斐波那契数 (意大利语 :Successione di Fibonacci),又译为菲波拿契数 、菲波那西数 、斐氏数 、黄金分割数、斐波那契数列 。所形成的数列 称为斐波那契数列 (意大利语 :Successione di Fibonacci),又译为菲波拿契数列 、菲波那西数列 、斐氏数列 、黄金分割数列、斐波那契数列 。这个数列是由意大利 数学家 斐波那契 在他的《算盘书》中提出。
此条目
需要补充更多来源 。
(2014年3月25日 )
以斐波那契数为边的正方形拼成的近似的黄金矩形 (1:1.618) 在数学 上,斐波那契数 是以递归 的方法来定义:
F
0
=
0
{\displaystyle F_{0}=0}
F
1
=
1
{\displaystyle F_{1}=1}
F
n
=
F
n
−
1
+
F
n
−
2
{\displaystyle F_{n}=F_{n-1}+F_{n-2}}
n
≧
2
{\displaystyle n\geqq 2}
用白话文来说,就是斐波那契数列由0和1开始,之后的斐波那契数就是由之前的两数相加而得出。首几个斐波那契数是:
1 、 1 、 2 、 3 、 5 、 8 、 13 、 21 、 34 、 55 、 89 、 144 、 233 、 377 、 610 、 987……(OEIS 数列A000045 )特别指出 :0 不是第一项,而是第零项(
F
0
{\displaystyle F_{0}}
为求得斐波那契数列的一般表达式,可以借助线性代数的方法。高中的初等数学知识也能求出。
由以上可得:
a
n
+
1
+
α
a
n
=
(
a
2
+
α
a
1
)
β
n
−
1
=
(
1
+
α
)
β
n
−
1
=
β
n
{\displaystyle {\begin{aligned}a_{n+1}+\alpha a_{n}&=(a_{2}+\alpha a_{1})\beta ^{n-1}\\&=(1+\alpha )\beta ^{n-1}\\&=\beta ^{n}\\\end{aligned}}}
变形得:
a
n
+
1
β
n
+
1
+
α
β
⋅
a
n
β
n
=
1
β
{\displaystyle {\frac {a_{n+1}}{\beta ^{n+1}}}+{\frac {\alpha }{\beta }}\cdot {\frac {a_{n}}{\beta ^{n}}}={\frac {1}{\beta }}}
b
n
=
a
n
β
n
{\displaystyle b_{n}={\frac {a_{n}}{\beta ^{n}}}}
(
F
n
+
2
F
n
+
1
)
=
(
1
1
1
0
)
⋅
(
F
n
+
1
F
n
)
{\displaystyle {\begin{pmatrix}F_{n+2}\\F_{n+1}\end{pmatrix}}={\begin{pmatrix}1&1\\1&0\end{pmatrix}}\cdot {\begin{pmatrix}F_{n+1}\\F_{n}\end{pmatrix}}}
(
F
n
+
2
F
n
+
1
F
n
+
1
F
n
)
=
(
1
1
1
0
)
n
+
1
{\displaystyle {\begin{pmatrix}F_{n+2}&F_{n+1}\\F_{n+1}&F_{n}\end{pmatrix}}={\begin{pmatrix}1&1\\1&0\end{pmatrix}}^{n+1}}
根据特征值的计算公式 ,我们需要算出来
|
−
λ
1
1
1
−
λ
|
=
0
{\displaystyle {\begin{vmatrix}-\lambda &1\\1&1-\lambda \\\end{vmatrix}}=0}
展开行列式有:
−
λ
(
1
−
λ
)
−
1
×
1
=
λ
2
−
λ
−
1
{\displaystyle -\lambda (1-\lambda )-1\times 1=\lambda ^{2}-\lambda -1}
故当行列式的值为 0,解得
λ
1
=
1
2
(
1
+
5
)
{\displaystyle \lambda _{1}={\frac {1}{2}}(1+{\sqrt {5}})}
λ
2
=
1
2
(
1
−
5
)
{\displaystyle \lambda _{2}={\frac {1}{2}}(1-{\sqrt {5}})}
将两个特征值代入
(
(
0
1
1
1
)
−
λ
⋅
E
)
⋅
x
