from a set of n elements allowing for duplicates (i.e., with replacement) but disregarding different orderings (e.g. {2,1,2} = {1,2,2}). Associate an index to each element of S and think of the elements of S as types of objects, then we can let xi{displaystyle x_{i}}x_{i} denote the number of elements of type i in a multisubset. The number of multisubsets of size k is then the number of nonnegative integer solutions of the Diophantine equation:[9]


x1+x2+…+xn=k.{displaystyle x_{1}+x_{2}+ldots +x_{n}=k.}x_{1}+x_{2}+ldots +x_{n}=k.

If S has n elements, the number of such k-multisubsets is denoted by,


((nk)),{displaystyle left(!!{binom {n}{k}}!!right),}left(!!{binom {n}{k}}!!right),

a notation that is analogous to the binomial coefficient which counts k-subsets. This expression, n multichoose k,[10] can also be given in terms of binomial coefficients:


((nk))=(n+k−1k).{displaystyle left(!!{binom {n}{k}}!!right)={binom {n+k-1}{k}}.}left(!!{binom {n}{k}}!!right)={binom {n+k-1}{k}}.

This relationship can be easily proved using a representation known as stars and bars.[11]



Proof


A solution of the above Diophantine equation can be represented by x1{displaystyle x_{1}}x_{1} stars, a separator (a bar), then x2{displaystyle x_{2}}x_{2} more stars, another separator, and so on. The total number of stars in this representation is k and the number of bars is n - 1 (since no separator is needed at the very end). Thus, a string of k + n - 1 symbols (stars and bars) corresponds to a solution if there are k stars in the string. Any solution can be represented by choosing k out of k + n - 1 positions to place stars and filling the remaining positions with bars. For example, the solution x1=3,x2=2,x3=0,x4=5{displaystyle x_{1}=3,x_{2}=2,x_{3}=0,x_{4}=5}x_{1}=3,x_{2}=2,x_{3}=0,x_{4}=5 of the equation x1+x2+x3+x4=10{displaystyle x_{1}+x_{2}+x_{3}+x_{4}=10}x_{1}+x_{2}+x_{3}+x_{4}=10 can be represented by



|★||★{displaystyle bigstar bigstar bigstar |bigstar bigstar ||bigstar bigstar bigstar bigstar bigstar }bigstar bigstar bigstar |bigstar bigstar ||bigstar bigstar bigstar bigstar bigstar .[12]

The number of such strings is the number of ways to place 10 stars in 13 positions, (1310)=(133)=286,{displaystyle {binom {13}{10}}={binom {13}{3}}=286,}{binom {13}{10}}={binom {13}{3}}=286, which is the number of 10-multisubsets of a set with 4 elements.







Bijection between 3-subsets of a 7-set (left) and 3-multisets with elements from a 5-set (right).
This illustrates that (73)=((53)){displaystyle textstyle {7 choose 3}=left(!!{5 choose 3}!!right)}textstyle {7 choose 3}=left(!!{5 choose 3}!!right).


As with binomial coefficients, there are several relationships between these multichoose expressions. For example, for n≥1,k≥0{displaystyle ngeq 1,kgeq 0}ngeq 1,kgeq 0,


((nk))=((k+1n−1)).{displaystyle left(!!{binom {n}{k}}!!right)=left(!!{binom {k+1}{n-1}}!!right).}{displaystyle left(!!{binom {n}{k}}!!right)=left(!!{binom {k+1}{n-1}}!!right).}

This identity follows from interchanging the stars and bars in the above representation.[13]





Example of counting multisubsets


For example, if you have four types of donuts (n = 4) on a menu to choose from and you want three donuts (k = 3), the number of ways to choose the donuts with repetition can be calculated as


((43))=(4+3−13)=(63)=6×43×1=20.{displaystyle left(!!{binom {4}{3}}!!right)={binom {4+3-1}{3}}={binom {6}{3}}={frac {6times 5times 4}{3times 2times 1}}=20.}left(!!{binom {4}{3}}!!right)={binom {4+3-1}{3}}={binom {6}{3}}={frac {6times 5times 4}{3times 2times 1}}=20.

