Fibonacci number






A tiling with squares whose side lengths are successive Fibonacci numbers


In mathematics, the Fibonacci numbers, commonly denoted Fn form a sequence, called the Fibonacci sequence, such that each number is the sum of the two preceding ones, starting from 0 and 1. That is,[1]


F0=0,F1=1,{displaystyle F_{0}=0,quad F_{1}=1,}{displaystyle F_{0}=0,quad F_{1}=1,}

and


Fn=Fn−1+Fn−2,{displaystyle F_{n}=F_{n-1}+F_{n-2},}{displaystyle F_{n}=F_{n-1}+F_{n-2},}

for n > 1.


One has F2 = 1. In some books, and particularly in old ones, F0, the "0" is omitted, and the Fibonacci sequence starts with F1 = F2 = 1.[2][3] The beginning of the sequence is thus:



(0,)1,1,2,3,5,8,13,21,34,55,89,144,…{displaystyle (0,);1,;1,;2,;3,;5,;8,;13,;21,;34,;55,;89,;144,;ldots }{displaystyle (0,);1,;1,;2,;3,;5,;8,;13,;21,;34,;55,;89,;144,;ldots }[4]



The Fibonacci spiral: an approximation of the golden spiral created by drawing circular arcs connecting the opposite corners of squares in the Fibonacci tiling;[5] this one uses squares of sizes 1, 1, 2, 3, 5, 8, 13 and 21.


Fibonacci numbers are strongly related to the golden ratio: Binet's formula expresses the nth Fibonacci number in terms of n and the golden ratio, and implies that the ratio of two consecutive Fibonacci numbers tends to the golden ratio as n increases.


Fibonacci numbers are named after Italian mathematician Leonardo of Pisa, later known as Fibonacci. They appear to have first arisen as early as 200 BC in work by Pingala on enumerating possible patterns of poetry formed from syllables of two lengths. In his 1202 book Liber Abaci, Fibonacci introduced the sequence to Western European mathematics,[6] although the sequence had been described earlier in Indian mathematics.[7][8][9]


Fibonacci numbers appear unexpectedly often in mathematics, so much so that there is an entire journal dedicated to their study, the Fibonacci Quarterly. Applications of Fibonacci numbers include computer algorithms such as the Fibonacci search technique and the Fibonacci heap data structure, and graphs called Fibonacci cubes used for interconnecting parallel and distributed systems. They also appear in biological settings, such as branching in trees, the arrangement of leaves on a stem, the fruit sprouts of a pineapple, the flowering of an artichoke, an uncurling fern and the arrangement of a pine cone's bracts.


Fibonacci numbers are also closely related to Lucas numbers Ln{displaystyle L_{n}}L_{n} in that they form a complementary pair of Lucas sequences Un(1,−1)=Fn{displaystyle U_{n}(1,-1)=F_{n}}U_{n}(1,-1)=F_{n} and Vn(1,−1)=Ln{displaystyle V_{n}(1,-1)=L_{n}}V_{n}(1,-1)=L_{n}. Lucas numbers are also intimately connected with the golden ratio.




Contents






  • 1 History


  • 2 Applications


    • 2.1 Music


    • 2.2 Nature




  • 3 Mathematics


    • 3.1 Sequence properties


    • 3.2 Relation to the golden ratio


      • 3.2.1 Closed-form expression


      • 3.2.2 Computation by rounding


      • 3.2.3 Limit of consecutive quotients


      • 3.2.4 Decomposition of powers




    • 3.3 Matrix form


    • 3.4 Identification


    • 3.5 Combinatorial identities


      • 3.5.1 Symbolic method




    • 3.6 Other identities


      • 3.6.1 Cassini's and Catalan's identities


      • 3.6.2 d'Ocagne's identity




    • 3.7 Power series


    • 3.8 Reciprocal sums


    • 3.9 Primes and divisibility


      • 3.9.1 Divisibility properties


      • 3.9.2 Primality testing


      • 3.9.3 Fibonacci primes


      • 3.9.4 Prime divisors


      • 3.9.5 Periodicity modulo n




    • 3.10 Right triangles


    • 3.11 Magnitude


    • 3.12 Generalizations




  • 4 See also


  • 5 References


    • 5.1 Works cited




  • 6 External links





History





Thirteen ways of arranging long and short syllables in a cadence of length six. Five end with a long syllable and eight end with a short syllable.


The Fibonacci sequence appears in Indian mathematics in connection with Sanskrit prosody, as pointed out by Parmanand Singh in 1985.[8][10][11] In the Sanskrit poetic tradition, there was interest in enumerating all patterns of long (L) syllables of 2 units duration, juxtaposed with short (S) syllables of 1 unit duration. Counting the different patterns of successive L and S with a given total duration results in the Fibonacci numbers: the number of patterns of duration m units is Fm + 1.[9]


Knowledge of the Fibonacci sequence was expressed as early as Pingala (c. 450 BC–200 BC). Singh cites Pingala's cryptic formula misrau cha ("the two are mixed") and scholars who interpret it in context as saying that the number of patterns for m beats (Fm+1) is obtained by adding one [S] to the Fm cases and one [L] to the Fm−1 cases. [12]Bharata Muni also expresses knowledge of the sequence in the Natya Shastra (c. 100 BC–c. 350 AD).[13][7]
However, the clearest exposition of the sequence arises in the work of Virahanka (c. 700 AD), whose own work is lost, but is available in a quotation by Gopala (c. 1135):[11]


Variations of two earlier meters [is the variation]... For example, for [a meter of length] four, variations of meters of two [and] three being mixed, five happens. [works out examples 8, 13, 21]... In this way, the process should be followed in all mātrā-vṛttas [prosodic combinations].[a]


Hemachandra (c. 1150) is credited with knowledge of the sequence as well,[7] writing that "the sum of the last and the one before the last is the number ... of the next mātrā-vṛtta."[15][16]




A page of Fibonacci's Liber Abaci from the Biblioteca Nazionale di Firenze showing (in box on right) the Fibonacci sequence with the position in the sequence labeled in Latin and Roman numerals and the value in Hindu-Arabic numerals.




The number of rabbit pairs form the Fibonacci sequence


Outside India, the Fibonacci sequence first appears in the book Liber Abaci (1202) by Fibonacci.[6][17] using it to calculate the growth of rabbit populations.[18][19] Fibonacci considers the growth of a hypothetical, idealized (biologically unrealistic) rabbit population, assuming that: a newly born pair of rabbits, one male, one female, are put in a field; rabbits are able to mate at the age of one month so that at the end of its second month a female can produce another pair of rabbits; rabbits never die and a mating pair always produces one new pair (one male, one female) every month from the second month on. Fibonacci posed the puzzle: how many pairs will there be in one year?



  • At the end of the first month, they mate, but there is still only 1 pair.

  • At the end of the second month the female produces a new pair, so now there are 2 pairs of rabbits in the field.

  • At the end of the third month, the original female produces a second pair, making 3 pairs in all in the field.

  • At the end of the fourth month, the original female has produced yet another new pair, and the female born two months ago also produces her first pair, making 5 pairs.


At the end of the nth month, the number of pairs of rabbits is equal to the number of new pairs (that is, the number of pairs in month n − 2) plus the number of pairs alive last month (that is, n − 1). This is the nth Fibonacci number.[20]


The name "Fibonacci sequence" was first used by the 19th-century number theorist Édouard Lucas.[21]



Applications



  • The Fibonacci numbers are important in the computational run-time analysis of Euclid's algorithm to determine the greatest common divisor of two integers: the worst case input for this algorithm is a pair of consecutive Fibonacci numbers.[22]

  • Brasch et al. 2012 show how a generalised Fibonacci sequence also can be connected to the field of economics.[23] In particular, it is shown how a generalised Fibonacci sequence enters the control function of finite-horizon dynamic optimisation problems with one state and one control variable. The procedure is illustrated in an example often referred to as the Brock–Mirman economic growth model.


  • Yuri Matiyasevich was able to show that the Fibonacci numbers can be defined by a Diophantine equation, which led to his solving Hilbert's tenth problem.[24]

  • The Fibonacci numbers are also an example of a complete sequence. This means that every positive integer can be written as a sum of Fibonacci numbers, where any one number is used once at most.

  • Moreover, every positive integer can be written in a unique way as the sum of one or more distinct Fibonacci numbers in such a way that the sum does not include any two consecutive Fibonacci numbers. This is known as Zeckendorf's theorem, and a sum of Fibonacci numbers that satisfies these conditions is called a Zeckendorf representation. The Zeckendorf representation of a number can be used to derive its Fibonacci coding.

  • Fibonacci numbers are used by some pseudorandom number generators.

  • They are also used in planning poker, which is a step in estimating in software development projects that use the Scrum methodology.

  • Fibonacci numbers are used in a polyphase version of the merge sort algorithm in which an unsorted list is divided into two lists whose lengths correspond to sequential Fibonacci numbers – by dividing the list so that the two parts have lengths in the approximate proportion φ. A tape-drive implementation of the polyphase merge sort was described in The Art of Computer Programming.

  • Fibonacci numbers arise in the analysis of the Fibonacci heap data structure.

  • The Fibonacci cube is an undirected graph with a Fibonacci number of nodes that has been proposed as a network topology for parallel computing.