→
=
0
{\displaystyle \left({\begin{pmatrix}0&1\\1&1\end{pmatrix}}-\lambda \cdot E\right)\cdot {\vec {x}}=0}
x
→
{\displaystyle {\vec {x}}}
x
→
1
{\displaystyle {\vec {x}}_{1}}
(
1
1
2
(
1
+
5
)
)
{\displaystyle {\begin{pmatrix}1\\{\frac {1}{2}}(1+{\sqrt {5}})\end{pmatrix}}}
x
→
2
{\displaystyle {\vec {x}}_{2}}
(
1
1
2
(
1
−
5
)
)
{\displaystyle {\begin{pmatrix}1\\{\frac {1}{2}}(1-{\sqrt {5}})\end{pmatrix}}}
第一个月的情况是兔子一对,新生0对。
(
J
1
A
1
)
=
(
0
1
)
{\displaystyle {J_{1} \choose A_{1}}={\begin{pmatrix}0\\1\end{pmatrix}}}
将它分解为用特征向量表示。
(
0
1
)
=
1
5
⋅
(
1
1
2
(
1
+
5
)
)
−
1
5
⋅
(
1
1
2
(
1
−
5
)
)
{\displaystyle {\begin{pmatrix}0\\1\end{pmatrix}}={\frac {1}{\sqrt {5}}}\cdot {\begin{pmatrix}1\\{\frac {1}{2}}(1+{\sqrt {5}})\end{pmatrix}}-{\frac {1}{\sqrt {5}}}\cdot {\begin{pmatrix}1\\{\frac {1}{2}}(1-{\sqrt {5}})\end{pmatrix}}}
从
(
J
n
+
1
A
n
+
1
)
=
(
0
1
1
1
)
⋅
(
J
n
A
n
)
{\displaystyle {J_{n+1} \choose A_{n+1}}={\begin{pmatrix}0&1\\1&1\end{pmatrix}}\cdot {J_{n} \choose A_{n}}}
λ
⋅
(
J
n
A
n
)
{\displaystyle \lambda \cdot {J_{n} \choose A_{n}}}
可得到
(
J
n
+
1
A
n
+
1
)
=
(
0
1
1
1
)
n
⋅
(
J
1
A
1
)
=
λ
n
⋅
(
J
1
A
1
)
{\displaystyle {J_{n+1} \choose A_{n+1}}={\begin{pmatrix}0&1\\1&1\end{pmatrix}}^{n}\cdot {J_{1} \choose A_{1}}=\lambda ^{n}\cdot {J_{1} \choose A_{1}}}
将(4) 代入 (5)
(
J
n
+
1
A
n
+
1
)
=
λ
n
⋅
[
1
5
⋅
(
1
1
2
(
1
+
5
)
)
−
1
5
⋅
(
1
1
2
(
1
−
5
)
)
]
{\displaystyle {J_{n+1} \choose A_{n+1}}=\lambda ^{n}\cdot \left[{\frac {1}{\sqrt {5}}}\cdot {\begin{pmatrix}1\\{\frac {1}{2}}(1+{\sqrt {5}})\end{pmatrix}}-{\frac {1}{\sqrt {5}}}\cdot {\begin{pmatrix}1\\{\frac {1}{2}}(1-{\sqrt {5}})\end{pmatrix}}\right]}
根据3
(
J
n
+
1
A
n
+
1
)
=
1
5
⋅
λ
1
n
⋅
(
1
1
2
(
1
+
5
)
)
−
1
5
⋅
λ
2
n
⋅
(
1
1
2
(
1
−
5
)
)
{\displaystyle {J_{n+1} \choose A_{n+1}}={\frac {1}{\sqrt {5}}}\cdot \lambda _{1}^{n}\cdot {\begin{pmatrix}1\\{\frac {1}{2}}(1+{\sqrt {5}})\end{pmatrix}}-{\frac {1}{\sqrt {5}}}\cdot \lambda _{2}^{n}\cdot {\begin{pmatrix}1\\{\frac {1}{2}}(1-{\sqrt {5}})\end{pmatrix}}}
