複平面 中一矩形區域之黎曼ζ函數
ζ
(
z
)
{\displaystyle \zeta (z)}
Matplotlib 程式繪圖產生,使用到定義域着色 方法。[ 1] 黎曼澤塔函數 ,寫作ζ(s ) 複數 s Re(s ) > 1
ζ
(
s
)
=
∑
n
=
1
∞
1
n
s
{\displaystyle \zeta (s)=\sum _{n=1}^{\infty }{\frac {1}{n^{s}}}}
它亦可以用積分定義:
ζ
(
s
)
=
1
Γ
(
s
)
∫
0
∞
x
s
−
1
e
x
−
1
d
x
{\displaystyle \zeta (s)={\frac {1}{\Gamma (s)}}\int _{0}^{\infty }{\frac {x^{s-1}}{e^{x}-1}}\mathrm {d} x}
在區域 {s : Re(s ) > 1} 無窮級數 收斂並為一全純函數 。歐拉 在1740年考慮過 s 柴比雪夫 拓展到 s > 1[ 2] 波恩哈德·黎曼 認識到:ζ函數可以通過解析延拓 ,把定義域 擴展到幾乎整個複數域上的全純函數 ζ(s ) 黎曼猜想 所研究的函數。
雖然黎曼的ζ函數被數學家認為主要和「最純」的數學領域數論 相關,它也出現在應用統計學 (參看齊夫定律 和齊夫-曼德爾布羅特定律 物理 ,以及調音 的數學理論中。
ζ函數最早出現於1350年左右,尼克爾·奧里斯姆 發現了調和級數 發散,即:
ζ
(
1
)
=
1
+
1
2
+
1
3
+
1
4
+
.
.
.
→
∞
{\displaystyle \zeta (1)=1+{\frac {1}{2}}+{\frac {1}{3}}+{\frac {1}{4}}+...\to \infty }
奧里斯姆對調和級數發散的「證明」
ζ
(
1
)
=
1
+
1
2
+
1
3
+
1
4
+
1
5
+
1
6
+
1
7
+
1
8
+
.
.
.
=
1
+
1
2
+
(
1
3
+
1
4
)
+
(
1
5
+
1
6
+
1
7
+
1
8
)
+
.
.
.
≥
1
+
1
2
+
(
1
4
+
1
4
)
+
(
1
8
+
1
8
+
1
8
+
1
8
)
+
.
.
.
=
1
+
1
2
+
1
2
+
1
2
+
.
.
.
→
∞
{\displaystyle {\begin{aligned}\zeta (1)&=1+{\frac {1}{2}}+{\frac {1}{3}}+{\frac {1}{4}}+{\frac {1}{5}}+{\frac {1}{6}}+{\frac {1}{7}}+{\frac {1}{8}}+...\\&=1+{\frac {1}{2}}+({\frac {1}{3}}+{\frac {1}{4}})+({\frac {1}{5}}+{\frac {1}{6}}+{\frac {1}{7}}+{\frac {1}{8}})+...\\&\geq 1+{\frac {1}{2}}+({\frac {1}{4}}+{\frac {1}{4}})+({\frac {1}{8}}+{\frac {1}{8}}+{\frac {1}{8}}+{\frac {1}{8}})+...\\&=1+{\frac {1}{2}}+{\frac {1}{2}}+{\frac {1}{2}}+...\\&\to \infty \\\end{aligned}}}
第n個調和數(藍點)與Log(n)+γ(紅線)的圖像 之後的一次進展來自萊昂哈德·歐拉 ,他給出了調和級數呈對數發散。
歐拉對調和級數發散速度的證明[ 3]
為了求出調和級數的部分和,使用歐拉-麥克勞林求和公式 (當然,亦可使用阿貝爾求和公式 ):
∑
y
<
n
≤
x
f
(
n
)
=
∫
y
x
f
(
t
)
d
t
+
∫
y
x
(
t
−
⌊
t
⌋
)
f
′
(
t
)
d
t
+
f
(
x
)
(
⌊
x
⌋
−
x
)
−
f
(
y
)
(
⌊
y
⌋
−
y
)
{\displaystyle \sum _{y<n\leq x}f(n)=\int _{y}^{x}f(t)\,\mathrm {d} t+\int _{y}^{x}(t-\left\lfloor t\right\rfloor )f'(t)\,\mathrm {d} t+f(x)(\left\lfloor x\right\rfloor -x)-f(y)(\left\lfloor y\right\rfloor -y)}
∑
n
≤
x
1
n
=
1
+
∫
1
x
1
t
d
t
−
∫
1
x
(
t
−
⌊
t
⌋
)
t
2
d
t
+
⌊
x
⌋
−
x
x
=
1
+
ln
x
−
∫
1
x
(
t
−
⌊
t
⌋
)
t
2
d
t
+
O
(
1
x
)
=
1
+
ln
x
−
∫
1
∞
(
t
−
⌊
t
⌋
)
t
2
d
t
+
∫
x
∞
(
t
−
⌊
t
⌋
)
t
2
d
t
+
O
(
1
x
)
=
ln
x
+
1
−
∫
1
∞
(
t
−
⌊
t
⌋
)
t
2
d
t
+
∫
x
∞
{
t
}
t
2
d
t
+
O
(
1
x
)
{\displaystyle {\begin{aligned}\sum _{n\leq x}{\frac {1}{n}}&=1+\int _{1}^{x}{\frac {1}{t}}\,\mathrm {d} t-\int _{1}^{x}{\frac {(t-\left\lfloor t\right\rfloor )}{t^{2}}}\,\mathrm {d} t+{\frac {\left\lfloor x\right\rfloor -x}{x}}\\&=1+\ln x-\int _{1}^{x}{\frac {(t-\left\lfloor t\right\rfloor )}{t^{2}}}\,\mathrm {d} t+\mathrm {O} \left({\frac {1}{x}}\right)\\&=1+\ln x-\int _{1}^{\infty }{\frac {(t-\left\lfloor t\right\rfloor )}{t^{2}}}\,\mathrm {d} t+\int _{x}^{\infty }{\frac {(t-\left\lfloor t\right\rfloor )}{t^{2}}}\,\mathrm {d} t+\mathrm {O} \left({\frac {1}{x}}\right)\\&=\ln x+1-\int _{1}^{\infty }{\frac {(t-\left\lfloor t\right\rfloor )}{t^{2}}}\,\mathrm {d} t+\int _{x}^{\infty }{\frac {\left\{t\right\}}{t^{2}}}\,\mathrm {d} t+\mathrm {O} \left({\frac {1}{x}}\right)\\\end{aligned}}}
1
−
∫
1
∞
(
t
−
⌊
t
⌋
)
t
2
d
t
{\displaystyle 1-\int _{1}^{\infty }{\frac {(t-\left\lfloor t\right\rfloor )}{t^{2}}}\,\mathrm {d} t}
歐拉-馬斯刻若尼常數 γ
再考慮剩下的一個積分,也就是
∫
x
∞
{
t
}
t
2
d
t
{\displaystyle \int _{x}^{\infty }{\frac {\left\{t\right\}}{t^{2}}}\,\mathrm {d} t}
{
t
}
≤
1
{\displaystyle \left\{t\right\}\leq 1}
∫
x
∞
{
t
}
t
2
d
t
≤
∫
x
∞
1
t
2
d
t
=
1
x
{\displaystyle \int _{x}^{\infty }{\frac {\left\{t\right\}}{t^{2}}}\,\mathrm {d} t\leq \int _{x}^{\infty }{\frac {1}{t^{2}}}\,\mathrm {d} t={\frac {1}{x}}}
∑
n
≤
x
1
n
=
ln
x
+
γ
+
O
(
1
x
)
{\displaystyle \sum _{n\leq x}{\frac {1}{n}}=\ln x+\gamma +\mathrm {O} ({\frac {1}{x}})}
除此之外,他還在1735年給出了巴塞爾問題 的解答,得到
ζ
(
2
)
=
π
2
6
{\displaystyle \zeta (2)={\frac {\pi ^{2}}{6}}}
巴塞爾問題#歐拉的錯誤證明 中看到,然而那是他的第一個證明,因而廣為人知。[ 4]
歐拉對
ζ
(
2
)
=
π
2
6
{\displaystyle {\begin{smallmatrix}\zeta (2)={\frac {\pi ^{2}}{6}}\end{smallmatrix}}}
下面將寫出歐拉對上式的證明中缺失的嚴格論證的部分,即對連乘積公式的證明部分,而不涉及最終的系數比較
首先考慮當n為奇數時,將
z
n
−
a
n
{\displaystyle z^{n}-a^{n}}
a
,
a
e
2
π
i
1
n
,
a
e
2
π
i
2
n
,
.