  • A one-dimensional optimization method, called the Fibonacci search technique, uses Fibonacci numbers.[25]

  • The Fibonacci number series is used for optional lossy compression in the IFF 8SVX audio file format used on Amiga computers. The number series compands the original audio wave similar to logarithmic methods such as µ-law.[26][27]

  • Since the conversion factor 1.609344 for miles to kilometers is close to the golden ratio, the decomposition of distance in miles into a sum of Fibonacci numbers becomes nearly the kilometer sum when the Fibonacci numbers are replaced by their successors. This method amounts to a radix 2 number register in golden ratio base φ being shifted. To convert from kilometers to miles, shift the register down the Fibonacci sequence instead.[28]

  • In optics, when a beam of light shines at an angle through two stacked transparent plates of different materials of different refractive indexes, it may reflect off three surfaces: the top, middle, and bottom surfaces of the two plates. The number of different beam paths that have k reflections, for k > 1, is the k{displaystyle k}kth Fibonacci number. (However, when k = 1, there are three reflection paths, not two, one for each of the three surfaces.)[29]


  • Mario Merz included the Fibonacci sequence in some of his works beginning in 1970.[30]



Music



Joseph Schillinger (1895–1943) developed a system of composition which utilized Fibonacci intervals in some of its melodies; he viewed these as the musical counterpart to the elaborate harmony evident within nature.[31]



Nature







Yellow chamomile head showing the arrangement in 21 (blue) and 13 (aqua) spirals. Such arrangements involving consecutive Fibonacci numbers appear in a wide variety of plants.


Fibonacci sequences appear in biological settings,[32] such as branching in trees, arrangement of leaves on a stem, the fruitlets of a pineapple,[33] the flowering of artichoke, an uncurling fern and the arrangement of a pine cone,[34] and the family tree of honeybees.[35][36]Kepler pointed out the presence of the Fibonacci sequence in nature, using it to explain the (golden ratio-related) pentagonal form of some flowers.[37] Field daisies most often have petals in counts of Fibonacci numbers.[38] In 1754, Charles Bonnet discovered that the spiral phyllotaxis of plants were frequently expressed in Fibonacci number series.[39]


Przemysław Prusinkiewicz advanced the idea that real instances can in part be understood as the expression of certain algebraic constraints on free groups, specifically as certain Lindenmayer grammars.[40]




Illustration of Vogel's model for n = 1 ... 500


A model for the pattern of florets in the head of a sunflower was proposed by Helmut Vogel [de] in 1979.[41] This has the form


θ=2πϕ2n, r=cn{displaystyle theta ={frac {2pi }{phi ^{2}}}n, r=c{sqrt {n}}}theta ={frac {2pi }{phi ^{2}}}n, r=c{sqrt {n}}

where n is the index number of the floret and c is a constant scaling factor; the florets thus lie on Fermat's spiral. The divergence angle, approximately 137.51°, is the golden angle, dividing the circle in the golden ratio. Because this ratio is irrational, no floret has a neighbor at exactly the same angle from the center, so the florets pack efficiently. Because the rational approximations to the golden ratio are of the form F(j):F(j + 1), the nearest neighbors of floret number n are those at n ± F(j) for some index j, which depends on r, the distance from the center. Sunflowers and similar flowers most commonly have spirals of florets in clockwise and counter-clockwise directions in the amount of adjacent Fibonacci numbers,[42] typically counted by the outermost range of radii.[43]


Fibonacci numbers also appear in the pedigrees of idealized honeybees, according to the following rules:



  • If an egg is laid by an unmated female, it hatches a male or drone bee.

  • If, however, an egg was fertilized by a male, it hatches a female.


Thus, a male bee always has one parent, and a female bee has two. If one traces the pedigree of any male bee (1 bee), he has 1 parent (1 bee), 2 grandparents, 3 great-grandparents, 5 great-great-grandparents, and so on. This sequence of numbers of parents is the Fibonacci sequence. The number of ancestors at each level, Fn, is the number of female ancestors, which is Fn−1, plus the number of male ancestors, which is Fn−2.[44] This is under the unrealistic assumption that the ancestors at each level are otherwise unrelated.




The number of possible ancestors on the X chromosome inheritance line at a given ancestral generation follows the Fibonacci sequence. (After Hutchison, L. "Growing the Family Tree: The Power of DNA in Reconstructing Family Relationships".[45])


Luke Hutchison noticed that the number of possible ancestors on the human X chromosome inheritance line at a given ancestral generation also follows the Fibonacci sequence.[45] A male individual has an X chromosome, which he received from his mother, and a Y chromosome, which he received from his father. The male counts as the "origin" of his own X chromosome (F1=1{displaystyle F_{1}=1}F_{1}=1), and at his parents' generation, his X chromosome came from a single parent (F2=1{displaystyle F_{2}=1}F_{2}=1). The male's mother received one X chromosome from her mother (the son's maternal grandmother), and one from her father (the son's maternal grandfather), so two grandparents contributed to the male descendant's X chromosome (F3=2{displaystyle F_{3}=2}{displaystyle F_{3}=2}). The maternal grandfather received his X chromosome from his mother, and the maternal grandmother received X chromosomes from both of her parents, so three great-grandparents contributed to the male descendant's X chromosome (F4=3{displaystyle F_{4}=3}{displaystyle F_{4}=3}). Five great-great-grandparents contributed to the male descendant's X chromosome (F5=5{displaystyle F_{5}=5}{displaystyle F_{5}=5}), etc. (Note that this assumes that all ancestors of a given descendant are independent, but if any genealogy is traced far enough back in time, ancestors begin to appear on multiple lines of the genealogy, until eventually a population founder appears on all lines of the genealogy.)


The pathways of tubulins on intracellular microtubules arrange in patterns of 3, 5, 8 and 13.[46]



Mathematics




The Fibonacci numbers are the sums of the "shallow" diagonals (shown in red) of Pascal's triangle.


The Fibonacci numbers occur in the sums of "shallow" diagonals in Pascal's triangle (see binomial coefficient):[47]


Fn=∑k=0⌊n−12⌋(n−k−1k){displaystyle F_{n}=sum _{k=0}^{leftlfloor {frac {n-1}{2}}rightrfloor }{tbinom {n-k-1}{k}}}{displaystyle F_{n}=sum _{k=0}^{leftlfloor {frac {n-1}{2}}rightrfloor }{tbinom {n-k-1}{k}}}

These numbers also give the solution to certain enumerative problems.[48] The most common is that of counting the number of compositions of 1s and 2s which sum to a given total n: there are Fn+1 ways to do this.


For example, if n = 5, then Fn+1 = F6 = 8 counts the eight compositions summing to 5:



1+1+1+1+1 = 1+1+1+2 = 1+1+2+1 = 1+2+1+1 = 2+1+1+1 = 2+2+1 = 2+1+2 = 1+2+2.



The Fibonacci numbers can be found in different ways among the set of binary strings, or equivalently, among the subsets of a given set.



  • The number of binary strings of length n without consecutive 1s is the Fibonacci number Fn+2. For example, out of the 16 binary strings of length 4, there are F6 = 8 without consecutive 1s – they are 0000, 0001, 0010, 0100, 0101, 1000, 1001 and 1010. By symmetry, the number of strings of length n without consecutive 0s is also Fn+2. Equivalently, Fn+2 is the number of subsets S ⊂ {1,...,n} without consecutive integers: {i, i+1} ⊄ S for every i. The symmetric statement is: Fn+2 is the number of subsets S ⊂ {1,...,n} without two consecutive skipped integers: that is, S = {a1 < ... < ak} with ai+1 ≤ ai + 2.

  • The number of binary strings of length n without an odd number of consecutive 1s is the Fibonacci number Fn+1. For example, out of the 16 binary strings of length 4, there are F5 = 5 without an odd number of consecutive 1s – they are 0000, 0011, 0110, 1100, 1111. Equivalently, the number of subsets S ⊂ {1,...,n} without an odd number of consecutive integers is Fn+1.

  • The number of binary strings of length n without an even number of consecutive 0s or 1s is 2Fn. For example, out of the 16 binary strings of length 4, there are 2F4 = 6 without an even number of consecutive 0s or 1s – they are 0001, 0111, 0101, 1000, 1010, 1110. There is an equivalent statement about subsets.



Sequence properties


The first 21 Fibonacci numbers Fn for n = 0, 1, 2, ..., 20 are:[49]


















































F0

F1

F2

F3

F4

F5

F6

F7

F8

F9

F10

F11

F12

F13

F14

F15

F16

F17

F18

F19

F20
0
1
1
2
3
5
8
13
21
34
55
89
144
233
377
610
987
1597
2584
4181
6765

The sequence can also be extended to negative index n using the re-arranged recurrence relation


Fn−2=Fn−Fn−1,{displaystyle F_{n-2}=F_{n}-F_{n-1},}F_{n-2}=F_{n}-F_{n-1},

which yields the sequence of "negafibonacci" numbers[50] satisfying


F−n=(−1)n+1Fn.{displaystyle F_{-n}=(-1)^{n+1}F_{n}.}F_{-n}=(-1)^{n+1}F_{n}.