This result can be verified by listing all the 3-multisubsets of the set S = {1,2,3,4}. This is displayed in the following table.[14] The second column shows the nonnegative integer solutions [x1,x2,x3,x4]{displaystyle [x_{1},x_{2},x_{3},x_{4}]}[x_{1},x_{2},x_{3},x_{4}] of the equation x1+x2+x3+x4=3{displaystyle x_{1}+x_{2}+x_{3}+x_{4}=3}x_{1}+x_{2}+x_{3}+x_{4}=3 and the last column gives the stars and bars representation of the solutions.[15]


































































































































No. 3-Multiset Eq. Solution Stars and Bars
1 {1,1,1} [3,0,0,0]
|||{displaystyle bigstar bigstar bigstar |||}bigstar bigstar bigstar |||
2 {1,1,2} [2,1,0,0]
|★||{displaystyle bigstar bigstar |bigstar ||}bigstar bigstar |bigstar ||
3 {1,1,3} [2,0,1,0]
||★|{displaystyle bigstar bigstar ||bigstar |}bigstar bigstar ||bigstar |
4 {1,1,4} [2,0,0,1]
|||★{displaystyle bigstar bigstar |||bigstar }bigstar bigstar |||bigstar
5 {1,2,2} [1,2,0,0]
|★||{displaystyle bigstar |bigstar bigstar ||}bigstar |bigstar bigstar ||
6 {1,2,3} [1,1,1,0]
|★|★|{displaystyle bigstar |bigstar |bigstar |}bigstar |bigstar |bigstar |
7 {1,2,4} [1,1,0,1]
|★||★{displaystyle bigstar |bigstar ||bigstar }bigstar |bigstar ||bigstar
8 {1,3,3} [1,0,2,0]
||★|{displaystyle bigstar ||bigstar bigstar |}bigstar ||bigstar bigstar |
9 {1,3,4} [1,0,1,1]
||★|★{displaystyle bigstar ||bigstar |bigstar }bigstar ||bigstar |bigstar
10 {1,4,4} [1,0,0,2]
|||★{displaystyle bigstar |||bigstar bigstar }bigstar |||bigstar bigstar
11 {2,2,2} [0,3,0,0]
|★||{displaystyle |bigstar bigstar bigstar ||}|bigstar bigstar bigstar ||
12 {2,2,3} [0,2,1,0]
|★|★|{displaystyle |bigstar bigstar |bigstar |}|bigstar bigstar |bigstar |
13 {2,2,4} [0,2,0,1]
|★||★{displaystyle |bigstar bigstar ||bigstar }|bigstar bigstar ||bigstar
14 {2,3,3} [0,1,2,0]
|★|★|{displaystyle |bigstar |bigstar bigstar |}|bigstar |bigstar bigstar |
15 {2,3,4} [0,1,1,1]
|★|★|★{displaystyle |bigstar |bigstar |bigstar }|bigstar |bigstar |bigstar
16 {2,4,4} [0,1,0,2]
|★||★{displaystyle |bigstar ||bigstar bigstar }|bigstar ||bigstar bigstar
17 {3,3,3} [0,0,3,0]
||★|{displaystyle ||bigstar bigstar bigstar |}||bigstar bigstar bigstar |
18 {3,3,4} [0,0,2,1]
||★|★{displaystyle ||bigstar bigstar |bigstar }||bigstar bigstar |bigstar
19 {3,4,4} [0,0,1,2]
||★|★{displaystyle ||bigstar |bigstar bigstar }||bigstar |bigstar bigstar
20 {4,4,4} [0,0,0,3]
|||★{displaystyle |||bigstar bigstar bigstar }|||bigstar bigstar bigstar



Number of k-combinations for all k



The number of k-combinations for all k is the number of subsets of a set of n elements. There are several ways to see that this number is 2n. In terms of combinations, 0≤k≤n(nk)=2n{displaystyle sum _{0leq {k}leq {n}}{binom {n}{k}}=2^{n}}sum _{0leq {k}leq {n}}{binom {n}{k}}=2^{n}, which is the sum of the nth row (counting from 0) of the binomial coefficients in Pascal's triangle. These combinations (subsets) are enumerated by the 1 digits of the set of base 2 numbers counting from 0 to 2n  −  1, where each digit position is an item from the set of n.


Given 3 cards numbered 1 to 3, there are 8 distinct combinations (subsets), including the empty set:


|{{};{1};{2};{1,2};{3};{1,3};{2,3};{1,2,3}}|=23=8{displaystyle |{{};{1};{2};{1,2};{3};{1,3};{2,3};{1,2,3}}|=2^{3}=8}{displaystyle |{{};{1};{2};{1,2};{3};{1,3};{2,3};{1,2,3}}|=2^{3}=8}

Representing these subsets (in the same order) as base 2 numerals:



0 – 000

1 – 001

2 – 010

3 – 011

4 – 100

5 – 101

6 – 110

7 – 111



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 k−#samples chosenn−#samples visited{displaystyle {frac {k-#{text{samples chosen}}}{n-#{text{samples visited}}}}}{displaystyle {frac {k-#{text{samples chosen}}}{n-#{text{samples visited}}}}}. (see reservoir sampling).