.
.
,
a
e
2
π
i
n
−
1
n
{\displaystyle a,ae^{2\pi i{\frac {1}{n}}},ae^{2\pi i{\frac {2}{n}}},...,ae^{2\pi i{\frac {n-1}{n}}}}
由於n為奇數,所以可以將除了z=a外的其他根及其共軛一一配對,即 將共軛的根一一配對
a
e
2
π
i
k
n
,
a
e
2
π
i
n
−
k
n
=
a
e
−
2
π
i
k
n
{\displaystyle ae^{2\pi i{\frac {k}{n}}},ae^{2\pi i{\frac {n-k}{n}}}=ae^{-2\pi i{\frac {k}{n}}}}
韋達定理 可以還原出每對根的最小多項式:
x
1
+
x
2
=
−
a
1
a
0
=
a
e
2
π
i
k
n
+
a
e
−
2
π
i
k
n
=
cos
(
2
π
k
n
)
+
cos
(
−
2
π
k
n
)
=
2
cos
(
2
π
k
n
)
{\displaystyle x_{1}+x_{2}=-{\frac {a_{1}}{a_{0}}}=ae^{2\pi i{\frac {k}{n}}}+ae^{-2\pi i{\frac {k}{n}}}=\cos \left(2\pi {\frac {k}{n}}\right)+\cos \left(-2\pi {\frac {k}{n}}\right)=2\cos \left({\frac {2\pi k}{n}}\right)}
x
1
x
2
=
a
2
a
0
=
a
e
2
π
i
k
n
a
e
−
2
π
i
k
n
=
a
2
{\displaystyle x_{1}x_{2}={\frac {a_{2}}{a_{0}}}=ae^{2\pi i{\frac {k}{n}}}ae^{-2\pi i{\frac {k}{n}}}=a^{2}}
a
0
=
1
{\displaystyle a_{0}=1}
a
0
z
2
+
a
1
z
+
a
2
=
z
2
−
2
cos
(
2
π
k
n
)
z
+
a
2
{\displaystyle a_{0}z^{2}+a_{1}z+a_{2}=z^{2}-2\cos \left({\tfrac {2\pi k}{n}}\right)z+a^{2}}
n
−
1
2
{\displaystyle {\tfrac {n-1}{2}}}
z
−
a
{\displaystyle z-a}
z
n
−
a
n
=
(
z
−
a
)
∏
k
=
1
n
−
1
2
(
z
2
−
2
a
z
cos
2
k
π
n
+
a
2
)
{\displaystyle z^{n}-a^{n}=(z-a)\prod _{k=1}^{\frac {n-1}{2}}\left(z^{2}-2az\cos {\frac {2k\pi }{n}}+a^{2}\right)}
z
=
1
+
x
N
,
a
=
1
−
x
N
,
N
=
n
{\displaystyle z=1+{\frac {x}{N}},a=1-{\frac {x}{N}},N=n}
(
1
+
x
N
)
N
−
(
1
−
x
N
)
N
=
[
(
1
+
x
N
)
−
(
1
−
x
N
)
]
∏
k
=
1
N
−
1
2
[
(
1
+
x
N
)
2
−
2
(
1
+
x
N
)
(
1
−
x
N
)
cos
(
2
π
k
N
)
+
(
1
−
x
N
)
2
]
=
2
x
N
∏
k
=
1
N
−
1
2
[
2
+
2
x
2
N
2
−
2
(
1
−
x
2
N
2
)
cos
(
2
π
k
N
)
]
=
2
x
N
∏
k
=
1
N
−
1
2
[
2
+
2
x
2
N
2
−
2
cos
(
2
π
k
N
)
+
2
x
2
N
2
cos
(
2
π
k
N
)
]
=
4
x
N
∏
k
=
1
N
−
1
2
(
(
1
−
cos
(
2
π
k
N
)
)
+
(
1
+
cos
(
2
π
k
N
)
)
x
2
N
2
)
=
4
x
N
∏
k
=
1
N
−
1
2
{
[
1
−
cos
(
2
π
k
N
)
]
[
1
+
1
+
cos
(
2
π
k
N
)
1
−
cos
(
2
π
k
N
)
x
2
N
2
]
}
{\displaystyle {\begin{aligned}\left(1+{\frac {x}{N}}\right)^{N}-\left(1-{\frac {x}{N}}\right)^{N}&=\left[\left(1+{\frac {x}{N}}\right)-\left(1-{\frac {x}{N}}\right)\right]\prod _{k=1}^{\frac {N-1}{2}}\left[\left(1+{\frac {x}{N}}\right)^{2}-2\left(1+{\frac {x}{N}}\right)\left(1-{\frac {x}{N}}\right)\cos \left({\frac {2\pi k}{N}}\right)+\left(1-{\frac {x}{N}}\right)^{2}\right]\\&={\frac {2x}{N}}\prod _{k=1}^{\frac {N-1}{2}}\left[2+{\frac {2x^{2}}{N^{2}}}-2\left(1-{\frac {x^{2}}{N^{2}}}\right)\cos \left({\frac {2\pi k}{N}}\right)\right]\\&={\frac {2x}{N}}\prod _{k=1}^{\frac {N-1}{2}}\left[{2+{\frac {2{x^{2}}}{N^{2}}}-2\cos \left({\frac {2\pi k}{N}}\right)+{\frac {2{x^{2}}}{N^{2}}}\cos({\frac {2\pi k}{N}})}\right]\\&={\frac {4x}{N}}\prod _{k=1}^{\frac {N-1}{2}}\left({(1-\cos({\frac {2\pi k}{N}}))+(1+\cos({\frac {2\pi k}{N}})){\frac {x^{2}}{N^{2}}}}\right)\\&={\frac {4x}{N}}\prod _{k=1}^{\frac {N-1}{2}}\left\{\left[1-\cos \left({\frac {2\pi k}{N}}\right)\right]\left[{1+{\frac {1+\cos \left({\frac {2\pi k}{N}}\right)}{1-\cos({\frac {2\pi k}{N}})}}{\frac {x^{2}}{N^{2}}}}\right]\right\}\\\end{aligned}}}
4
N
∏
k
=
1
N
−
1
2
(
1
−
cos
(
2
π
k
N
)
)
{\displaystyle {\frac {4}{N}}\prod _{k=1}^{\frac {N-1}{2}}(1-\cos({\frac {2\pi k}{N}}))}
C
(
N
)
{\displaystyle C(N)}
(
1
+
x
N
)
N
−
(
1
−
x
N
)
N
=
C
(
N
)
x
∏
k
=
1
N
−
1
2
(
1
+
1
+
cos
(
2
π
k
N
)
1
−
cos
(
2
π
k
N
)
x
2
N
2
)
{\displaystyle \left(1+{\frac {x}{N}}\right)^{N}-\left(1-{\frac {x}{N}}\right)^{N}={C(N)}x\prod _{k=1}^{\frac {N-1}{2}}\left({1+{\frac {1+\cos({\frac {2\pi k}{N}})}{1-\cos({\frac {2\pi k}{N}})}}{\frac {x^{2}}{N^{2}}}}\right)}
(
1
+
x
N
)
N
=
∑
k
=
0
N
C
N
k
x
k
N
k
{\displaystyle {(1+{\frac {x}{N}})^{N}}=\sum _{k=0}^{N}{C_{N}^{k}{\frac {x^{k}}{N^{k}}}}}