Thus the bidirectional sequence is










































F−8

F−7

F−6

F−5

F−4

F−3

F−2

F−1

F0

F1

F2

F3

F4

F5

F6

F7

F8
−21
13
−8
5
−3
2
−1
1
0
1
1
2
3
5
8
13
21


Relation to the golden ratio




Closed-form expression


Like every sequence defined by a linear recurrence with constant coefficients, the Fibonacci numbers have a closed-form solution. It has become known as "Binet's formula", though it was already known by Abraham de Moivre and Daniel Bernoulli:[51]


Fn=φn−ψψn−ψn5{displaystyle F_{n}={frac {varphi ^{n}-psi ^{n}}{varphi -psi }}={frac {varphi ^{n}-psi ^{n}}{sqrt {5}}}}F_{n}={frac {varphi ^{n}-psi ^{n}}{varphi -psi }}={frac {varphi ^{n}-psi ^{n}}{sqrt {5}}}

where


φ=1+52≈1.6180339887…{displaystyle varphi ={frac {1+{sqrt {5}}}{2}}approx 1.61803,39887ldots }{displaystyle varphi ={frac {1+{sqrt {5}}}{2}}approx 1.61803,39887ldots }

is the golden ratio (OEIS: A001622), and



ψ=1−52=1−φ=−0.6180339887….{displaystyle psi ={frac {1-{sqrt {5}}}{2}}=1-varphi =-{1 over varphi }approx -0.61803,39887ldots .}{displaystyle psi ={frac {1-{sqrt {5}}}{2}}=1-varphi =-{1 over varphi }approx -0.61803,39887ldots .}[52]

Since ψ=−φ1{displaystyle psi =-varphi ^{-1}}{displaystyle psi =-varphi ^{-1}}, this formula can also be written as


Fn=φn−(−φ)−n5=φn−(−φ)−n2φ1{displaystyle F_{n}={frac {varphi ^{n}-(-varphi )^{-n}}{sqrt {5}}}={frac {varphi ^{n}-(-varphi )^{-n}}{2varphi -1}}}{displaystyle F_{n}={frac {varphi ^{n}-(-varphi )^{-n}}{sqrt {5}}}={frac {varphi ^{n}-(-varphi )^{-n}}{2varphi -1}}}


To see this,[53] note that φ and ψ are both solutions of the equations


x2=x+1andxn=xn−1+xn−2,{displaystyle x^{2}=x+1quad {text{and}}quad x^{n}=x^{n-1}+x^{n-2},}{displaystyle x^{2}=x+1quad {text{and}}quad x^{n}=x^{n-1}+x^{n-2},}

so the powers of φ and ψ satisfy the Fibonacci recursion. In other words,


φn=φn−1+φn−2{displaystyle varphi ^{n}=varphi ^{n-1}+varphi ^{n-2}}{displaystyle varphi ^{n}=varphi ^{n-1}+varphi ^{n-2}}

and


ψn=ψn−1+ψn−2.{displaystyle psi ^{n}=psi ^{n-1}+psi ^{n-2}.}{displaystyle psi ^{n}=psi ^{n-1}+psi ^{n-2}.}

It follows that for any values a and b, the sequence defined by


Un=aφn+bψn{displaystyle U_{n}=avarphi ^{n}+bpsi ^{n}}{displaystyle U_{n}=avarphi ^{n}+bpsi ^{n}}

satisfies the same recurrence


Un=aφn−1+bψn−1+aφn−2+bψn−2=Un−1+Un−2.{displaystyle U_{n}=avarphi ^{n-1}+bpsi ^{n-1}+avarphi ^{n-2}+bpsi ^{n-2}=U_{n-1}+U_{n-2}.}{displaystyle U_{n}=avarphi ^{n-1}+bpsi ^{n-1}+avarphi ^{n-2}+bpsi ^{n-2}=U_{n-1}+U_{n-2}.}

If a and b are chosen so that U0 = 0 and U1 = 1 then the resulting sequence Un must be the Fibonacci sequence. This is the same as requiring a and b satisfy the system of equations:


{a+b=0φa+ψb=1{displaystyle left{{begin{array}{l}a+b=0\varphi a+psi b=1end{array}}right.}left{{begin{array}{l}a+b=0\varphi a+psi b=1end{array}}right.

which has solution


a=1φψ=15,b=−a,{displaystyle a={frac {1}{varphi -psi }}={frac {1}{sqrt {5}}},quad b=-a,}{displaystyle a={frac {1}{varphi -psi }}={frac {1}{sqrt {5}}},quad b=-a,}

producing the required formula.


Taking the starting values U0 and U1 to be arbitrary constants, a more general solution is:


Un=aφn+bψn{displaystyle U_{n}=avarphi ^{n}+bpsi ^{n}}{displaystyle U_{n}=avarphi ^{n}+bpsi ^{n}}

where



a=U1−U0ψ5{displaystyle a={frac {U_{1}-U_{0}psi }{sqrt {5}}}}{displaystyle a={frac {U_{1}-U_{0}psi }{sqrt {5}}}}


b=U0φU15{displaystyle b={frac {U_{0}varphi -U_{1}}{sqrt {5}}}}{displaystyle b={frac {U_{0}varphi -U_{1}}{sqrt {5}}}}.



Computation by rounding


Since


n5|<12{displaystyle left|{frac {psi ^{n}}{sqrt {5}}}right|<{frac {1}{2}}}{displaystyle left|{frac {psi ^{n}}{sqrt {5}}}right|<{frac {1}{2}}}

for all n ≥ 0, the number Fn is the closest integer to φn5{displaystyle {frac {varphi ^{n}}{sqrt {5}}}}{frac {varphi ^{n}}{sqrt {5}}}. Therefore, it can be found by rounding, that is by the use of the nearest integer function:


Fn=[φn5], n≥0,{displaystyle F_{n}=left[{frac {varphi ^{n}}{sqrt {5}}}right], ngeq 0,}{displaystyle F_{n}=left[{frac {varphi ^{n}}{sqrt {5}}}right], ngeq 0,}

or in terms of the floor function:


Fn=⌊φn5+12⌋, n≥0.{displaystyle F_{n}=leftlfloor {frac {varphi ^{n}}{sqrt {5}}}+{frac {1}{2}}rightrfloor , ngeq 0.}{displaystyle F_{n}=leftlfloor {frac {varphi ^{n}}{sqrt {5}}}+{frac {1}{2}}rightrfloor , ngeq 0.}

Similarly, if we already know that the number F > 1 is a Fibonacci number, we can determine its index within the sequence by


n(F)=⌊logφ(F⋅5+12)⌋,{displaystyle n(F)={bigg lfloor }log _{varphi }left(Fcdot {sqrt {5}}+{frac {1}{2}}right){bigg rfloor },}{displaystyle n(F)={bigg lfloor }log _{varphi }left(Fcdot {sqrt {5}}+{frac {1}{2}}right){bigg rfloor },}

where logφ(x){displaystyle log _{varphi }(x)}{displaystyle log _{varphi }(x)} can be computed using logarithms to other usual bases.
For example, logφ(x)=ln⁡(x)/ln⁡)=log10⁡(x)/log10⁡){displaystyle log _{varphi }(x)=ln(x)/ln(varphi )=log _{10}(x)/log _{10}(varphi )}{displaystyle log _{varphi }(x)=ln(x)/ln(varphi )=log _{10}(x)/log _{10}(varphi )}.



Limit of consecutive quotients


Johannes Kepler observed that the ratio of consecutive Fibonacci numbers converges. He wrote that "as 5 is to 8 so is 8 to 13, practically, and as 8 is to 13, so is 13 to 21 almost", and concluded that these ratios approach the golden ratio φ:{displaystyle varphi colon }{displaystyle varphi colon }[54][55]


limn→Fn+1Fn=φ.{displaystyle lim _{nto infty }{frac {F_{n+1}}{F_{n}}}=varphi .}{displaystyle lim _{nto infty }{frac {F_{n+1}}{F_{n}}}=varphi .}

This convergence holds regardless of the starting values, excluding 0 and 0, or any pair in the conjugate golden ratio, 1/φ.{displaystyle -1/varphi .}{displaystyle -1/varphi .}[clarification needed] This can be verified using Binet's formula. For example, the initial values 3 and 2 generate the sequence 3, 2, 5, 7, 12, 19, 31, 50, 81, 131, 212, 343, 555, ... The ratio of consecutive terms in this sequence shows the same convergence towards the golden ratio.




Successive tilings of the plane and a graph of approximations to the golden ratio calculated by dividing each Fibonacci number by the previous



Decomposition of powers


Since the golden ratio satisfies the equation


φ2=φ+1,{displaystyle varphi ^{2}=varphi +1,}{displaystyle varphi ^{2}=varphi +1,}

this expression can be used to decompose higher powers φn{displaystyle varphi ^{n}}varphi ^{n} as a linear function of lower powers, which in turn can be decomposed all the way down to a linear combination of φ{displaystyle varphi }varphi and 1. The resulting recurrence relationships yield Fibonacci numbers as the linear coefficients:


φn=Fnφ+Fn−1.{displaystyle varphi ^{n}=F_{n}varphi +F_{n-1}.}varphi ^{n}=F_{n}varphi +F_{n-1}.

This equation can be proved by induction on n.


This expression is also true for n < 1 if the Fibonacci sequence Fn is extended to negative integers using the Fibonacci rule Fn=Fn−1+Fn−2.{displaystyle F_{n}=F_{n-1}+F_{n-2}.}F_{n}=F_{n-1}+F_{n-2}.