F
n
=
∑
i
=
0
∞
(
n
−
i
i
)
{\displaystyle F_{n}=\sum _{i=0}^{\infty }{\binom {n-i}{i}}}
[ 1]
F
n
−
1
+
F
n
=
∑
i
=
0
∞
(
n
−
1
−
i
i
)
+
∑
i
=
0
∞
(
n
−
i
i
)
=
1
+
∑
i
=
1
∞
(
n
−
i
i
−
1
)
+
∑
i
=
1
∞
(
n
−
i
i
)
=
1
+
∑
i
=
1
∞
(
n
+
1
−
i
i
)
=
∑
i
=
0
∞
(
n
+
1
−
i
i
)
=
F
n
+
1
{\displaystyle F_{n-1}+F_{n}=\sum _{i=0}^{\infty }{\binom {n-1-i}{i}}+\sum _{i=0}^{\infty }{\binom {n-i}{i}}=1+\sum _{i=1}^{\infty }{\binom {n-i}{i-1}}+\sum _{i=1}^{\infty }{\binom {n-i}{i}}=1+\sum _{i=1}^{\infty }{\binom {n+1-i}{i}}=\sum _{i=0}^{\infty }{\binom {n+1-i}{i}}=F_{n+1}}
可通过编程观察斐波那契数列。分为两类问题,一种已知数列中的某一项,求序数。第二种是已知序数,求该项的值。
可通过递归 递推 的算法解决此两个问题。
事实上当
n
{\displaystyle n}
开普勒 发现数列前、后两项之比
1
2
,
2
3
,
3
5
,
5
8
,
8
13
,
13
21
,
21
34
,
⋯
{\displaystyle {\frac {1}{2}},{\frac {2}{3}},{\frac {3}{5}},{\frac {5}{8}},{\frac {8}{13}},{\frac {13}{21}},{\frac {21}{34}},\cdots }
黄金分割 :
f
n
+
1
f
n
≈
a
=
1
2
(
1
+
5
)
=
φ
≈
1
.
618
.
.
.
{\displaystyle {\frac {f_{n+1}}{f_{n}}}\approx a={\frac {1}{2}}(1+{\sqrt {5}})=\varphi \approx 1{.}618{...}}
斐波那契数亦可以用连分数 来表示:
1
1
=
1
2
1
=
1
+
1
1
3
2
=
1
+
1
1
+
1
1
5
3
=
1
+
1
1
+
1
1
+
1
1
8
5
=
1
+
1
1
+
1
1
+
1
1
+
1
1
{\displaystyle {\frac {1}{1}}=1\qquad {\frac {2}{1}}=1+{\frac {1}{1}}\qquad {\frac {3}{2}}=1+{\frac {1}{1+{\frac {1}{1}}}}\qquad {\frac {5}{3}}=1+{\frac {1}{1+{\frac {1}{1+{\frac {1}{1}}}}}}\qquad {\frac {8}{5}}=1+{\frac {1}{1+{\frac {1}{1+{\frac {1}{1+{\frac {1}{1}}}}}}}}}
F
n
=
1
5
[
(
1
+
5
2
)
n
−
(
1
−
5
2
)
n
]
=
φ
n
5
−
(
1
−
φ
)
n
5
{\displaystyle F_{n}={\frac {1}{\sqrt {5}}}\left[\left({\frac {1+{\sqrt {5}}}{2}}\right)^{n}-\left({\frac {1-{\sqrt {5}}}{2}}\right)^{n}\right]={\varphi ^{n} \over {\sqrt {5}}}-{(1-\varphi )^{n} \over {\sqrt {5}}}}
而黄金分割数亦可以用无限连分数表示:
φ
=
1
+
1
1
+
1
1
+
1
1
+
1
1
+
.
.
.
{\displaystyle \varphi =1+{\frac {1}{1+{\frac {1}{1+{\frac {1}{1+{\frac {1}{1+...}}}}}}}}}
而黄金分割数也可以用无限多重根号表示:
φ
=
1
+
1
+
1
+
1
+
.
.
.