(
1
−
x
N
)
N
=
∑
k
=
0
N
(
−
1
)
k
C
N
k
x
k
N
k
{\displaystyle {(1-{\frac {x}{N}})^{N}}=\sum _{k=0}^{N}{{{(-1)}^{k}}C_{N}^{k}{\frac {x^{k}}{N^{k}}}}}
C
N
1
x
N
−
(
−
1
)
C
N
1
x
N
=
2
C
N
1
x
N
=
2
x
{\displaystyle C_{N}^{1}{\frac {x}{N}}-(-1)C_{N}^{1}{\frac {x}{N}}=2C_{N}^{1}{\frac {x}{N}}=2x}
C
(
N
)
=
2
{\displaystyle C(N)=2}
(
1
+
x
N
)
N
−
(
1
−
x
N
)
N
=
2
x
∏
k
=
1
N
−
1
2
(
1
+
1
+
cos
(
2
π
k
N
)
1
−
cos
(
2
π
k
N
)
x
2
N
2
)
{\displaystyle \left(1+{\frac {x}{N}}\right)^{N}-\left(1-{\frac {x}{N}}\right)^{N}=2x\prod _{k=1}^{\frac {N-1}{2}}\left({1+{\frac {1+\cos({\frac {2\pi k}{N}})}{1-\cos({\frac {2\pi k}{N}})}}{\frac {x^{2}}{N^{2}}}}\right)}
θ
=
2
π
k
N
{\displaystyle \theta ={\frac {2\pi k}{N}}}
cos
(
θ
)
=
1
−
θ
2
2
+
O
(
θ
3
)
{\displaystyle \cos(\theta )=1-{\frac {\theta ^{2}}{2}}+\mathrm {O} (\theta ^{3})}
(
1
+
x
N
)
N
−
(
1
−
x
N
)
N
=
2
x
∏
k
=
1
N
−
1
2
[
1
+
1
+
cos
(
2
π
k
N
)
1
−
cos
(
2
π
k
N
)
x
2
N
2
]
=
2
x
∏
k
=
1
N
−
1
2
{
1
+
1
+
[
1
−
θ
2
2
+
O
(
θ
3
)
]
1
−
[
1
−
θ
2
2
+
O
(
θ
3
)
]
x
2
N
2
}
=
2
x
∏
k
=
1
N
−
1
2
[
1
+
2
−
θ
2
2
+
O
(
θ
3
)
θ
2
2
+
O
(
θ
3
)
x
2
N
2
]
=
2
x
∏
k
=
1
N
−
1
2
(
1
+
(
4
−
θ
2
+
O
(
θ
3
)
)
x
2
(
θ
2
+
O
(
θ
3
)
)
N
2
)
=
2
x
∏
k
=
1
N
−
1
2
(
1
+
(
4
−
(
2
k
π
N
)
2
+
O
(
(
2
k
π
N
)
3
)
)
x
2
(
(
2
k
π
N
)
2
+
O
(
(
2
k
π
N
)
3
)
)
N
2
)
=
2
x
∏
k
=
1
N
−
1
2
(
1
+
(
4
−
(
2
k
π
N
)
2
+
O
(
(
2
k
π
N
)
3
)
)
x
2
(
2
k
π
)
2
+
O
(
(
2
k
π
)
3
N
)
)
{\displaystyle {\begin{aligned}\left(1+{\frac {x}{N}}\right)^{N}-\left(1-{\frac {x}{N}}\right)^{N}&=2x\prod _{k=1}^{\frac {N-1}{2}}\left[1+{\frac {1+\cos \left({\frac {2\pi k}{N}}\right)}{1-\cos \left({\frac {2\pi k}{N}}\right)}}{\frac {x^{2}}{N^{2}}}\right]\\&=2x\prod _{k=1}^{\frac {N-1}{2}}\left\{1+{\frac {1+\left[1-{\frac {\theta ^{2}}{2}}+\mathrm {O} \left(\theta ^{3}\right)\right]}{1-\left[1-{\frac {\theta ^{2}}{2}}+\mathrm {O} \left(\theta ^{3}\right)\right]}}{\frac {x^{2}}{N^{2}}}\right\}\\&=2x\prod _{k=1}^{\frac {N-1}{2}}\left[1+{\frac {2-{\frac {\theta ^{2}}{2}}+\mathrm {O} \left(\theta ^{3}\right)}{{\frac {\theta ^{2}}{2}}+\mathrm {O} \left(\theta ^{3}\right)}}{\frac {x^{2}}{N^{2}}}\right]\\&=2x\prod _{k=1}^{\frac {N-1}{2}}\left(1+{\frac {\left(4-\theta ^{2}+\mathrm {O} \left(\theta ^{3}\right)\right)x^{2}}{\left(\theta ^{2}+\mathrm {O} \left(\theta ^{3}\right)\right)N^{2}}}\right)\\&=2x\prod _{k=1}^{\frac {N-1}{2}}\left(1+{\frac {\left(4-\left({\frac {2k\pi }{N}}\right)^{2}+\mathrm {O} \left(\left({\frac {2k\pi }{N}}\right)^{3}\right)\right)x^{2}}{\left(\left({\frac {2k\pi }{N}}\right)^{2}+\mathrm {O} \left(\left({\frac {2k\pi }{N}}\right)^{3}\right)\right)N^{2}}}\right)\\&=2x\prod _{k=1}^{\frac {N-1}{2}}\left(1+{\frac {\left(4-\left({\frac {2k\pi }{N}}\right)^{2}+\mathrm {O} \left(\left({\frac {2k\pi }{N}}\right)^{3}\right)\right)x^{2}}{(2k\pi )^{2}+\mathrm {O} \left({\frac {(2k\pi )^{3}}{N}}\right)}}\right)\end{aligned}}}
lim
N
→
∞
(
1
+
x
N
)
N
−
(
1
−
x
N
)
N
=
e
x
−
e
−
x
{\displaystyle \lim _{N\to \infty }(1+{\frac {x}{N}})^{N}-(1-{\frac {x}{N}})^{N}=e^{x}-e^{-x}}
e
x
−
e
−
x
=
2
x
∏
k
=
1
∞
(
1
+
(
4
+
o
(
1
)
)
x
2
(
2
k
π
)
2
+
o
(
1
)
)
=
2
x
∏
k
=
1
∞
(
1
+
(
1
+
o
(
1
)
)
x
2
k
2
π
2
+
o
(
1
)
)
=
2
x
∏
k
=
1
∞
(
1
+
x
2
k
2
π
2
)
{\displaystyle {\begin{aligned}e^{x}-e^{-x}&=2x\prod _{k=1}^{\infty }\left({1+{\frac {(4+o(1)){x^{2}}}{{{(2k\pi )}^{2}}+o(1)}}}\right)\ \\&=2x\prod _{k=1}^{\infty }\left({1+{\frac {(1+o(1)){x^{2}}}{{k^{2}}{\pi ^{2}}+o(1)}}}\right)\ \\&=2x\prod _{k=1}^{\infty }\left({1+{\frac {x^{2}}{{k^{2}}{\pi ^{2}}}}}\right)\ \\\end{aligned}}}
e
x
−
e
−
x
=
−
∑
k
=
0
∞
(
−
x
)
k
−
x
k
k
!