Matrix form


A 2-dimensional system of linear difference equations that describes the Fibonacci sequence is


(Fk+2Fk+1)=(1110)(Fk+1Fk){displaystyle {F_{k+2} choose F_{k+1}}={begin{pmatrix}1&1\1&0end{pmatrix}}{F_{k+1} choose F_{k}}}{displaystyle {F_{k+2} choose F_{k+1}}={begin{pmatrix}1&1\1&0end{pmatrix}}{F_{k+1} choose F_{k}}}

alternatively denoted


F→k+1=AF→k,{displaystyle {vec {F}}_{k+1}=mathbf {A} {vec {F}}_{k},}{displaystyle {vec {F}}_{k+1}=mathbf {A} {vec {F}}_{k},}

which yields F→n=AnF→0{displaystyle {vec {F}}_{n}=mathbf {A} ^{n}{vec {F}}_{0}}{vec {F}}_{n}=mathbf {A} ^{n}{vec {F}}_{0}. The eigenvalues of the matrix A are φ=12(1+5){displaystyle varphi ={frac {1}{2}}(1+{sqrt {5}})}{displaystyle varphi ={frac {1}{2}}(1+{sqrt {5}})} and φ1=12(1−5){displaystyle -varphi ^{-1}={frac {1}{2}}(1-{sqrt {5}})}{displaystyle -varphi ^{-1}={frac {1}{2}}(1-{sqrt {5}})} corresponding to the respective eigenvectors


μ=(φ1){displaystyle {vec {mu }}={varphi choose 1}}{displaystyle {vec {mu }}={varphi  choose 1}}

and


ν=(−φ11).{displaystyle {vec {nu }}={-varphi ^{-1} choose 1}.}{displaystyle {vec {nu }}={-varphi ^{-1} choose 1}.}

As the initial value is


F→0=(10)=15μ15ν,{displaystyle {vec {F}}_{0}={1 choose 0}={frac {1}{sqrt {5}}}{vec {mu }}-{frac {1}{sqrt {5}}}{vec {nu }},}{displaystyle {vec {F}}_{0}={1 choose 0}={frac {1}{sqrt {5}}}{vec {mu }}-{frac {1}{sqrt {5}}}{vec {nu }},}

it follows that the nth term is


F→n=15Anμ15Anν=15φ15(−φ)− =15(1+52)n(φ1)−15(1−52)n(−φ11),{displaystyle {begin{aligned}{vec {F}}_{n}&={frac {1}{sqrt {5}}}A^{n}{vec {mu }}-{frac {1}{sqrt {5}}}A^{n}{vec {nu }}\&={frac {1}{sqrt {5}}}varphi ^{n}{vec {mu }}-{frac {1}{sqrt {5}}}(-varphi )^{-n}{vec {nu }}~\&={cfrac {1}{sqrt {5}}}left({cfrac {1+{sqrt {5}}}{2}}right)^{n}{varphi choose 1}-{cfrac {1}{sqrt {5}}}left({cfrac {1-{sqrt {5}}}{2}}right)^{n}{-varphi ^{-1} choose 1},end{aligned}}}{displaystyle {begin{aligned}{vec {F}}_{n}&={frac {1}{sqrt {5}}}A^{n}{vec {mu }}-{frac {1}{sqrt {5}}}A^{n}{vec {nu }}\&={frac {1}{sqrt {5}}}varphi ^{n}{vec {mu }}-{frac {1}{sqrt {5}}}(-varphi )^{-n}{vec {nu }}~\&={cfrac {1}{sqrt {5}}}left({cfrac {1+{sqrt {5}}}{2}}right)^{n}{varphi  choose 1}-{cfrac {1}{sqrt {5}}}left({cfrac {1-{sqrt {5}}}{2}}right)^{n}{-varphi ^{-1} choose 1},end{aligned}}}

From this, the nth element in the Fibonacci series
may be read off directly as a closed-form expression:


Fn=15(1+52)n−15(1−52)n.{displaystyle F_{n}={cfrac {1}{sqrt {5}}}left({cfrac {1+{sqrt {5}}}{2}}right)^{n}-{cfrac {1}{sqrt {5}}}left({cfrac {1-{sqrt {5}}}{2}}right)^{n}.}{displaystyle F_{n}={cfrac {1}{sqrt {5}}}left({cfrac {1+{sqrt {5}}}{2}}right)^{n}-{cfrac {1}{sqrt {5}}}left({cfrac {1-{sqrt {5}}}{2}}right)^{n}.}

Equivalently, the same computation may performed by diagonalization of A through use of its eigendecomposition:


A=SΛS−1,An=SΛnS−1,{displaystyle {begin{aligned}A&=SLambda S^{-1},\A^{n}&=SLambda ^{n}S^{-1},end{aligned}}}{begin{aligned}A&=SLambda S^{-1},\A^{n}&=SLambda ^{n}S^{-1},end{aligned}}

where Λ=(φ00−φ1){displaystyle Lambda ={begin{pmatrix}varphi &0\0&-varphi ^{-1}end{pmatrix}}}Lambda ={begin{pmatrix}varphi &0\0&-varphi ^{-1}end{pmatrix}} and S=(φφ111).{displaystyle S={begin{pmatrix}varphi &-varphi ^{-1}\1&1end{pmatrix}}.}{displaystyle S={begin{pmatrix}varphi &-varphi ^{-1}\1&1end{pmatrix}}.}
The closed-form expression for the nth element in the Fibonacci series is therefore given by


(Fn+1Fn)=An(F1F0)=SΛnS−1(F1F0)=S(φn00(−φ)−n)S−1(F1F0)=(φφ111)(φn00(−φ)−n)15(1φ1−)(10),{displaystyle {begin{aligned}{F_{n+1} choose F_{n}}&=A^{n}{F_{1} choose F_{0}}\&=SLambda ^{n}S^{-1}{F_{1} choose F_{0}}\&=S{begin{pmatrix}varphi ^{n}&0\0&(-varphi )^{-n}end{pmatrix}}S^{-1}{F_{1} choose F_{0}}\&={begin{pmatrix}varphi &-varphi ^{-1}\1&1end{pmatrix}}{begin{pmatrix}varphi ^{n}&0\0&(-varphi )^{-n}end{pmatrix}}{frac {1}{sqrt {5}}}{begin{pmatrix}1&varphi ^{-1}\-1&varphi end{pmatrix}}{1 choose 0},end{aligned}}}{begin{aligned}{F_{n+1} choose F_{n}}&=A^{n}{F_{1} choose F_{0}}\&=SLambda ^{n}S^{-1}{F_{1} choose F_{0}}\&=S{begin{pmatrix}varphi ^{n}&0\0&(-varphi )^{-n}end{pmatrix}}S^{-1}{F_{1} choose F_{0}}\&={begin{pmatrix}varphi &-varphi ^{-1}\1&1end{pmatrix}}{begin{pmatrix}varphi ^{n}&0\0&(-varphi )^{-n}end{pmatrix}}{frac {1}{sqrt {5}}}{begin{pmatrix}1&varphi ^{-1}\-1&varphi end{pmatrix}}{1 choose 0},end{aligned}}

which again yields


Fn=φn−(−φ)−n5.{displaystyle F_{n}={cfrac {varphi ^{n}-(-varphi )^{-n}}{sqrt {5}}}.}F_{n}={cfrac {varphi ^{n}-(-varphi )^{-n}}{sqrt {5}}}.

The matrix A has a determinant of −1, and thus it is a 2×2 unimodular matrix.


This property can be understood in terms of the continued fraction representation for the golden ratio:


φ=1+11+11+11+⋱.{displaystyle varphi =1+{cfrac {1}{1+{cfrac {1}{1+{cfrac {1}{1+ddots }}}}}}.}{displaystyle varphi =1+{cfrac {1}{1+{cfrac {1}{1+{cfrac {1}{1+ddots }}}}}}.}

The Fibonacci numbers occur as the ratio of successive convergents of the continued fraction for φ, and the matrix formed from successive convergents of any continued fraction has a determinant of +1 or −1. The matrix representation gives the following closed-form expression for the Fibonacci numbers:


(1110)n=(Fn+1FnFnFn−1).{displaystyle {begin{pmatrix}1&1\1&0end{pmatrix}}^{n}={begin{pmatrix}F_{n+1}&F_{n}\F_{n}&F_{n-1}end{pmatrix}}.}{begin{pmatrix}1&1\1&0end{pmatrix}}^{n}={begin{pmatrix}F_{n+1}&F_{n}\F_{n}&F_{n-1}end{pmatrix}}.

Taking the determinant of both sides of this equation yields Cassini's identity,


(−1)n=Fn+1Fn−1−Fn2.{displaystyle (-1)^{n}=F_{n+1}F_{n-1}-F_{n}^{2}.}{displaystyle (-1)^{n}=F_{n+1}F_{n-1}-F_{n}^{2}.}

Moreover, since AnAm = An+m for any square matrix A, the following identities can be derived (they are obtained from two different coefficients of the matrix product, and one may easily deduce the second one from the first one by changing n into n + 1),


FmFn+Fm−1Fn−1=Fm+n−1,FmFn+1+Fm−1Fn=Fm+n.{displaystyle {begin{aligned}{F_{m}}{F_{n}}+{F_{m-1}}{F_{n-1}}&=F_{m+n-1},\F_{m}F_{n+1}+F_{m-1}F_{n}&=F_{m+n}.end{aligned}}}{begin{aligned}{F_{m}}{F_{n}}+{F_{m-1}}{F_{n-1}}&=F_{m+n-1},\F_{m}F_{n+1}+F_{m-1}F_{n}&=F_{m+n}.end{aligned}}

In particular, with m = n,


F2n−1=Fn2+Fn−12F2n=(Fn−1+Fn+1)Fn=(2Fn−1+Fn)Fn.{displaystyle {begin{aligned}F_{2n-1}&=F_{n}^{2}+F_{n-1}^{2}\F_{2n}&=(F_{n-1}+F_{n+1})F_{n}\&=(2F_{n-1}+F_{n})F_{n}.end{aligned}}}{begin{aligned}F_{2n-1}&=F_{n}^{2}+F_{n-1}^{2}\F_{2n}&=(F_{n-1}+F_{n+1})F_{n}\&=(2F_{n-1}+F_{n})F_{n}.end{aligned}}

These last two identities provide a way to compute Fibonacci numbers recursively in O(log(n)) arithmetic operations and in time O(M(n) log(n)), where M(n) is the time for the multiplication of two numbers of n digits. This matches the time for computing the nth Fibonacci number from the closed-form matrix formula, but with fewer redundant steps if one avoids recomputing an already computed Fibonacci number (recursion with memoization).[56]



Identification


The question may arise whether a positive integer x is a Fibonacci number. This is true if and only if one or both of 5x2+4{displaystyle 5x^{2}+4}5x^{2}+4 or 5x2−4{displaystyle 5x^{2}-4}5x^{2}-4 is a perfect square.[57] This is because Binet's formula above can be rearranged to give



n=logφ(Fn5+5Fn2±42){displaystyle n=log _{varphi }left({frac {F_{n}{sqrt {5}}+{sqrt {5F_{n}^{2}pm 4}}}{2}}right)}n=log _{varphi }left({frac {F_{n}{sqrt {5}}+{sqrt {5F_{n}^{2}pm 4}}}{2}}right),

which allows one to find the position in the sequence of a given Fibonacci number.