{\displaystyle \varphi ={\sqrt {1+{\sqrt {1+{\sqrt {1+{\sqrt {1+...}}}}}}}}}
更多信息:自然界的图案
参见:Golden ratio#Nature
春黄菊 的头状花序 上,小花呈螺旋状排列,从不同方向可以数出21(深蓝)和13(浅蓝)条旋臂,为相邻的斐氏数。类似的螺旋状排列见于多种植物。斐氏数列见于不同的生物学现象[ 2] 叶在枝条上的排列 聚花果 上小单果的排列、[ 3] 雅枝竹 的花蕾、正在舒展的蕨叶、松球 的鳞的排列[ 4] [ 5] [ 6] 开普勒 曾指出斐氏数列存在于自然界,并以此解释某些花的五边形形态(与黄金分割率 相关)。法国菊 的“瓣”(舌状花)数通常为斐氏数。1830年,K. F. Schimper和A. Braun发现植物的旋生叶序中,连续两块叶之间转过的角度与周角之比,约成整数比时,常出现斐氏数[ 9]
2
/
5
{\displaystyle 2/5}
5
/
13
{\displaystyle 5/13}
[ 10]
资料来源: [ 11]
证明以下的恒等式有很多方法。以下会用组合论述 来证明。
F
n
{\displaystyle F_{n}}
n
{\displaystyle n}
不失一般性 ,我们假设
n
≥
1
{\displaystyle n\geq 1}
F
n
+
1
{\displaystyle F_{n+1}}
F
n
{\displaystyle F_{n}}
n
−
1
{\displaystyle n-1}
F
n
−
1
{\displaystyle F_{n-1}}
n
−
2
{\displaystyle n-2}
F
n
+
F
n
−
1
{\displaystyle F_{n}+F_{n-1}}
F
0
+
F
1
+
F
2
+
F
3
+
.
.
.
+
F
n
=
F
n
+
2
−
1
{\displaystyle F_{0}+F_{1}+F_{2}+F_{3}+...+F_{n}=F_{n+2}-1}
计算用多个1和多个2相加令其和等于
n
+
1
{\displaystyle n+1}
如前所述,当
n
>
0
{\displaystyle n>0}
F
n
+
2
{\displaystyle F_{n+2}}
1
+
1
+
.
.
.
+
1
{\displaystyle 1+1+...+1}
n
+
1
{\displaystyle n+1}
F
n
+
2
{\displaystyle F_{n+2}}
若第1个被加数是2,有
F
n
{\displaystyle F_{n}}
n
−
1
{\displaystyle n-1}
若第2个被加数是2、第1个被加数是1,有
F
n
−
1
{\displaystyle F_{n-1}}
n
−
2
{\displaystyle n-2}
重复以上动作。
若第
n
+
1
{\displaystyle n+1}
F
0
{\displaystyle F_{0}}
若该数式包含2为被加数,2的首次出现位置必然在第1和
n
+
1
{\displaystyle n+1}
F
n
+
F
n
−
1
+
.
.
.
+
F
0
{\displaystyle F_{n}+F_{n-1}+...+F_{0}}
F
1
+
2
F
2
+
3
F
3
+
.
.
.
+
n
F
n
=
n
F
n
+
2
−
F
n
+
3
+
2
{\displaystyle F_{1}+2F_{2}+3F_{3}+...+nF_{n}=nF_{n+2}-F_{n+3}+2}
F
1
+
F
3
+
F
5
+
.
.
.
+
F
2
n
−
1
=
F
2
n
{\displaystyle F_{1}+F_{3}+F_{5}+...+F_{2n-1}=F_{2n}}
F
2
+
F
4
+
F
6
+
.
.
.
+
F
2
n
=
F
2
n
+
1
−
1
{\displaystyle F_{2}+F_{4}+F_{6}+...+F_{2n}=F_{2n+1}-1}
F
1
2
+
F
2
2
+
F
3
2
+
.
.
.