{\displaystyle e^{x}-e^{-x}=-\sum _{k=0}^{\infty }{\frac {(-x)^{k}-x^{k}}{k!}}}
k
=
3
{\displaystyle k=3}
2
x
3
3
!
{\displaystyle {\frac {2x^{3}}{3!}}}
同時展開右式可得右式的三次項為
(
∑
k
=
1
∞
2
k
2
π
2
)
x
3
{\displaystyle \left(\sum _{k=1}^{\infty }{\frac {2}{k^{2}\pi ^{2}}}\right)x^{3}}
2
3
!
=
∑
k
=
1
∞
2
k
2
π
2
{\displaystyle {\frac {2}{3!}}=\sum _{k=1}^{\infty }{\frac {2}{k^{2}\pi ^{2}}}}
π
2
6
=
∑
k
=
1
∞
1
k
2
=
ζ
(
2
)
{\displaystyle {\frac {\pi ^{2}}{6}}=\sum _{k=1}^{\infty }{\frac {1}{k^{2}}}=\zeta \left(2\right)}
歐拉在1737年還發現了歐拉乘積公式 :
∑
n
=
1
∞
1
n
s
=
∏
p
(
1
−
1
p
s
)
−
1
{\displaystyle \sum _{n=1}^{\infty }{\frac {1}{n^{s}}}=\prod _{p}(1-{\frac {1}{p^{s}}})^{-1}}
證明黎曼ζ函數的歐拉乘積公式 中看到。
Re
(
s
)
>
1
{\displaystyle {\begin{smallmatrix}\operatorname {Re} (s)>1\end{smallmatrix}}}
ζ
(
s
)
>
0
{\displaystyle {\begin{smallmatrix}\zeta (s)>0\end{smallmatrix}}}
1749年,歐拉通過大膽的計算發現了(以下公式當中存在定義域謬誤,後由黎曼透過解析延拓証明以下公式只適用於 Re(s ) > 1 [ 5]
ζ
(
−
1
)
=
1
+
2
+
3
+
4
+
5
+
.
.
.
=
−
1
12
{\displaystyle \zeta (-1)=1+2+3+4+5+...=-{\frac {1}{12}}}
ζ
(
−
2
)
=
1
2
+
2
2
+
3
2
+
4
2
+
5
2
+
.
.
.
=
0
{\displaystyle \zeta (-2)=1^{2}+2^{2}+3^{2}+4^{2}+5^{2}+...=0}
ζ
(
−
3
)
=
1
3
+
2
3
+
3
3
+
4
3
+
5
3
+
.
.
.
=
1
120
{\displaystyle \zeta (-3)=1^{3}+2^{3}+3^{3}+4^{3}+5^{3}+...={\frac {1}{120}}}
波恩哈德·黎曼 對ζ解析延拓,用於質數的分佈理論將歐拉所做的一切牢牢地置于堅石之上的是黎曼,他在1859年的論文論小於給定數值的質數個數 [ 6]
第一積分表示:
ζ
(
s
)
=
1
Γ
(
s
)
∫
0
∞
x
s
−
1
e
x
−
1
d
x
{\displaystyle \zeta (s)={\frac {1}{\Gamma (s)}}\int _{0}^{\infty }{\frac {x^{s-1}}{e^{x}-1}}\,\mathrm {d} x}
完備化的ζ,即黎曼ξ函數 :
ξ
(
s
)
=
π
−
s
2
Γ
(
s
2
)
ζ
(
s
)
{\displaystyle \xi (s)=\pi ^{-{\frac {s}{2}}}\Gamma \left({\frac {s}{2}}\right)\zeta (s)}
ξ
(
s
)
=
ξ
(
1
−
s
)
{\displaystyle \xi (s)=\xi (1-s)}
第二積分表示:
φ
(
x
)
=
∑
n
=
1
∞
e
−
π
n
2
x
{\displaystyle \varphi (x)=\sum _{n=1}^{\infty }e^{-\pi n^{2}x}}
ξ
(
s
)
=
∫
0
∞
φ
(
x
)
x
s
2
−
1
d
x
{\displaystyle \xi (s)=\int _{0}^{\infty }\varphi (x)x^{{\frac {s}{2}}-1}\,\mathrm {d} x}
黎曼 - 馮·曼戈爾特公式
0
<
N
(
T
)
{\displaystyle {\begin{smallmatrix}0<\operatorname {N} (T)\end{smallmatrix}}}
N
(
T
)
=
T
2
π
log
T
2
π
−
T
2
π
+
O
(
log
T
)
{\displaystyle N(T)={\frac {T}{2\pi }}\log {\frac {T}{2\pi }}-{\frac {T}{2\pi }}+\mathrm {O} (\log T)}
黎曼猜想 :ζ函數的所有非平凡零點的實部非常有可能均為
1
2
{\displaystyle {\begin{smallmatrix}{\frac {1}{2}}\end{smallmatrix}}}
第三積分表示:
ζ
(
s
)
=
1
2
π
i
Γ
(
1
−
s
)
∮
γ
z
s
−
1
e
z
1
−
e
z
d
z
{\displaystyle \zeta (s)={\frac {1}{2\pi i}}\Gamma (1-s)\oint _{\gamma }{\frac {{z^{s-1}}{e^{z}}}{1-{e^{z}}}}\,\mathrm {d} z}
第三積分表示的圍道γ 黎曼-西格爾公式 :給出計算ξ函數的數值的方法零點的計算:計算了虛部介於0與100的所有零點的數值
質數的分佈公式:引入黎曼質數計數函數 ,給出了它與ζ函數的關係 ζ(1+it)的圖像,藍色為實部,黃色為虛部 1896年,雅克·阿達馬 與普森 幾乎同時地證明了
ζ
(
s
)
{\displaystyle {\begin{smallmatrix}\zeta (s)\end{smallmatrix}}}
Re
(
s
)
=
1
{\displaystyle {\begin{smallmatrix}\operatorname {Re} (s)=1\end{smallmatrix}}}
質數定理 的證明。
1900年,希爾伯特 在巴黎的第二屆國際數學家大會上作了題為《數學問題》的演講,提出了23道最重要的數學問題,黎曼假設在其中作為第8題出現。希爾伯特-波利亞猜想 ,具體時間及場合未知。
虛部介於0與T的零點數量(藍點)與黎曼-馮·曼格爾特公式(紅線)的圖像 1914年,哈那德·玻爾 和愛德蒙·蘭道 證明了玻爾-蘭道定理 :含有臨界線的任意帶狀區域都幾乎包含了ζ的所有非平凡零點,表明了臨界線為零點匯聚的「中心位置」。
1921年,哈代 和李特爾伍德 證明了存在常數T,使臨界線上虛部位於0與T之間的非平凡零點的數量至少為
K
T
{\displaystyle {\begin{smallmatrix}KT\end{smallmatrix}}}
1942年,阿特勒·塞爾伯格 更進一步,證明了存在常數T,使臨界線上虛部位於0與T之間的非平凡零點的數量至少為
K
T
log
T
{\displaystyle {\begin{smallmatrix}KT\log T\end{smallmatrix}}}
Re
(
s
)
=
1
2
{\displaystyle {\begin{smallmatrix}\operatorname {Re} (s)={\frac {1}{2}}\end{smallmatrix}}}
0
<
Re
(
s
)
<
1
{\displaystyle {\begin{smallmatrix}0<\operatorname {Re} (s)<1\end{smallmatrix}}}
對ζ函數解析延拓時使用的圍道 ζ函數原本定義在右半平面
Re
s
>
1
{\displaystyle {\begin{smallmatrix}\operatorname {Re} s>1\end{smallmatrix}}}
全純函數
ζ
(
s
)
=
∑
n
=
1
∞
1
n
s
=
1
Γ
(