This formula must return an integer for all n, so the radical expression must be an integer (otherwise the logarithm does not even return a rational number).



Combinatorial identities


Most identities involving Fibonacci numbers can be proved using combinatorial arguments using the fact that Fn can be interpreted as the number of sequences of 1s and 2s that sum to n − 1. This can be taken as the definition of Fn, with the convention that F0 = 0, meaning no sum adds up to −1, and that F1 = 1, meaning the empty sum "adds up" to 0. Here, the order of the summand matters. For example, 1 + 2 and 2 + 1 are considered two different sums.


For example, the recurrence relation


Fn=Fn−1+Fn−2,{displaystyle F_{n}=F_{n-1}+F_{n-2},}{displaystyle F_{n}=F_{n-1}+F_{n-2},}

or in words, the nth Fibonacci number is the sum of the previous two Fibonacci numbers, may be shown by dividing the Fn sums of 1s and 2s that add to n − 1 into two non-overlapping groups. One group contains those sums whose first term is 1 and the other those sums whose first term is 2. In the first group the remaining terms add to n − 2, so it has Fn-1 sums, and in the second group the remaining terms add to n − 3, so there are Fn−2 sums. So there are a total of Fn−1 + Fn−2 sums altogether, showing this is equal to Fn.


Similarly, it may be shown that the sum of the first Fibonacci numbers up to the nth is equal to the (n + 2)-nd Fibonacci number minus 1.[58] In symbols:


i=1nFi=Fn+2−1{displaystyle sum _{i=1}^{n}F_{i}=F_{n+2}-1}sum _{i=1}^{n}F_{i}=F_{n+2}-1

This is done by dividing the sums adding to n + 1 in a different way, this time by the location of the first 2. Specifically, the first group consists of those sums that start with 2, the second group those that start 1 + 2, the third 1 + 1 + 2, and so on, until the last group, which consists of the single sum where only 1's are used. The number of sums in the first group is F(n), F(n − 1) in the second group, and so on, with 1 sum in the last group. So the total number of sums is F(n) + F(n − 1) + ... + F(1) + 1 and therefore this quantity is equal to F(n + 2).


A similar argument, grouping the sums by the position of the first 1 rather than the first 2, gives two more identities:


i=0n−1F2i+1=F2n{displaystyle sum _{i=0}^{n-1}F_{2i+1}=F_{2n}}sum _{i=0}^{n-1}F_{2i+1}=F_{2n}

and


i=1nF2i=F2n+1−1.{displaystyle sum _{i=1}^{n}F_{2i}=F_{2n+1}-1.}sum _{i=1}^{n}F_{2i}=F_{2n+1}-1.

In words, the sum of the first Fibonacci numbers with odd index up to F2n−1 is the (2n)th Fibonacci number, and the sum of the first Fibonacci numbers with even index up to F2n is the (2n + 1)th Fibonacci number minus 1.[59]


A different trick may be used to prove


i=1nFi2=FnFn+1,{displaystyle sum _{i=1}^{n}{F_{i}}^{2}=F_{n}F_{n+1},}sum _{i=1}^{n}{F_{i}}^{2}=F_{n}F_{n+1},

or in words, the sum of the squares of the first Fibonacci numbers up to Fn is the product of the nth and (n + 1)th Fibonacci numbers. In this case note that Fibonacci rectangle of size Fn by F(n + 1) can be decomposed into squares of size Fn, Fn−1, and so on to F1 = 1, from which the identity follows by comparing areas.



Symbolic method


The sequence (Fn)n∈N{displaystyle (F_{n})_{nin mathbb {N} }}{displaystyle (F_{n})_{nin mathbb {N} }} is also considered using the symbolic method.[60] More precisely, this sequences corresponds to a specifiable combinatorial class. The specification of this sequence is Seq(Z+Z2){displaystyle mathrm {Seq} ({mathcal {Z+Z^{2}}})}{displaystyle mathrm {Seq} ({mathcal {Z+Z^{2}}})}. Indeed, as stated above, the n{displaystyle n}n-th Fibonacci numbes equals the number of way to partition n{displaystyle n}n using segments of size 1 or 2.


It follows that the ordinary generating function of the Fibonacci sequence, i.e. i=0∞Fizi{displaystyle sum _{i=0}^{infty }F_{i}z^{i}}{displaystyle sum _{i=0}^{infty }F_{i}z^{i}}, is the complex function 11−z−z2{displaystyle {frac {1}{1-z-z^{2}}}}{displaystyle {frac {1}{1-z-z^{2}}}}.



Other identities


Numerous other identities can be derived using various methods. Some of the most noteworthy are:[61]



Cassini's and Catalan's identities



Cassini's identity states that


Fn2−Fn+1Fn−1=(−1)n−1{displaystyle F_{n}^{2}-F_{n+1}F_{n-1}=(-1)^{n-1}}F_{n}^{2}-F_{n+1}F_{n-1}=(-1)^{n-1}

Catalan's identity is a generalization:


Fn2−Fn+rFn−r=(−1)n−rFr2{displaystyle F_{n}^{2}-F_{n+r}F_{n-r}=(-1)^{n-r}F_{r}^{2}}F_{n}^{2}-F_{n+r}F_{n-r}=(-1)^{n-r}F_{r}^{2}


d'Ocagne's identity



FmFn+1−Fm+1Fn=(−1)nFm−n{displaystyle F_{m}F_{n+1}-F_{m+1}F_{n}=(-1)^{n}F_{m-n}}F_{m}F_{n+1}-F_{m+1}F_{n}=(-1)^{n}F_{m-n}

F2n=Fn+12−Fn−12=Fn(Fn+1+Fn−1)=FnLn{displaystyle F_{2n}=F_{n+1}^{2}-F_{n-1}^{2}=F_{n}left(F_{n+1}+F_{n-1}right)=F_{n}L_{n}}F_{2n}=F_{n+1}^{2}-F_{n-1}^{2}=F_{n}left(F_{n+1}+F_{n-1}right)=F_{n}L_{n}


where Ln is the n'th Lucas number. The last is an identity for doubling n; other identities of this type are


F3n=2Fn3+3FnFn+1Fn−1=5Fn3+3(−1)nFn{displaystyle F_{3n}=2F_{n}^{3}+3F_{n}F_{n+1}F_{n-1}=5F_{n}^{3}+3(-1)^{n}F_{n}}F_{3n}=2F_{n}^{3}+3F_{n}F_{n+1}F_{n-1}=5F_{n}^{3}+3(-1)^{n}F_{n}

by Cassini's identity.



F3n+1=Fn+13+3Fn+1Fn2−Fn3{displaystyle F_{3n+1}=F_{n+1}^{3}+3F_{n+1}F_{n}^{2}-F_{n}^{3}}F_{3n+1}=F_{n+1}^{3}+3F_{n+1}F_{n}^{2}-F_{n}^{3}

F3n+2=Fn+13+3Fn+12Fn+Fn3{displaystyle F_{3n+2}=F_{n+1}^{3}+3F_{n+1}^{2}F_{n}+F_{n}^{3}}F_{3n+2}=F_{n+1}^{3}+3F_{n+1}^{2}F_{n}+F_{n}^{3}

F4n=4FnFn+1(Fn+12+2Fn2)−3Fn2(Fn2+2Fn+12){displaystyle F_{4n}=4F_{n}F_{n+1}left(F_{n+1}^{2}+2F_{n}^{2}right)-3F_{n}^{2}left(F_{n}^{2}+2F_{n+1}^{2}right)}F_{4n}=4F_{n}F_{n+1}left(F_{n+1}^{2}+2F_{n}^{2}right)-3F_{n}^{2}left(F_{n}^{2}+2F_{n+1}^{2}right)


These can be found experimentally using lattice reduction, and are useful in setting up the special number field sieve to factorize a Fibonacci number.


More generally,[61]


Fkn+c=∑i=0k(ki)Fc−iFniFn+1k−i.{displaystyle F_{kn+c}=sum _{i=0}^{k}{k choose i}F_{c-i}F_{n}^{i}F_{n+1}^{k-i}.}F_{kn+c}=sum _{i=0}^{k}{k choose i}F_{c-i}F_{n}^{i}F_{n+1}^{k-i}.

Putting k = 2 in this formula, one gets again the formulas of the end of above section Matrix form.



Power series


The generating function of the Fibonacci sequence is the power series


s(x)=∑k=0∞Fkxk.{displaystyle s(x)=sum _{k=0}^{infty }F_{k}x^{k}.}s(x)=sum _{k=0}^{infty }F_{k}x^{k}.