See also





  • Binomial coefficient

  • Combinatorial number system

  • Combinatorics

  • Kneser graph

  • List of permutation topics

  • Multiset

  • Pascal's triangle

  • Permutation

  • Probability

  • Subset




Notes





  1. ^ Ryser 1963, p. 7 also referred to as an unordered selection.


  2. ^ Mazur 2010, p. 10


  3. ^ When the term combination is used to refer to either situation (as in (Brualdi 2010)) care must be taken to clarify whether sets or multisets are being discussed.


  4. ^ High School Textbook for full-time student (Required) Mathematics Book II B (in Chinese) (2nd ed.). China: People's Education Press. June 2006. pp. 107–116. ISBN 978-7-107-19616-4..mw-parser-output cite.citation{font-style:inherit}.mw-parser-output .citation q{quotes:"""""""'""'"}.mw-parser-output .citation .cs1-lock-free a{background:url("//upload.wikimedia.org/wikipedia/commons/thumb/6/65/Lock-green.svg/9px-Lock-green.svg.png")no-repeat;background-position:right .1em center}.mw-parser-output .citation .cs1-lock-limited a,.mw-parser-output .citation .cs1-lock-registration a{background:url("//upload.wikimedia.org/wikipedia/commons/thumb/d/d6/Lock-gray-alt-2.svg/9px-Lock-gray-alt-2.svg.png")no-repeat;background-position:right .1em center}.mw-parser-output .citation .cs1-lock-subscription a{background:url("//upload.wikimedia.org/wikipedia/commons/thumb/a/aa/Lock-red-alt-2.svg/9px-Lock-red-alt-2.svg.png")no-repeat;background-position:right .1em center}.mw-parser-output .cs1-subscription,.mw-parser-output .cs1-registration{color:#555}.mw-parser-output .cs1-subscription span,.mw-parser-output .cs1-registration span{border-bottom:1px dotted;cursor:help}.mw-parser-output .cs1-ws-icon a{background:url("//upload.wikimedia.org/wikipedia/commons/thumb/4/4c/Wikisource-logo.svg/12px-Wikisource-logo.svg.png")no-repeat;background-position:right .1em center}.mw-parser-output code.cs1-code{color:inherit;background:inherit;border:inherit;padding:inherit}.mw-parser-output .cs1-hidden-error{display:none;font-size:100%}.mw-parser-output .cs1-visible-error{font-size:100%}.mw-parser-output .cs1-maint{display:none;color:#33aa33;margin-left:0.3em}.mw-parser-output .cs1-subscription,.mw-parser-output .cs1-registration,.mw-parser-output .cs1-format{font-size:95%}.mw-parser-output .cs1-kern-left,.mw-parser-output .cs1-kern-wl-left{padding-left:0.2em}.mw-parser-output .cs1-kern-right,.mw-parser-output .cs1-kern-wl-right{padding-right:0.2em}


  5. ^ Mazur 2010, p. 21


  6. ^ Lucia Moura. "Generating Elementary Combinatorial Objects" (PDF). Site.uottawa.ca. Retrieved 2017-04-10.


  7. ^ "SAGE : Subsets" (PDF). Sagemath.org. Retrieved 2017-04-10.


  8. ^ "Combinations - Rosetta Code".
    [user-generated source?]



  9. ^ Brualdi 2010, p. 52


  10. ^ Benjamin & Quinn 2003, p. 70


  11. ^ In the article Stars and bars (combinatorics) the roles of n and k are reversed.


  12. ^ Benjamin & Quinn 2003, pp. 71 –72


  13. ^ Benjamin & Quinn 2003, p. 72 (identity 145)


  14. ^ Benjamin & Quinn 2003, p. 71


  15. ^ Mazur 2010, p. 10 where the stars and bars are written as binary numbers, with stars = 0 and bars = 1.




References




  • Benjamin, Arthur T.; Quinn, Jennifer J. (2003), Proofs that Really Count: The Art of Combinatorial Proof, The Dolciani Mathematical Expositions 27, The Mathematical Association of America, ISBN 978-0-88385-333-7


  • Brualdi, Richard A. (2010), Introductory Combinatorics (5th ed.), Pearson Prentice Hall, ISBN 978-0-13-602040-0


  • Erwin Kreyszig, Advanced Engineering Mathematics, John Wiley & Sons, INC, 1999.


  • Mazur, David R. (2010), Combinatorics: A Guided Tour, Mathematical Association of America, ISBN 978-0-88385-762-5


  • Ryser, Herbert John (1963), Combinatorial Mathematics, The Carus Mathematical Monographs 14, Mathematical Association of America



External links



  • Topcoder tutorial on combinatorics

  • 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

  • Combinations with repetitions (by: Akshatha AG and Smitha B)


  • The dice roll with a given sum problem An application of the combinations with repetition to rolling multiple dice




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