s
)
∫
0
∞
x
s
−
1
e
x
−
1
d
x
{\displaystyle \zeta (s)=\sum _{n=1}^{\infty }{\frac {1}{n^{s}}}={\frac {1}{\Gamma (s)}}\int _{0}^{\infty }{\frac {x^{s-1}}{e^{x}-1}}\,\mathrm {d} x}
(
Re
s
>
1
)
{\displaystyle (\operatorname {Re} s>1)}
解析延拓後在全局具有積分表達式
ζ
(
s
)
=
1
2
π
i
Γ
(
1
−
s
)
∮
γ
z
s
−
1
e
z
1
−
e
z
d
z
{\displaystyle \zeta (s)={\frac {1}{2\pi i}}\Gamma (1-s)\oint _{\gamma }{\frac {{z^{s-1}}{e^{z}}}{1-{e^{z}}}}\,\mathrm {d} z}
滿足函數方程
ζ
(
1
−
s
)
=
2
(
2
π
)
−
s
Γ
(
s
)
cos
(
π
s
2
)
ζ
(
s
)
{\displaystyle \zeta (1-s)=2(2\pi )^{-s}\Gamma (s)\cos \left({\frac {\pi s}{2}}\right)\zeta (s)}
特別地,如果考慮正規化的ζ,即黎曼ξ函數
ξ
(
s
)
=
π
−
s
2
Γ
(
s
2
)
ζ
(
s
)
{\displaystyle \xi (s)=\pi ^{-{\frac {s}{2}}}\Gamma \left({\frac {s}{2}}\right)\zeta (s)}
那麼它滿足函數方程
ξ
(
s
)
=
ξ
(
1
−
s
)
{\displaystyle \xi (s)=\xi (1-s)}
黎曼ζ函數可看做是具有如下形式的級數的一個特例:
F
(
s
)
=
∑
n
=
1
∞
f
(
n
)
n
s
{\displaystyle \operatorname {F} (s)=\sum _{n=1}^{\infty }{\frac {f(n)}{n^{s}}}}
這種類型的級數被稱作狄利克雷級數 。當f為狄利克雷特徵 時,又稱作狄利克雷L函數 ,也有與黎曼猜想 相應的廣義黎曼猜想
為了方便對數論函數 作討論,此處引入狄利克雷卷積
f
∗
g
{\displaystyle {\begin{smallmatrix}f*g\end{smallmatrix}}}
(
f
∗
g
)
(
n
)
=
∑
pq
=
n
f
(
p
)
g
(
q
)
{\displaystyle (f*g)(n)=\sum _{{\text{pq}}=n}f(p)g(q)}
設
F
(
s
)
=
∑
n
=
1
∞
f
(
n
)
n
s
{\displaystyle \operatorname {F} (s)=\sum _{n=1}^{\infty }{\frac {f(n)}{n^{s}}}}
G
(
s
)
=
∑
n
=
1
∞
g
(
n
)
n
s
{\displaystyle \operatorname {G} (s)=\sum _{n=1}^{\infty }{\frac {g(n)}{n^{s}}}}
F
(
s
)
G
(
s
)
=
∑
n
=
1
∞
(
f
∗
g
)
(
n
)
n
s
{\displaystyle \operatorname {F} (s)\operatorname {G} (s)=\sum _{n=1}^{\infty }{\frac {(f*g)(n)}{n^{s}}}}
並不直覺?請看證明
事實上,
F
(
s
)
G
(
s
)
=
∑
n
=
1
∞
f
(
n
)
n
s
∑
m
=
1
∞
g
(
m
)
m
s
=
∑
n
=
1
∞
∑
m
=
1
∞
f
(
n
)
g
(
m
)
(
n
m
)
s
{\displaystyle {\begin{aligned}\operatorname {F} (s)\operatorname {G} (s)&=\sum _{n=1}^{\infty }{\frac {f(n)}{n^{s}}}\sum _{m=1}^{\infty }{\frac {g(m)}{m^{s}}}\\&=\sum _{n=1}^{\infty }\sum _{m=1}^{\infty }{\frac {f(n)g(m)}{(nm)^{s}}}\\\end{aligned}}}
∑
m
=
1
∞
f
(
n
)
g
(
m
)
(
n
m
)
s
=
∑
k
=
1
∞
∑
mn
=
k
f
(
m
)
g
(
n
)
(
m
n
)
s
=
∑
k
=
1
∞
∑
mn
=
k
f
(
m
)
g
(
n
)
k
s
=
∑
k
=
1
∞
(
∑
mn
=
k
f
(
m
)
g
(
n
)
)
k
−
s
=
∑
k
=
1
∞
(
f
∗
g
)
(
k
)
k
−
s
{\displaystyle {\begin{aligned}\sum _{m=1}^{\infty }{\frac {f(n)g(m)}{(nm)^{s}}}&=\sum _{k=1}^{\infty }\sum _{{\text{mn}}=k}{\frac {f(m)g(n)}{(mn)^{s}}}\\&=\sum _{k=1}^{\infty }\sum _{{\text{mn}}=k}{\frac {f(m)g(n)}{k^{s}}}\\&=\sum _{k=1}^{\infty }(\sum _{{\text{mn}}=k}f(m)g(n))k^{-s}\\&=\sum _{k=1}^{\infty }(f*g)(k)k^{-s}\\\end{aligned}}}
於是,如果數論函數
h
=
1
∗
g
{\displaystyle {\begin{smallmatrix}h=1*g\end{smallmatrix}}}
h
(
n
)
=
∑
d
‖
n
g
(
d
)
{\displaystyle h(n)=\sum _{d\|n}g(d)}
h
(
n
)
{\displaystyle {\begin{smallmatrix}h(n)\end{smallmatrix}}}
g
(
d
)
{\displaystyle {\begin{smallmatrix}g(d)\end{smallmatrix}}}
默比烏斯反演公式 相互轉換)
H
(
s
)
=
∑
n
=
1
∞
h
(
n
)
n
s
=
ζ
(
s
)
∑
n
=
1
∞
g
(
n
)
n
s
{\displaystyle \operatorname {H} (s)=\sum _{n=1}^{\infty }{\frac {h(n)}{n^{s}}}=\zeta (s)\sum _{n=1}^{\infty }{\frac {g(n)}{n^{s}}}}
ζ
(
s
)
{\displaystyle {\begin{smallmatrix}\zeta (s)\end{smallmatrix}}}
g
(
n
)
{\displaystyle {\begin{smallmatrix}g(n)\end{smallmatrix}}}
h
(
n
)
{\displaystyle {\begin{smallmatrix}h(n)\end{smallmatrix}}}
ζ
(
s
)
{\displaystyle {\begin{smallmatrix}\zeta (s)\end{smallmatrix}}}
g
(
n
)
{\displaystyle {\begin{smallmatrix}g(n)\end{smallmatrix}}}
ζ
(
s
)
{\displaystyle {\begin{smallmatrix}\zeta (s)\end{smallmatrix}}}
∑
n
=
1
∞
g
(
n
)
n
s
=
H
(
s
)
ζ
(
s
)
{\displaystyle \sum _{n=1}^{\infty }{\frac {g(n)}{n^{s}}}={\frac {\operatorname {H} (s)}{\zeta (s)}}}
目標函數名
g(n)
h(n)
G(s)或H(s)
g(n)或h(n)與ζ函數的聯繫
莫比烏斯函數
μ
(
n
)
=
μ
(
p
1
a
1
p
2
a
2
.