This series is convergent for |x|<1φ,{displaystyle |x|<{frac {1}{varphi }},}|x|<{frac {1}{varphi }}, and its sum has a simple closed-form:[62]


s(x)=x1−x−x2{displaystyle s(x)={frac {x}{1-x-x^{2}}}}s(x)={frac {x}{1-x-x^{2}}}

This can be proved by using the Fibonacci recurrence to expand each coefficient in the infinite sum:


s(x)=∑k=0∞Fkxk=F0+F1x+∑k=2∞(Fk−1+Fk−2)xk=x+∑k=2∞Fk−1xk+∑k=2∞Fk−2xk=x+x∑k=0∞Fkxk+x2∑k=0∞Fkxk=x+xs(x)+x2s(x).{displaystyle {begin{aligned}s(x)&=sum _{k=0}^{infty }F_{k}x^{k}\&=F_{0}+F_{1}x+sum _{k=2}^{infty }left(F_{k-1}+F_{k-2}right)x^{k}\&=x+sum _{k=2}^{infty }F_{k-1}x^{k}+sum _{k=2}^{infty }F_{k-2}x^{k}\&=x+xsum _{k=0}^{infty }F_{k}x^{k}+x^{2}sum _{k=0}^{infty }F_{k}x^{k}\&=x+xs(x)+x^{2}s(x).end{aligned}}}{begin{aligned}s(x)&=sum _{k=0}^{infty }F_{k}x^{k}\&=F_{0}+F_{1}x+sum _{k=2}^{infty }left(F_{k-1}+F_{k-2}right)x^{k}\&=x+sum _{k=2}^{infty }F_{k-1}x^{k}+sum _{k=2}^{infty }F_{k-2}x^{k}\&=x+xsum _{k=0}^{infty }F_{k}x^{k}+x^{2}sum _{k=0}^{infty }F_{k}x^{k}\&=x+xs(x)+x^{2}s(x).end{aligned}}

Solving the equation


s(x)=x+xs(x)+x2s(x){displaystyle s(x)=x+xs(x)+x^{2}s(x)}s(x)=x+xs(x)+x^{2}s(x)

for s(x) results in the above closed form.


Setting x = 1/k, the closed form of the series becomes


n=0∞Fnkn=kk2−k−1.{displaystyle sum _{n=0}^{infty }{frac {F_{n}}{k^{n}}}={frac {k}{k^{2}-k-1}}.}{displaystyle sum _{n=0}^{infty }{frac {F_{n}}{k^{n}}}={frac {k}{k^{2}-k-1}}.}

In particular, if k is an integer greater than 1, then this series converges. Further setting k = 10m yields


n=1∞Fn10m(n+1)=1102m−10m−1{displaystyle sum _{n=1}^{infty }{frac {F_{n}}{10^{m(n+1)}}}={frac {1}{10^{2m}-10^{m}-1}}}sum _{n=1}^{infty }{frac {F_{n}}{10^{m(n+1)}}}={frac {1}{10^{2m}-10^{m}-1}}

for all positive integers m.


Some math puzzle-books present as curious the particular value that comes from m = 1, which is s(1/10)10=189=.011235…{displaystyle {frac {s(1/10)}{10}}={frac {1}{89}}=.011235ldots }{displaystyle {frac {s(1/10)}{10}}={frac {1}{89}}=.011235ldots }[63] Similarly, m = 2 gives


s(1/100)100=19899=.0001010203050813213455…{displaystyle {frac {s(1/100)}{100}}={frac {1}{9899}}=.0001010203050813213455ldots }{displaystyle {frac {s(1/100)}{100}}={frac {1}{9899}}=.0001010203050813213455ldots }


Reciprocal sums


Infinite sums over reciprocal Fibonacci numbers can sometimes be evaluated in terms of theta functions. For example, we can write the sum of every odd-indexed reciprocal Fibonacci number as


k=0∞1F2k+1=54ϑ22(0,3−52),{displaystyle sum _{k=0}^{infty }{frac {1}{F_{2k+1}}}={frac {sqrt {5}}{4}}vartheta _{2}^{2}left(0,{frac {3-{sqrt {5}}}{2}}right),}sum _{k=0}^{infty }{frac {1}{F_{2k+1}}}={frac {sqrt {5}}{4}}vartheta _{2}^{2}left(0,{frac {3-{sqrt {5}}}{2}}right),

and the sum of squared reciprocal Fibonacci numbers as


k=1∞1Fk2=524(ϑ24(0,3−52)−ϑ44(0,3−52)+1).{displaystyle sum _{k=1}^{infty }{frac {1}{F_{k}^{2}}}={frac {5}{24}}left(vartheta _{2}^{4}left(0,{frac {3-{sqrt {5}}}{2}}right)-vartheta _{4}^{4}left(0,{frac {3-{sqrt {5}}}{2}}right)+1right).}sum _{k=1}^{infty }{frac {1}{F_{k}^{2}}}={frac {5}{24}}left(vartheta _{2}^{4}left(0,{frac {3-{sqrt {5}}}{2}}right)-vartheta _{4}^{4}left(0,{frac {3-{sqrt {5}}}{2}}right)+1right).

If we add 1 to each Fibonacci number in the first sum, there is also the closed form


k=0∞11+F2k+1=52,{displaystyle sum _{k=0}^{infty }{frac {1}{1+F_{2k+1}}}={frac {sqrt {5}}{2}},}sum _{k=0}^{infty }{frac {1}{1+F_{2k+1}}}={frac {sqrt {5}}{2}},

and there is a nested sum of squared Fibonacci numbers giving the reciprocal of the golden ratio,


k=1∞(−1)k+1∑j=1kFj2=5−12.{displaystyle sum _{k=1}^{infty }{frac {(-1)^{k+1}}{sum _{j=1}^{k}{F_{j}}^{2}}}={frac {{sqrt {5}}-1}{2}}.}sum _{k=1}^{infty }{frac {(-1)^{k+1}}{sum _{j=1}^{k}{F_{j}}^{2}}}={frac {{sqrt {5}}-1}{2}}.

No closed formula for the reciprocal Fibonacci constant


ψ=∑k=1∞1Fk=3.359885666243…{displaystyle psi =sum _{k=1}^{infty }{frac {1}{F_{k}}}=3.359885666243dots }psi =sum _{k=1}^{infty }{frac {1}{F_{k}}}=3.359885666243dots

is known, but the number has been proved irrational by Richard André-Jeannin.[64]


The Millin series gives the identity[65]


n=0∞1F2n=7−52,{displaystyle sum _{n=0}^{infty }{frac {1}{F_{2^{n}}}}={frac {7-{sqrt {5}}}{2}},}{displaystyle sum _{n=0}^{infty }{frac {1}{F_{2^{n}}}}={frac {7-{sqrt {5}}}{2}},}

which follows from the closed form for its partial sums as N tends to infinity:


n=0N1F2n=3−F2N−1F2N.{displaystyle sum _{n=0}^{N}{frac {1}{F_{2^{n}}}}=3-{frac {F_{2^{N}-1}}{F_{2^{N}}}}.}sum _{n=0}^{N}{frac {1}{F_{2^{n}}}}=3-{frac {F_{2^{N}-1}}{F_{2^{N}}}}.


Primes and divisibility



Divisibility properties


Every third number of the sequence is even and more generally, every kth number of the sequence is a multiple of Fk. Thus the Fibonacci sequence is an example of a divisibility sequence. In fact, the Fibonacci sequence satisfies the stronger divisibility property[66][67]


gcd(Fm,Fn)=Fgcd(m,n).{displaystyle gcd(F_{m},F_{n})=F_{gcd(m,n)}.}gcd(F_{m},F_{n})=F_{gcd(m,n)}.

Any three consecutive Fibonacci numbers are pairwise coprime, which means that, for every n,



gcd(Fn, Fn+1) = gcd(Fn, Fn+2) = gcd(Fn+1, Fn+2) = 1.

Every prime number p divides a Fibonacci number that can be determined by the value of p modulo 5. If p is congruent to 1 or 4 (mod 5), then p divides Fp − 1, and if p is congruent to 2 or 3 (mod 5), then, p divides Fp + 1. The remaining case is that p = 5, and in this case p divides Fp.


{p=5⇒p∣Fp,p≡±1(mod5)⇒p∣Fp−1,p≡±2(mod5)⇒p∣Fp+1.{displaystyle {begin{cases}p=5&Rightarrow pmid F_{p},\pequiv pm 1{pmod {5}}&Rightarrow pmid F_{p-1},\pequiv pm 2{pmod {5}}&Rightarrow pmid F_{p+1}.end{cases}}}{displaystyle {begin{cases}p=5&Rightarrow pmid F_{p},\pequiv pm 1{pmod {5}}&Rightarrow pmid F_{p-1},\pequiv pm 2{pmod {5}}&Rightarrow pmid F_{p+1}.end{cases}}}

These cases can be combined into a single formula, using the Legendre symbol:[68]


p∣Fp−(5p).{displaystyle pmid F_{p-left({frac {5}{p}}right)}.}pmid F_{p-left({frac {5}{p}}right)}.


Primality testing


The above formula can be used as a primality test in the sense that if


n∣Fn−(5n),{displaystyle nmid F_{n-left({frac {5}{n}}right)},}{displaystyle nmid F_{n-left({frac {5}{n}}right)},}

where the Legendre symbol has been replaced by the Jacobi symbol, then this is evidence that n is a prime, and if it fails to hold, then n is definitely not a prime. If n is composite and satisfies the formula, then n is a Fibonacci pseudoprime. When m is large—say a 500-bit number—then we can calculate Fm (mod n) efficiently using the matrix form. Thus


(Fm+1FmFmFm−1)≡(1110)m(modn).{displaystyle {begin{pmatrix}F_{m+1}&F_{m}\F_{m}&F_{m-1}end{pmatrix}}equiv {begin{pmatrix}1&1\1&0end{pmatrix}}^{m}{pmod {n}}.}{displaystyle {begin{pmatrix}F_{m+1}&F_{m}\F_{m}&F_{m-1}end{pmatrix}}equiv {begin{pmatrix}1&1\1&0end{pmatrix}}^{m}{pmod {n}}.}

Here the matrix power Am is calculated using modular exponentiation, which can be adapted to matrices.[69]



Fibonacci primes



A Fibonacci prime is a Fibonacci number that is prime. The first few are:


2, 3, 5, 13, 89, 233, 1597, 28657, 514229, ... OEIS: A005478.