+
F
n
2
=
F
n
F
n
+
1
{\displaystyle {F_{1}}^{2}+{F_{2}}^{2}+{F_{3}}^{2}+...+{F_{n}}^{2}=F_{n}F_{n+1}}
F
n
F
m
−
k
−
F
m
F
n
−
k
=
(
−
1
)
n
−
k
F
m
−
n
F
k
{\displaystyle F_{n}F_{m-k}-F_{m}F_{n-k}=(-1)^{n-k}F_{m-n}F_{k}}
m
,
n
,
k
{\displaystyle m,n,k}
F
{\displaystyle F}
[ 注 2] 特别地,当
n
=
m
−
k
{\displaystyle n=m-k}
F
n
2
−
F
n
+
k
F
n
−
k
=
(
−
1
)
n
−
k
F
k
2
{\displaystyle {F_{n}}^{2}-F_{n+k}F_{n-k}=(-1)^{n-k}{F_{k}}^{2}}
更特别地,当
k
=
1
{\displaystyle k=1}
k
=
−
1
{\displaystyle k=-1}
F
n
2
−
F
n
−
1
F
n
+
1
=
(
−
1
)
n
−
1
{\displaystyle {F_{n}}^{2}-F_{n-1}F_{n+1}=(-1)^{n-1}}
另一方面,当
(
m
,
n
,
k
)
=
(
n
+
1
,
n
,
−
2
)
{\displaystyle (m,n,k)=(n+1,n,-2)}
F
n
F
n
+
3
−
F
n
+
1
F
n
+
2
=
(
−
1
)
n
+
1
{\displaystyle F_{n}F_{n+3}-F_{n+1}F_{n+2}=(-1)^{n+1}}
[ 注 3]
φ
n
=
F
n
−
1
+
φ
F
n
{\displaystyle \varphi ^{n}=F_{n-1}+\varphi F_{n}}
(
1
−
φ
)
n
=
F
n
+
1
−
φ
F
n
{\displaystyle (1-\varphi )^{n}=F_{n+1}-\varphi F_{n}}
φ
{\displaystyle \varphi }
黄金比例
1
+
5
2
{\displaystyle {\frac {1+{\sqrt {5}}}{2}}}
n
{\displaystyle n}
[ 注 1] 借由上述公式,又可推得以下恒等式[ 注 4]
F
n
{\displaystyle F_{n}}
F
m
{\displaystyle F_{m}}
n
{\displaystyle n}
m
{\displaystyle m}
n
≧
3
{\displaystyle n\geqq 3}
gcd
(
F
m
,
F
n
)
=
F
gcd
(
m
,
n
)
{\displaystyle \gcd(F_{m},F_{n})=F_{\gcd(m,n)}}
任意连续三个菲波那契数两两互素 ,亦即,对于每一个
n
{\displaystyle n}
g
c
d
(
F
n
,
F
n
+
1
)
=
g
c
d
(
F
n
,
F
n
+
2
)
=
g
c
d
(
F
n
+
1
,
F
n
+
2
)
=
1
{\displaystyle \mathrm {gcd} (F_{n},F_{n+1})=\mathrm {gcd} (F_{n},F_{n+2})=\mathrm {gcd} (F_{n+1},F_{n+2})=1}
在斐波那契数列中,有素数 :[ 12]
截至2015年,已知最大的斐波那契素数是第104911个斐波那契数,一共有21925个十进制位。不过,人们仍不知道是不是有无限个斐波那契素数。[ 13]
如§ 公约数和整除关系 所述,
F
k
n
{\displaystyle F_{kn}}
F
n
{\displaystyle F_{n}}
F
4
=
3
{\displaystyle F_{4}=3}
任意长 合数 ,斐氏数列中亦能找到连续任意多项全为合数。
大于
F
6
=
8
{\displaystyle F_{6}=8}
[ 14]
斐波那契数列中,只有3个平方数 :0 、1 、144 。[ 15] [ 16] 派特·奥蒂洛 [ 17] [ 18]
1、3、21、55为仅有的斐氏三角形数 。Vern Hoggatt [ 19]
斐波那契数不能为完全数 。[ 20] 多重完全数 [ 21] [ 22]
斐波那西数列是斐波那西n步数列 步数为2的特殊情况,也和卢卡斯数 列有关。
F
n
L
n
=
F
2
n
{\displaystyle F_{n}L_{n}=F_{2n}}
反费波那西数列的递归公式如下:
G
n
+
2
=
G
n
−
G
n
+
1
{\displaystyle G_{n+2}=G_{n}-G_{n+1}}
如果它以1,-1开始,之后的数是:1,-1,2,-3,5,-8, ...