.
.
p
k
a
k
)
=
{
(
−
1
)
k
a
1
=
a
2
=
.
.
.
=
a
k
0
o
t
h
e
r
w
i
s
e
{\displaystyle \mu (n)=\mu (p_{1}^{a_{1}}p_{2}^{a_{2}}...p_{k}^{a_{k}})={\begin{cases}(-1)^{k}&a_{1}=a_{2}=...=a_{k}\\0&\mathrm {otherwise} \end{cases}}}
⌊
1
n
⌋
{\displaystyle \left\lfloor {\frac {1}{n}}\right\rfloor }
H
(
s
)
=
1
{\displaystyle \operatorname {H} (s)=1}
G
(
s
)
=
∑
n
=
1
∞
μ
(
n
)
n
s
=
1
ζ
(
s
)
{\displaystyle \operatorname {G} (s)=\sum _{n=1}^{\infty }{\frac {\mu (n)}{n^{s}}}={\frac {1}{\zeta (s)}}}
歐拉函數
φ
(
n
)
=
Card
{
k
|
k
<
n
,
(
k
,
n
)
=
1
}
{\displaystyle \varphi (n)=\operatorname {Card} \{k\,\,|k<n,\,(k,n)=1\}\quad }
n
{\displaystyle n}
H
(
s
)
=
ζ
(
s
−
1
)
{\displaystyle \operatorname {H} (s)=\zeta (s-1)}
G
(
s
)
=
∑
n
=
1
∞
φ
(
n
)
n
s
=
ζ
(
s
−
1
)
ζ
(
s
)
{\displaystyle \operatorname {G} (s)=\sum _{n=1}^{\infty }{\frac {\varphi (n)}{n^{s}}}={\frac {\zeta (s-1)}{\zeta (s)}}}
除數函數
n
α
{\displaystyle n^{\alpha }}
σ
α
(
n
)
=
∑
d
|
n
d
α
{\displaystyle \sigma _{\alpha }(n)=\sum _{d|n}d^{\alpha }}
G
(
s
)
=
ζ
(
s
−
α
)
{\displaystyle \operatorname {G} (s)=\zeta (s-\alpha )}
H
(
s
)
=
∑
n
=
1
∞
σ
α
(
n
)
n
s
=
ζ
(
s
−
α
)
ζ
(
s
)
{\displaystyle \operatorname {H} (s)=\sum _{n=1}^{\infty }{\frac {\sigma _{\alpha }(n)}{n^{s}}}=\zeta (s-\alpha )\zeta (s)}
萊歐維爾函數
μ
(
n
)
=
μ
(
p
1
a
1
p
2
a
2
.
.
.
p
k
a
k
)
=
a
1
+
a
2
+
.
.
.
+
a
k
{\displaystyle \mu (n)=\mu (p_{1}^{a_{1}}p_{2}^{a_{2}}...p_{k}^{a_{k}})=a_{1}+a_{2}+...+a_{k}}
{
1
n
=
m
2
0
o
t
h
e
r
w
i
s
e
{\displaystyle {\begin{cases}1&n=m^{2}\\0&\mathrm {otherwise} \end{cases}}}
H
(
s
)
=
ζ
(
2
s
)
{\displaystyle \operatorname {H} (s)=\zeta (2s)}
G
(
s
)
=
∑
n
=
1
∞
λ
(
n
)
n
s
=
ζ
(
2
s
)
ζ
(
s
)
{\displaystyle \operatorname {G} (s)=\sum _{n=1}^{\infty }{\frac {\lambda (n)}{n^{s}}}={\frac {\zeta (2s)}{\zeta (s)}}}
馮·曼戈爾特函數
Λ
(
n
)
=
{
log
(
p
)
n
=
p
k
0
o
t
h
e
r
w
i
s
e
{\displaystyle \Lambda (n)={\begin{cases}\log(p)&n=p^{k}\\0&\mathrm {otherwise} \end{cases}}}
log
n
{\displaystyle \log n}
H
(
s
)
=
ζ
′
(
s
)
{\displaystyle \operatorname {H} (s)=\zeta '(s)}
G
(
s
)
=
∑
n
=
1
∞
Λ
(
n
)
n
s
=
−
ζ
′
(
s
)
ζ
(
s
)
{\displaystyle \operatorname {G} (s)=\sum _{n=1}^{\infty }{\frac {\Lambda (n)}{n^{s}}}=-{\frac {\zeta '(s)}{\zeta (s)}}}
ζ函數與數論函數存在的聯繫可以通過佩龍公式 轉化為它和數論函數的求和的關係:設
G
(
s
)
=
∑
n
=
1
∞
g
(
n
)
{\displaystyle G(s)={\sum _{n=1}^{\infty }}g(n)}
則由佩龍公式,
A
(
x
)
=
∑
n
≤
x
′
g
(
n
)
=
1
2
π
i
∫
c
−
i
∞
c
+
i
∞
G
(
z
)
x
z
z
d
z
{\displaystyle A(x)={\sum _{n\leq x}}'g(n)={\frac {1}{2\pi i}}\int _{c-i\infty }^{c+i\infty }G(z){\frac {x^{z}}{z}}\,\mathrm {d} z}
其中右上角的'表示如果x是整數,那麼求和的最後一項要乘以
1
2
{\displaystyle {\begin{smallmatrix}{\frac {1}{2}}\end{smallmatrix}}}
此函數和質數 的關係已由歐拉 所揭示:
ζ
(
s
)
=
∏
p
1
1
−
p
−
s
{\displaystyle \zeta (s)=\prod _{p}{\frac {1}{1-p^{-s}}}}
這是一個延展到所有的質數p 的無窮乘積 ,被稱為歐拉乘積 。這是幾何級數 的公式和算術基本定理 的一個結果。
log
ζ
(
s
)
=
∑
n
=
1
∞
1
n
∑
p
p
−
n
s
{\displaystyle \log \zeta (s)=\sum _{n=1}^{\infty }{\frac {1}{n}}\sum _{p}p^{-ns}}
黎曼質數計數函數(藍色)J(x)與對數積分(金色)Li(x)的圖像,x<300 黎曼質數計數函數(藍點)J(x)與對數積分(紅線)Li(x)的圖像,x<1 000 000 可以使用黎曼質數計數函數
J
(
x
)
{\displaystyle {\begin{smallmatrix}\operatorname {J} (x)\end{smallmatrix}}}
ζ
(
s
)
{\displaystyle {\begin{smallmatrix}\zeta (s)\end{smallmatrix}}}
黎曼 在他的論文論小於給定數值的質數個數
J
(
x
)
=
∑
n
≤
x
κ
(
n
)
{\displaystyle \operatorname {J} (x)=\sum _{n\leq x}\kappa (n)}
其中
κ
(
n
)
=
{
1
k
n
=
p
k
0
o
t
h
e
r
w
i
s
e
{\displaystyle \kappa (n)={\begin{cases}{\frac {1}{k}}&n=p^{k}\\0&\mathrm {otherwise} \end{cases}}}
J
(
x
)
{\displaystyle {\begin{smallmatrix}\operatorname {J} (x)\end{smallmatrix}}}
ζ
(
s
)
{\displaystyle {\begin{smallmatrix}\zeta (s)\end{smallmatrix}}}
黎曼顯式公式
J
(
x
)
=
1
2
π
i
∫
c
−
i
∞
c
+
i
∞
log
ζ
(
s
)
x
s
s
d
s
=
Li
(
x
)
−
∑
ρ
Li
(
x
ρ
)
+
∫
x
∞
1
t
(
t
2
−
1
)
log
(
t
)
d
x
−
log
2