Fibonacci primes with thousands of digits have been found, but it is not known whether there are infinitely many.[70]


Fkn is divisible by Fn, so, apart from F4 = 3, any Fibonacci prime must have a prime index. As there are arbitrarily long runs of composite numbers, there are therefore also arbitrarily long runs of composite Fibonacci numbers.


No Fibonacci number greater than F6 = 8 is one greater or one less than a prime number.[71]


The only nontrivial square Fibonacci number is 144.[72] Attila Pethő proved in 2001 that there is only a finite number of perfect power Fibonacci numbers.[73] In 2006, Y. Bugeaud, M. Mignotte, and S. Siksek proved that 8 and 144 are the only such non-trivial perfect powers.[74]


1, 3, 21, 55 are the only triangular Fibonacci numbers, which was conjectured by Vern Hoggatt and proved by Luo Ming.[75]



Prime divisors


With the exceptions of 1, 8 and 144 (F1 = F2, F6 and F12) every Fibonacci number has a prime factor that is not a factor of any smaller Fibonacci number (Carmichael's theorem).[76] As a result, 8 and 144 (F6 and F12) are the only Fibonacci numbers that are the product of other Fibonacci numbers OEIS: A235383.


The divisibility of Fibonacci numbers by a prime p is related to the Legendre symbol (p5){displaystyle left({tfrac {p}{5}}right)}left({tfrac {p}{5}}right) which is evaluated as follows:


(p5)={0if p=51if p≡±1(mod5)−1if p≡±2(mod5).{displaystyle left({frac {p}{5}}right)={begin{cases}0&{text{if }}p=5\1&{text{if }}pequiv pm 1{pmod {5}}\-1&{text{if }}pequiv pm 2{pmod {5}}.end{cases}}}{displaystyle left({frac {p}{5}}right)={begin{cases}0&{text{if }}p=5\1&{text{if }}pequiv pm 1{pmod {5}}\-1&{text{if }}pequiv pm 2{pmod {5}}.end{cases}}}

If p is a prime number then



Fp≡(p5)(modp)andFp−(p5)≡0(modp).{displaystyle F_{p}equiv left({frac {p}{5}}right){pmod {p}}quad {text{and}}quad F_{p-left({frac {p}{5}}right)}equiv 0{pmod {p}}.}F_{p}equiv left({frac {p}{5}}right){pmod {p}}quad {text{and}}quad F_{p-left({frac {p}{5}}right)}equiv 0{pmod {p}}.[77][78]

For example,


(25)=−1,F3=2,F2=1,(35)=−1,F4=3,F3=2,(55)=0,F5=5,(75)=−1,F8=21,F7=13,(115)=+1,F10=55,F11=89.{displaystyle {begin{aligned}({tfrac {2}{5}})&=-1,&F_{3}&=2,&F_{2}&=1,\({tfrac {3}{5}})&=-1,&F_{4}&=3,&F_{3}&=2,\({tfrac {5}{5}})&=0,&F_{5}&=5,\({tfrac {7}{5}})&=-1,&F_{8}&=21,&F_{7}&=13,\({tfrac {11}{5}})&=+1,&F_{10}&=55,&F_{11}&=89.end{aligned}}}{begin{aligned}({tfrac {2}{5}})&=-1,&F_{3}&=2,&F_{2}&=1,\({tfrac {3}{5}})&=-1,&F_{4}&=3,&F_{3}&=2,\({tfrac {5}{5}})&=0,&F_{5}&=5,\({tfrac {7}{5}})&=-1,&F_{8}&=21,&F_{7}&=13,\({tfrac {11}{5}})&=+1,&F_{10}&=55,&F_{11}&=89.end{aligned}}

It is not known whether there exists a prime p such that


Fp−(p5)≡0(modp2).{displaystyle F_{p-left({frac {p}{5}}right)}equiv 0{pmod {p^{2}}}.}F_{p-left({frac {p}{5}}right)}equiv 0{pmod {p^{2}}}.

Such primes (if there are any) would be called Wall–Sun–Sun primes.


Also, if p ≠ 5 is an odd prime number then:[79]


5Fp±122≡{12(5(p5)±5)(modp)if p≡1(mod4)12(5(p5)∓3)(modp)if p≡3(mod4).{displaystyle 5F_{frac {ppm 1}{2}}^{2}equiv {begin{cases}{tfrac {1}{2}}left(5left({frac {p}{5}}right)pm 5right){pmod {p}}&{text{if }}pequiv 1{pmod {4}}\{tfrac {1}{2}}left(5left({frac {p}{5}}right)mp 3right){pmod {p}}&{text{if }}pequiv 3{pmod {4}}.end{cases}}}{displaystyle 5F_{frac {ppm 1}{2}}^{2}equiv {begin{cases}{tfrac {1}{2}}left(5left({frac {p}{5}}right)pm 5right){pmod {p}}&{text{if }}pequiv 1{pmod {4}}\{tfrac {1}{2}}left(5left({frac {p}{5}}right)mp 3right){pmod {p}}&{text{if }}pequiv 3{pmod {4}}.end{cases}}}

Example 1. p = 7, in this case p ≡ 3 (mod 4) and we have:



(75)=−1:12(5(75)+3)=−1,12(5(75)−3)=−4.{displaystyle ({tfrac {7}{5}})=-1:qquad {tfrac {1}{2}}left(5({tfrac {7}{5}})+3right)=-1,quad {tfrac {1}{2}}left(5({tfrac {7}{5}})-3right)=-4.}({tfrac {7}{5}})=-1:qquad {tfrac {1}{2}}left(5({tfrac {7}{5}})+3right)=-1,quad {tfrac {1}{2}}left(5({tfrac {7}{5}})-3right)=-4.

F3=2 and F4=3.{displaystyle F_{3}=2{text{ and }}F_{4}=3.}F_{3}=2{text{ and }}F_{4}=3.

5F32=20≡1(mod7) and 5F42=45≡4(mod7){displaystyle 5F_{3}^{2}=20equiv -1{pmod {7}};;{text{ and }};;5F_{4}^{2}=45equiv -4{pmod {7}}}5F_{3}^{2}=20equiv -1{pmod {7}};;{text{ and }};;5F_{4}^{2}=45equiv -4{pmod {7}}


Example 2. p = 11, in this case p ≡ 3 (mod 4) and we have:



(115)=+1:12(5(115)+3)=4,12(5(115)−3)=1.{displaystyle ({tfrac {11}{5}})=+1:qquad {tfrac {1}{2}}left(5({tfrac {11}{5}})+3right)=4,quad {tfrac {1}{2}}left(5({tfrac {11}{5}})-3right)=1.}({tfrac {11}{5}})=+1:qquad {tfrac {1}{2}}left(5({tfrac {11}{5}})+3right)=4,quad {tfrac {1}{2}}left(5({tfrac {11}{5}})-3right)=1.

F5=5 and F6=8.{displaystyle F_{5}=5{text{ and }}F_{6}=8.}F_{5}=5{text{ and }}F_{6}=8.

5F52=125≡4(mod11) and 5F62=320≡1(mod11){displaystyle 5F_{5}^{2}=125equiv 4{pmod {11}};;{text{ and }};;5F_{6}^{2}=320equiv 1{pmod {11}}}5F_{5}^{2}=125equiv 4{pmod {11}};;{text{ and }};;5F_{6}^{2}=320equiv 1{pmod {11}}


Example 3. p = 13, in this case p ≡ 1 (mod 4) and we have:



(135)=−1:12(5(135)−5)=−5,12(5(135)+5)=0.{displaystyle ({tfrac {13}{5}})=-1:qquad {tfrac {1}{2}}left(5({tfrac {13}{5}})-5right)=-5,quad {tfrac {1}{2}}left(5({tfrac {13}{5}})+5right)=0.}({tfrac {13}{5}})=-1:qquad {tfrac {1}{2}}left(5({tfrac {13}{5}})-5right)=-5,quad {tfrac {1}{2}}left(5({tfrac {13}{5}})+5right)=0.

F6=8 and F7=13.{displaystyle F_{6}=8{text{ and }}F_{7}=13.}F_{6}=8{text{ and }}F_{7}=13.

5F62=320≡5(mod13) and 5F72=845≡0(mod13){displaystyle 5F_{6}^{2}=320equiv -5{pmod {13}};;{text{ and }};;5F_{7}^{2}=845equiv 0{pmod {13}}}5F_{6}^{2}=320equiv -5{pmod {13}};;{text{ and }};;5F_{7}^{2}=845equiv 0{pmod {13}}


Example 4. p = 29, in this case p ≡ 1 (mod 4) and we have:



(295)=+1:12(5(295)−5)=0,12(5(295)+5)=5.{displaystyle ({tfrac {29}{5}})=+1:qquad {tfrac {1}{2}}left(5({tfrac {29}{5}})-5right)=0,quad {tfrac {1}{2}}left(5({tfrac {29}{5}})+5right)=5.}({tfrac {29}{5}})=+1:qquad {tfrac {1}{2}}left(5({tfrac {29}{5}})-5right)=0,quad {tfrac {1}{2}}left(5({tfrac {29}{5}})+5right)=5.

F14=377 and F15=610.{displaystyle F_{14}=377{text{ and }}F_{15}=610.}F_{14}=377{text{ and }}F_{15}=610.

5F142=710645≡0(mod29) and 5F152=1860500≡5(mod29){displaystyle 5F_{14}^{2}=710645equiv 0{pmod {29}};;{text{ and }};;5F_{15}^{2}=1860500equiv 5{pmod {29}}}5F_{14}^{2}=710645equiv 0{pmod {29}};;{text{ and }};;5F_{15}^{2}=1860500equiv 5{pmod {29}}


For odd n, all odd prime divisors of Fn are congruent to 1 modulo 4, implying that all odd divisors of Fn (as the products of odd prime divisors) are congruent to 1 modulo 4.[80]


For example,


F1=1,F3=2,F5=5,F7=13,F9=34=2⋅17,F11=89,F13=233,F15=610=2⋅5⋅61.{displaystyle F_{1}=1,F_{3}=2,F_{5}=5,F_{7}=13,F_{9}=34=2cdot 17,F_{11}=89,F_{13}=233,F_{15}=610=2cdot 5cdot 61.}F_{1}=1,F_{3}=2,F_{5}=5,F_{7}=13,F_{9}=34=2cdot 17,F_{11}=89,F_{13}=233,F_{15}=610=2cdot 5cdot 61.