即是
F
2
n
+
1
=
G
2
n
+
1
=
F
−
(
2
n
+
1
)
,
F
2
n
=
−
G
2
n
=
−
F
−
2
n
{\displaystyle F_{2n+1}=G_{2n+1}=F_{-(2n+1)},F_{2n}=-G_{2n}=-F_{-2n}}
亦可写成
F
m
=
(
−
1
)
m
+
1
G
m
=
(
−
1
)
m
+
1
F
−
m
{\displaystyle F_{m}=(-1)^{m+1}G_{m}=(-1)^{m+1}F_{-m}}
m
{\displaystyle m}
反费波那西数列两项之间的比会趋近
−
1
φ
≈
−
0.618
{\displaystyle -{\frac {1}{\varphi }}\approx -0.618}
费波那西数列可以用一个接一个的正方形来表现,巴都万数列 则是用一个接一个的等边三角形来表现,它有
P
n
=
P
n
−
2
+
P
n
−
3
{\displaystyle P_{n}=P_{n-2}+P_{n-3}}
佩尔数列 的递归公式为
P
n
=
2
P
n
−
1
+
P
n
−
2
{\displaystyle P_{n}=2P_{n-1}+P_{n-2}}
1970年,尤里·马季亚谢维奇 指出了偶角标的斐波那契函数
y
=
F
2
x
{\displaystyle y=F_{2x}}
正是满足Julia Robison假设的丢番图函数 ,因而证明了希尔伯特第十问题 是不可解的。
高为6的斐波那契树。平衡因子 以绿色标记,节点的高度则为红色。最左一条路径上的键值全为斐氏数。
KNUTH, D. E. 1997. The Art of Computer ProgrammingArt of Computer Programming, Volume 1: Fundamental Algorithms, Third Edition. Addison-Wesley. Chapter 1.2.8.Arakelian, Hrant (2014). Mathematics and History of the Golden Section . Logos, 404 p. ISBN 978-5-98704-663-0 , (rus.)
克里福德A皮科夫.数学之恋.湖南科技出版社.
Brousseau, A. Fibonacci Statistics in Conifers. Fibonacci Quarterly
李晨滔、冯劲敏. 費氏數列的性質整理 (PDF) . 桃园县立大园国际高中. [2018-01-28 ] . (原始内容存档 (PDF) 于2019-06-25). Honsberger, Ross. Mathematical Gems III. AMS Dolciani Mathematical Expositions. 1985, (9): 133. ISBN 978-0-88385-318-4 JOHN H. E. COHN. Square Fibonacci Numbers, Etc. . Bedford College, University of London, London, N.W.1. [2019-05-12 ] . (原始内容 存档于2012-06-30). Theorem 3. If Fn = x2 , then n = 0, ±1, 2 or 12. Pethő, Attila. Diophantine properties of linear recursive sequences II. Acta Mathematica Academiae Paedagogicae Nyíregyháziensis. 2001, 17 : 81–96. MR 1887650 Freyd, Peter; Brown, Kevin S. Problems and Solutions: Solutions: E3410. The American Mathematical Monthly. 1993, 99 (3): 278–79. JSTOR 2325076 doi:10.2307/2325076 Adelson-Velsky, Georgy; Landis, Evgenii. An algorithm for the organization of information. Proceedings of the USSR Academy of Sciences 146 : 263–266 (俄语) . Myron J. Ricci 的英文翻译 (页面存档备份 ,存于互联网档案馆 )载于 Soviet Mathematics - Doklady , 3:1259–1263, 1962. 
![{\displaystyle a_{n}={\frac {\sqrt {5}}{5}}\cdot \left[\left({\frac {1+{\sqrt {5}}}{2}}\right)^{n}-\left({\frac {1-{\sqrt {5}}}{2}}\right)^{n}\right]}](http://wikimedia.org/api/rest_v1/media/math/render/svg/bdd45861380dd60d182655318702aea70439dff8)
![{\displaystyle F_{n}={\frac {1}{\sqrt {5}}}[\varphi ^{n}-(1-\varphi )^{n}]}](http://wikimedia.org/api/rest_v1/media/math/render/svg/bee558cfcd137ef42e1682ffbde748dbaa9049b9)
![{\displaystyle {\frac {1}{\sqrt {5}}}[\varphi ^{0}-(1-\varphi )^{0}]={\frac {1}{\sqrt {5}}}[1-1]=0=F_{0}}](http://wikimedia.org/api/rest_v1/media/math/render/svg/2b1b701622c8d471397b1b0aa8a0e5e843d911a7)