{\displaystyle {\begin{aligned}\operatorname {J} (x)&={\frac {1}{2\pi i}}\int _{c-i\infty }^{c+i\infty }\log \zeta (s){\frac {x^{s}}{s}}\,\mathrm {d} s\\&=\operatorname {Li} (x)-\sum _{\rho }\operatorname {Li} (x^{\rho })+\int _{x}^{\infty }{\frac {1}{t(t^{2}-1)\log(t)}}\,\mathrm {d} x-\log 2\\\end{aligned}}}
而
J
(
x
)
{\displaystyle {\begin{smallmatrix}\operatorname {J} (x)\end{smallmatrix}}}
π
(
x
)
{\displaystyle {\begin{smallmatrix}\pi (x)\end{smallmatrix}}}
莫比烏斯反演公式 完成。
π
(
x
)
=
∑
n
=
1
∞
μ
(
n
)
n
J
(
x
)
=
J
(
x
)
+
O
(
x
log
log
x
)
{\displaystyle \pi (x)=\sum _{n=1}^{\infty }{\frac {\mu (n)}{n}}\operatorname {J} (x)=\operatorname {J} (x)+\mathrm {O} ({\sqrt {x}}\log \log x)}
J
(
x
)
{\displaystyle {\begin{smallmatrix}\operatorname {J} (x)\end{smallmatrix}}}
柴比雪夫函數
第二柴比雪夫函數(藍線)ψ(x)與y=x(金線)的圖像,x<300 第二柴比雪夫函數(藍點)ψ(x)與y=x(紅線)的圖像,x<1 000 000 第一柴比雪夫函數
ϑ
(
x
)
{\displaystyle {\begin{smallmatrix}\vartheta (x)\end{smallmatrix}}}
ϑ
(
x
)
=
∑
p
≤
x
log
p
{\displaystyle \vartheta (x)=\sum _{p\leq x}\log p}
而更常用的第二柴比雪夫函數
ψ
(
x
)
{\displaystyle {\begin{smallmatrix}\psi (x)\end{smallmatrix}}}
ψ
(
x
)
=
∑
p
k
≤
x
log
p
=
∑
n
≤
x
Λ
(
n
)
=
∑
p
≤
x
⌊
log
p
x
⌋
log
p
{\displaystyle \psi (x)=\sum _{p^{k}\leq x}\log p=\sum _{n\leq x}\Lambda (n)=\sum _{p\leq x}\lfloor \log _{p}x\rfloor \log p}
其中,如前文定義的
Λ
(
n
)
=
{
log
(
p
)
n
=
p
k
0
o
t
h
e
r
w
i
s
e
{\displaystyle \Lambda (n)={\begin{cases}\log(p)&n=p^{k}\\0&\mathrm {otherwise} \end{cases}}}
ψ
(
x
)
{\displaystyle {\begin{smallmatrix}\psi (x)\end{smallmatrix}}}
ζ
(
s
)
{\displaystyle {\begin{smallmatrix}\zeta (s)\end{smallmatrix}}}
ψ
(
x
)
=
1
2
π
i
∫
c
−
i
∞
c
+
i
∞
−
ζ
′
(
s
)
ζ
(
s
)
x
s
s
d
s
=
∑
n
≤
x
Λ
(
n
)
=
x
−
∑
ρ
x
ρ
ρ
−
1
2
log
(
1
−
1
x
2
)
−
log
(
2
π
)
{\displaystyle {\begin{aligned}\psi (x)&={\frac {1}{2\pi i}}\int _{c-i\infty }^{c+i\infty }-{\frac {\zeta '(s)}{\zeta (s)}}{\frac {x^{s}}{s}}\,\mathrm {d} s\\&=\sum _{n\leq x}\Lambda (n)=x-\sum _{\rho }{\frac {x^{\rho }}{\rho }}-{\frac {1}{2}}\log(1-{\frac {1}{x^{2}}})-\log(2\pi )\\\end{aligned}}}
而
ψ
(
x
)
{\displaystyle {\begin{smallmatrix}\psi (x)\end{smallmatrix}}}
J
(
x
)
{\displaystyle {\begin{smallmatrix}\operatorname {J} (x)\end{smallmatrix}}}
阿貝爾求和公式 :
ψ
(
x
)
=
∑
n
=
p
k
≤
x
log
p
=
ψ
(
x
)
=
∑
n
=
p
k
≤
x
1
k
log
n
=
∑
n
≤
x
κ
(
n
)
log
n
{\displaystyle \psi (x)=\sum _{n=p^{k}\leq x}\log p=\psi (x)=\sum _{n=p^{k}\leq x}{\frac {1}{k}}\log n=\sum _{n\leq x}{\frac {\kappa (n)}{\log n}}}
其中κ如前文所定義,則由阿貝爾求和公式
J
(
x
)
=
∑
n
≤
x
κ
(
n
)
=
ψ
(
x
)
log
x
+
∫
2
x
ψ
(
t
)
t
2
log
t
d
t
=
ψ
(
x
)
log
x
+
O
(
x
log
2
x
)
{\displaystyle \operatorname {J} (x)=\sum _{n\leq x}\kappa (n)={\frac {\psi (x)}{\log x}}+\int _{2}^{x}{\frac {\psi (t)}{t^{2}\log t}}\,\mathrm {d} t={\frac {\psi (x)}{\log x}}+\mathrm {O} ({\frac {x}{\log ^{2}x}})}
解析延拓之後的ζ函數具有零點,他們分別是分佈有序的平凡零點(所有負偶數),以及臨界帶
0
<
Re
s
<
1
{\displaystyle {\begin{smallmatrix}0<\operatorname {Re} s<1\end{smallmatrix}}}
N
(
T
)
{\displaystyle {\begin{smallmatrix}\operatorname {N} (T)\end{smallmatrix}}}
0
<
N
(
T
)
{\displaystyle {\begin{smallmatrix}0<\operatorname {N} (T)\end{smallmatrix}}}
黎曼 - 馮·曼戈爾特公式
N
(
T
)
=
T
2
π
log
T
2
π
−
T
2
π
+
O
(
log
T
)
{\displaystyle N(T)={\frac {T}{2\pi }}\log {\frac {T}{2\pi }}-{\frac {T}{2\pi }}+\mathrm {O} (\log T)}
黎曼函數在s > 1的情況 ζ函數滿足如下函數方程:
ζ
(
s
)
=
2
s
π
s
−
1
sin
(
π
s
2
)
Γ
(
1
−
s
)
ζ
(
1
−
s
)
{\displaystyle \zeta (s)=2^{s}\pi ^{s-1}\sin \left({\frac {\pi s}{2}}\right)\Gamma (1-s)\zeta (1-s)}
對於所有C \{0,1}中的s 成立。這裏,Γ表示Γ函數 。這個公式原來用來構造解析連續性。在s = 1,ζ函數有一個簡單極點 其留數 為1。上述方程中有sin函數,
sin
(
π
s
2
)
{\displaystyle \sin \left({\frac {\pi s}{2}}\right)}
s = 2n ,這些位置是可能的零點,但s為正偶數時,
sin
(
π
s
2
)
Γ
(
1
−
s
)
{\displaystyle \sin \left({\frac {\pi s}{2}}\right)\Gamma (1-s)}
規則函數 平凡 零點。
歐拉計算出ζ(2k ),對於偶整數 2k ,使用公式
ζ
(
2
k
)
=
B
2
k
(
−
1
)
k
+
1
(
2
π
)
2
k
2
(
2
k
)
!