All known factors of Fibonacci numbers F(i) for all i < 50000 are collected at the relevant repositories.[81][82]



Periodicity modulo n



If the members of the Fibonacci sequence are taken mod n, the resulting sequence is periodic with period at most 6n.[83] The lengths of the periods for various n form the so-called Pisano periods OEIS: A001175. Determining a general formula for the Pisano periods is an open problem, which includes as a subproblem a special instance of the problem of finding the multiplicative order of a modular integer or of an element in a finite field. However, for any particular n, the Pisano period may be found as an instance of cycle detection.



Right triangles


Starting with 5, every second Fibonacci number is the length of the hypotenuse of a right triangle with integer sides, or in other words, the largest number in a Pythagorean triple. The length of the longer leg of this triangle is equal to the sum of the three sides of the preceding triangle in this series of triangles, and the shorter leg is equal to the difference between the preceding bypassed Fibonacci number and the shorter leg of the preceding triangle.


The first triangle in this series has sides of length 5, 4, and 3. Skipping 8, the next triangle has sides of length 13, 12 (5 + 4 + 3), and 5 (8 − 3). Skipping 21, the next triangle has sides of length 34, 30 (13 + 12 + 5), and 16 (21 − 5). This series continues indefinitely. The triangle sides a, b, c can be calculated directly:


an=F2n−1bn=2FnFn−1cn=Fn2−Fn−12.{displaystyle {begin{aligned}a_{n}&=F_{2n-1}\[4pt]b_{n}&=2F_{n}F_{n-1}\[4pt]c_{n}&=F_{n}^{2}-F_{n-1}^{2}.end{aligned}}}{begin{aligned}a_{n}&=F_{2n-1}\[4pt]b_{n}&=2F_{n}F_{n-1}\[4pt]c_{n}&=F_{n}^{2}-F_{n-1}^{2}.end{aligned}}

These formulas satisfy an2=bn2+cn2{displaystyle a_{n}^{2}=b_{n}^{2}+c_{n}^{2}}a_{n}^{2}=b_{n}^{2}+c_{n}^{2} for all n, but they only represent triangle sides when n > 2.


Any four consecutive Fibonacci numbers Fn, Fn+1, Fn+2 and Fn+3 can also be used to generate a Pythagorean triple in a different way:[84]


a=FnFn+3b=2Fn+1Fn+2c=Fn+12+Fn+22.{displaystyle {begin{aligned}a&=F_{n}F_{n+3}\b&=2F_{n+1}F_{n+2}\c&=F_{n+1}^{2}+F_{n+2}^{2}.end{aligned}}}{displaystyle {begin{aligned}a&=F_{n}F_{n+3}\b&=2F_{n+1}F_{n+2}\c&=F_{n+1}^{2}+F_{n+2}^{2}.end{aligned}}}


Magnitude


Since Fn is asymptotic to φn/5{displaystyle varphi ^{n}/{sqrt {5}}}varphi ^{n}/{sqrt {5}}, the number of digits in Fn is asymptotic to nlog10⁡φ0.2090n{displaystyle nlog _{10}varphi approx 0.2090,n}{displaystyle nlog _{10}varphi approx 0.2090,n}. As a consequence, for every integer d > 1 there are either 4 or 5 Fibonacci numbers with d decimal digits.


More generally, in the base b representation, the number of digits in Fn is asymptotic to nlogb⁡φ.{displaystyle nlog _{b}varphi .}{displaystyle nlog _{b}varphi .}



Generalizations



The Fibonacci sequence is one of the simplest and earliest known sequences defined by a recurrence relation, and specifically by a linear difference equation. All these sequences may be viewed as generalizations of the Fibonacci sequence. In particular, Binet's formula may be generalized to any sequence that is a solution of a homogeneous linear difference equation with constant coefficients.


Some specific examples that are close, in some sense, from Fibonacci sequence include:



  • Generalizing the index to negative integers to produce the negafibonacci numbers.

  • Generalizing the index to real numbers using a modification of Binet's formula.[61]

  • Starting with other integers. Lucas numbers have L1 = 1, L2 = 3, and Ln = Ln−1 + Ln−2. Primefree sequences use the Fibonacci recursion with other starting points to generate sequences in which all numbers are composite.

  • Letting a number be a linear function (other than the sum) of the 2 preceding numbers. The Pell numbers have Pn = 2Pn − 1 + Pn − 2.

  • Not adding the immediately preceding numbers. The Padovan sequence and Perrin numbers have P(n) = P(n − 2) + P(n − 3).

  • Generating the next number by adding 3 numbers (tribonacci numbers), 4 numbers (tetranacci numbers), or more. The resulting sequences are known as n-Step Fibonacci numbers.[85]

  • Adding other objects than integers, for example functions or strings – one essential example is Fibonacci polynomials.



See also




  • Elliott wave principle

  • Embree–Trefethen constant

  • The Fibonacci Association

  • Fibonacci numbers in popular culture

  • Fibonacci word

  • Strong Law of Small Numbers

  • Verner Emil Hoggatt Jr.

  • Wythoff array




References


Footnotes





  1. ^ "For four, variations of meters of two [and] three being mixed, five happens. For five, variations of two earlier – three [and] four, being mixed, eight is obtained. In this way, for six, [variations] of four [and] of five being mixed, thirteen happens. And like that, variations of two earlier meters being mixed, seven morae [is] twenty-one. In this way, the process should be followed in all mātrā-vṛttas" [14]



Citations





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  74. ^ Bugeaud, Y; Mignotte, M; Siksek, S (2006), "Classical and modular approaches to exponential Diophantine equations. I. Fibonacci and Lucas perfect powers", Ann. Math., 2 (163): 969–1018, arXiv:math/0403046, Bibcode:2004math......3046B, doi:10.4007/annals.2006.163.969


  75. ^ Ming, Luo (1989), "On triangular Fibonacci numbers" (PDF), Fibonacci Quart., 27 (2): 98–108


  76. ^ Knott, Ron, The Fibonacci numbers, UK: Surrey


  77. ^ Ribenboim, Paulo (1996), The New Book of Prime Number Records, New York: Springer, p. 64, ISBN 978-0-387-94457-9


  78. ^ Lemmermeyer 2000, pp. 73–4, ex. 2.25–28.


  79. ^ Lemmermeyer 2000, pp. 73–4, ex. 2.28.


  80. ^ Lemmermeyer 2000, p. 73, ex. 2.27.


  81. ^ Fibonacci and Lucas factorizations, Mersennus collects all known factors of F(i) with i < 10000.


  82. ^ Factors of Fibonacci and Lucas numbers, Red golpe collects all known factors of F(i) with 10000 < i < 50000.


  83. ^ Freyd, Peter; Brown, Kevin S. (1993), "Problems and Solutions: Solutions: E3410", The American Mathematical Monthly, 99 (3): 278–279, doi:10.2307/2325076, JSTOR 2325076


  84. ^ Koshy, Thomas (2007), Elementary number theory with applications, Academic Press, p. 581, ISBN 978-0-12-372487-8


  85. ^ Weisstein, Eric W. "Fibonacci n-Step Number". MathWorld.




Works cited




  • Ball, Keith M (2003), "8: Fibonacci's Rabbits Revisited", Strange Curves, Counting Rabbits, and Other Mathematical Explorations, Princeton, NJ: Princeton University Press, ISBN 978-0-691-11321-0.


  • Beck, Matthias; Geoghegan, Ross (2010), The Art of Proof: Basic Training for Deeper Mathematics, New York: Springer, ISBN 978-1-4419-7022-0.


  • Bóna, Miklós (2011), A Walk Through Combinatorics (3rd ed.), New Jersey: World Scientific, ISBN 978-981-4335-23-2.

    • Bóna, Miklós (2016), A Walk Through Combinatorics (4th Revised ed.), New Jersey: World Scientific, ISBN 978-981-3148-84-0.



  • Lemmermeyer, Franz (2000), Reciprocity Laws: From Euler to Eisenstein, Springer Monographs in Mathematics, New York: Springer, ISBN 978-3-540-66957-9.


  • Livio, Mario (2003) [2002]. The Golden Ratio: The Story of Phi, the World's Most Astonishing Number (First trade paperback ed.). New York City: Broadway Books. ISBN 0-7679-0816-3.


  • Lucas, Édouard (1891), Théorie des nombres (in French), 1, Paris: Gauthier-Villars, https://books.google.com/books?id=_hsPAAAAIAAJ.


  • Pisano, Leonardo (2002), Fibonacci's Liber Abaci: A Translation into Modern English of the Book of Calculation, Sources and Studies in the History of Mathematics and Physical Sciences, Sigler, Laurence E, trans, Springer, ISBN 978-0-387-95419-6



External links












  • Periods of Fibonacci Sequences Mod m at MathPages

  • Scientists find clues to the formation of Fibonacci spirals in nature


  • Fibonacci Sequence on In Our Time at the BBC


  • Hazewinkel, Michiel, ed. (2001) [1994], "Fibonacci numbers", Encyclopedia of Mathematics, Springer Science+Business Media B.V. / Kluwer Academic Publishers, ISBN 978-1-55608-010-4


  • OEIS sequence A000045 (Fibonacci numbers)













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