![{\displaystyle {\frac {1}{\sqrt {5}}}[\varphi ^{1}-(1-\varphi )^{1}]={\frac {1}{\sqrt {5}}}[\varphi -1+\varphi ]={\frac {1}{\sqrt {5}}}[2\varphi -1]={\frac {1}{\sqrt {5}}}\times {\sqrt {5}}=1=F_{1}}](http://wikimedia.org/api/rest_v1/media/math/render/svg/cac8a776619505f21da34fc5732592f34560e780)
![{\displaystyle F_{k}={\frac {1}{\sqrt {5}}}[\varphi ^{k}-(1-\varphi )^{k}]}](http://wikimedia.org/api/rest_v1/media/math/render/svg/824eaa5312dbcdc7598e2e17597a3abb0afe787e)
![{\displaystyle F_{k+1}={\frac {1}{\sqrt {5}}}[\varphi ^{k+1}-(1-\varphi )^{k+1}]}](http://wikimedia.org/api/rest_v1/media/math/render/svg/7c5a3f0a6cd2d150a82df2e79fe1d4c7a84fb338)
![{\displaystyle {\begin{aligned}F_{k+2}&=F_{k+1}+F_{k}\\&={\frac {1}{\sqrt {5}}}[\varphi ^{k+1}-(1-\varphi )^{k+1}]+{\frac {1}{\sqrt {5}}}[\varphi ^{k}-(1-\varphi )^{k}]\\&={\frac {1}{\sqrt {5}}}[\varphi ^{k+1}+\varphi ^{k}-(1-\varphi )^{k+1}-(1-\varphi )^{k}]\\&={\frac {1}{\sqrt {5}}}\left\{\varphi ^{k}({\color {brown}\varphi +1})-(1-\varphi )^{k}[{\color {green}(1-\varphi )+1}]\right\}\\&={\frac {1}{\sqrt {5}}}\left\{\varphi ^{k}({\color {brown}\varphi ^{2}})-(1-\varphi )^{k}[{\color {green}(1-\varphi )^{2}}]\right\}\\&={\frac {1}{\sqrt {5}}}\left\{\varphi ^{k+2}-(1-\varphi )^{k+2}\right\}\\\end{aligned}}}](http://wikimedia.org/api/rest_v1/media/math/render/svg/1e19a652bec35ae600135d7f28dc6e740618fcd9)
![{\displaystyle {\frac {1}{\sqrt {5}}}[{\color {brown}\varphi ^{-1}}-{\color {green}(1-\varphi )^{-1}}]={\frac {1}{\sqrt {5}}}[({\color {brown}\varphi -1})-({\color {green}-\varphi })]={\frac {1}{\sqrt {5}}}[2\varphi -1]={\frac {1}{\sqrt {5}}}\times {\sqrt {5}}=1=F_{-1}}](http://wikimedia.org/api/rest_v1/media/math/render/svg/067dc5b026bec6465ecce134b5d2bc1c2e19614a)
![{\displaystyle F_{-k}={\frac {1}{\sqrt {5}}}[\varphi ^{-k}-(1-\varphi )^{-k}]}](http://wikimedia.org/api/rest_v1/media/math/render/svg/8e6bb7975c8f8eb405b63222b0eacfb5d1ef0261)
![{\displaystyle F_{-k-1}={\frac {1}{\sqrt {5}}}[\varphi ^{-k-1}-(1-\varphi )^{-k-1}]}](http://wikimedia.org/api/rest_v1/media/math/render/svg/e3eb17ec8fbde65ce2b6bd0381b1893e41c7c6da)
![{\displaystyle {\begin{aligned}F_{-k-2}&=F_{-k}-F_{-k-1}\\&={\frac {1}{\sqrt {5}}}[\varphi ^{-k}-(1-\varphi )^{-k}]-{\frac {1}{\sqrt {5}}}[\varphi ^{-k-1}-(1-\varphi )^{-k-1}]\\&={\frac {1}{\sqrt {5}}}[\varphi ^{-k}-\varphi ^{-k-1}-(1-\varphi )^{-k}+(1-\varphi )^{-k-1}]\\&={\frac {1}{\sqrt {5}}}\left\{\varphi ^{-k-1}({\color {brown}\varphi -1})-(1-\varphi )^{-k-1}[{\color {green}(1-\varphi )-1}]\right\}\\&={\frac {1}{\sqrt {5}}}\left\{\varphi ^{-k-1}({\color {brown}\varphi ^{-1}})-(1-\varphi )^{-k-1}[{\color {green}(1-\varphi )^{-1}}]\right\}\\&={\frac {1}{\sqrt {5}}}\left\{\varphi ^{-k-2}-(1-\varphi )^{-k-2}\right\}\\\end{aligned}}}](http://wikimedia.org/api/rest_v1/media/math/render/svg/f8c2dfd1c8ad510846bb8e2412fe41d99984f141)
![{\displaystyle {J_{n+1} \choose A_{n+1}}=\lambda ^{n}\cdot \left[{\frac {1}{\sqrt {5}}}\cdot {\begin{pmatrix}1\\{\frac {1}{2}}(1+{\sqrt {5}})\end{pmatrix}}-{\frac {1}{\sqrt {5}}}\cdot {\begin{pmatrix}1\\{\frac {1}{2}}(1-{\sqrt {5}})\end{pmatrix}}\right]}](http://wikimedia.org/api/rest_v1/media/math/render/svg/bc133beb4b93512f07a7d4137d65f3370ef034b0)
![{\displaystyle A_{n+1}={\frac {1}{\sqrt {5}}}\cdot \left\{\left[{\frac {1}{2}}\left(1+{\sqrt {5}}\right)\right]^{n+1}-\left[{\frac {1}{2}}(1-{\sqrt {5}})\right]^{n+1}\right\}}](http://wikimedia.org/api/rest_v1/media/math/render/svg/2a5d474227a68a4e3da154e737496903e5f3ce03)
![{\displaystyle {\begin{aligned}F_{n}&={\frac {1}{\sqrt {5}}}[\varphi ^{n}-(1-\varphi )^{n}]\\&={\frac {1}{\sqrt {5}}}\left[({\frac {1+{\sqrt {5}}}{2}})^{n}-({\frac {1-{\sqrt {5}}}{2}})^{n}\right]\\\end{aligned}}}](http://wikimedia.org/api/rest_v1/media/math/render/svg/cb84ca1bfe8f1bdc851d380bee094e82b93605ba)
![{\displaystyle F_{n}\approx {\frac {1}{\sqrt {5}}}\varphi ^{n}={\frac {1}{\sqrt {5}}}\cdot \left[{\frac {1}{2}}\left(1+{\sqrt {5}}\right)\right]^{n}\approx 0.4472135955\cdot 1.61803398875^{n}}](http://wikimedia.org/api/rest_v1/media/math/render/svg/50053dc83435d2c5ae69ad1ad31e0f1caf5cf4a7)
![{\displaystyle F_{-n}\approx -{\frac {1}{\sqrt {5}}}(1-\varphi )^{-n}=-{\frac {1}{\sqrt {5}}}\cdot \left[{\frac {1}{2}}\left(1-{\sqrt {5}}\right)\right]^{-n}\approx -0.4472135955\cdot (-0.61803398875)^{-n}}](http://wikimedia.org/api/rest_v1/media/math/render/svg/fd72835a21743b30d3cbb877616c0951db09ee0a)
![{\displaystyle F_{n}={\frac {1}{\sqrt {5}}}\left[\left({\frac {1+{\sqrt {5}}}{2}}\right)^{n}-\left({\frac {1-{\sqrt {5}}}{2}}\right)^{n}\right]={\varphi ^{n} \over {\sqrt {5}}}-{(1-\varphi )^{n} \over {\sqrt {5}}}}](http://wikimedia.org/api/rest_v1/media/math/render/svg/79a3d146bd82cde5406b4eb878d95de2e3c18a32)
![{\displaystyle (-1)^{m}=[\varphi (1-\varphi )]^{m}=\varphi ^{m}(1-\varphi )^{m}}](http://wikimedia.org/api/rest_v1/media/math/render/svg/615a16953f76ce8ec3f3b1dd0201f78a946c5b4b)
![{\displaystyle {\begin{aligned}(-1)^{m+1}F_{-m}&=(-1)^{m+1}\times {\frac {1}{\sqrt {5}}}[\varphi ^{-m}-(1-\varphi )^{-m}]\\&=(-1)\times {\color {brown}(-1)^{m}}\times {\frac {1}{\sqrt {5}}}[\varphi ^{-m}-(1-\varphi )^{-m}]\\&=(-1)\times {\color {brown}\varphi ^{m}(1-\varphi )^{m}}\times {\frac {1}{\sqrt {5}}}[\varphi ^{-m}-(1-\varphi )^{-m}]\\&=(-1)\times {\frac {1}{\sqrt {5}}}[\varphi ^{-m+m}(1-\varphi )^{m}-(1-\varphi )^{-m+m}\varphi ^{m}]\\&=(-1)\times {\frac {1}{\sqrt {5}}}[(1-\varphi )^{m}-\varphi ^{m}]\\&={\frac {1}{\sqrt {5}}}[\varphi ^{m}-(1-\varphi )^{m}]\\&=F_{m}\\\end{aligned}}}](http://wikimedia.org/api/rest_v1/media/math/render/svg/e101c296295c3ed0405ddadf099c6c668f2e12a5)