{\displaystyle \zeta (2k)={\frac {B_{2k}(-1)^{k+1}(2\pi )^{2k}}{2(2k)!}}}
其中B 2k 是伯努利數 。從這個,我們可以看到ζ(2) = π2 /6, ζ(4) = π4 /90, ζ(6) = π6 /945等等。(OEIS 中的序列A046988 (頁面存檔備份 ,存於互聯網檔案館 )/A002432 (頁面存檔備份 ,存於互聯網檔案館 ))。這些給出了著名的π 的無窮級數。奇整數的情況沒有這麼簡單。拉馬努金 在這上面做了很多了不起的工作。
s
{\displaystyle s\,}
歐拉 計算出。但當
s
{\displaystyle s\,}
ζ
(
1
)
=
1
+
1
2
+
1
3
+
⋯
=
∞
;
{\displaystyle \zeta (1)=1+{\frac {1}{2}}+{\frac {1}{3}}+\cdots =\infty ;\!}
這是調和級數 。
ζ
(
3
2
)
≈
2.612
;
{\displaystyle \zeta \left({\frac {3}{2}}\right)\approx 2.612;\!}
A078434 該值用於計算具有週期性邊界條件的玻色-愛因斯坦凝聚 的臨界溫度以及磁系統的自旋波物理。
ζ
(
2
)
=
1
+
1
2
2
+
1
3
2
+
⋯
=
π
2
6
≈
1.645
;
{\displaystyle \zeta (2)=1+{\frac {1}{2^{2}}}+{\frac {1}{3^{2}}}+\cdots ={\frac {\pi ^{2}}{6}}\approx 1.645;\!}
A013661 即巴塞爾問題 。這個結果的倒數回答了這個問題:隨機選取兩個數字而互質的概率是多少?[ 7]
ζ
(
3
)
=
1
+
1
2
3
+
1
3
3
+
⋯
≈
1.202
;
{\displaystyle \zeta (3)=1+{\frac {1}{2^{3}}}+{\frac {1}{3^{3}}}+\cdots \approx 1.202;\!}
A002117 稱為阿培里常數 。
ζ
(
4
)
=
1
+
1
2
4
+
1
3
4
+
⋯
=
π
4
90
≈
1.0823
;
{\displaystyle \zeta (4)=1+{\frac {1}{2^{4}}}+{\frac {1}{3^{4}}}+\cdots ={\frac {\pi ^{4}}{90}}\approx 1.0823;\!}
A0013662 黑體輻射 裏的斯特藩-玻爾茲曼定律 和維恩近似 。
lim
ε
→
0
ζ
(
1
+
ε
)
+
ζ
(
1
−
ε
)
2
=
γ
{\displaystyle \lim _{\varepsilon \to 0}{\frac {\zeta (1+\varepsilon )+\zeta (1-\varepsilon )}{2}}=\gamma }
其中γ是歐拉-馬歇羅尼常數 =
0.577215...
{\displaystyle 0.577215...}
同樣由歐拉發現,ζ函數在負整數點的值是有理數,這在模形式中發揮着重要作用,而且ζ函數在負偶整數點的值為零。
事實上
ζ
(
−
n
)
=
−
B
n
+
1
n
+
1
{\displaystyle \zeta (-n)=-{\frac {B_{n+1}}{n+1}}}
B n 白努利數 。
因為 B 2n +1 =0,故ζ函數在負偶整數點的值為零。
ζ
(
x
+
i
y
)
=
∑
k
=
1
∞
cos
(
y
ln
k
)
−
i
sin
(
y
ln
k
)
k
x
,
y
∈
R
{\displaystyle \zeta (x+{\rm {i}}y)=\sum _{k=1}^{\infty }{\frac {\cos(y\ln k)-{\rm {i}}\sin(y\ln k)}{k^{x}}},y\in {\mathbb {R} }}
arg
[
ζ
(
x
+
i
y
)
]
=
−
arctan
∑
k
=
1
∞
sin
(
y
ln
k
)
k
x
∑
k
=
1
∞
cos
(
y
ln
k
)
k
x
{\displaystyle \arg[\zeta (x+{\rm {i}}y)]=-\arctan {\frac {\sum _{k=1}^{\infty }{\frac {\sin(y\ln k)}{k^{x}}}}{\sum _{k=1}^{\infty }{\frac {\cos(y\ln k)}{k^{x}}}}}}
ζ
(
−
2
n
n
∈
Z
+
)
=
0
{\displaystyle \zeta (-2n_{n\in \mathbb {Z} ^{+}})=0}
ζ
(
−
9
)
=
−
1
132
(
R
)
{\displaystyle \zeta (-9)=-{\frac {1}{132}}({\mathfrak {R}})}
ζ
(
−
7
)
=
1
240
(
R
)
{\displaystyle \zeta (-7)={\frac {1}{240}}({\mathfrak {R}})}
ζ
(
−
5
)
=
−
1
252
(
R
)
{\displaystyle \zeta (-5)=-{\frac {1}{252}}({\mathfrak {R}})}
ζ
(
−
3
)
=
1
120
(
R
)
{\displaystyle \zeta (-3)={\frac {1}{120}}({\mathfrak {R}})}
ζ
(
−
1
)
=
−
1
12
(
R
)
{\displaystyle \zeta (-1)=-{\frac {1}{12}}({\mathfrak {R}})}
ζ
(
0
)
=
−
1
2
{\displaystyle \zeta (0)=-{\frac {1}{2}}}
ζ
(
1
−
)
=
−
∞
{\displaystyle \zeta (1^{-})=-\infty }
ζ
(
1
+
)
=
∞
{\displaystyle \zeta (1^{+})=\infty }
ζ
(
2
)
=
π
2
6
{\displaystyle \zeta (2)={\frac {\pi ^{2}}{6}}}
ζ
(
4
)
=
π
4
90
{\displaystyle \zeta (4)={\frac {\pi ^{4}}{90}}}
ζ
(
6
)
=
π
6
945
{\displaystyle \zeta (6)={\frac {\pi ^{6}}{945}}}
ζ
(
8
)
=
π
8
9450
{\displaystyle \zeta (8)={\frac {\pi ^{8}}{9450}}}
ζ
(
10
)
=
π
10
93555
{\displaystyle \zeta (10)={\frac {\pi ^{10}}{93555}}}
臨界線上的數值計算可以通過黎曼-西格爾公式 完成。林德勒夫猜想
ϵ
>
0
{\displaystyle {\begin{smallmatrix}\epsilon >0\end{smallmatrix}}}
ζ
(
1
2
+
i
t
)
=
O
(
t
ϵ
)
{\displaystyle \zeta \left({\frac {1}{2}}+it\right)=\mathrm {O} (t^{\epsilon })}
![{\displaystyle {\begin{aligned}\left(1+{\frac {x}{N}}\right)^{N}-\left(1-{\frac {x}{N}}\right)^{N}&=\left[\left(1+{\frac {x}{N}}\right)-\left(1-{\frac {x}{N}}\right)\right]\prod _{k=1}^{\frac {N-1}{2}}\left[\left(1+{\frac {x}{N}}\right)^{2}-2\left(1+{\frac {x}{N}}\right)\left(1-{\frac {x}{N}}\right)\cos \left({\frac {2\pi k}{N}}\right)+\left(1-{\frac {x}{N}}\right)^{2}\right]\\&={\frac {2x}{N}}\prod _{k=1}^{\frac {N-1}{2}}\left[2+{\frac {2x^{2}}{N^{2}}}-2\left(1-{\frac {x^{2}}{N^{2}}}\right)\cos \left({\frac {2\pi k}{N}}\right)\right]\\&={\frac {2x}{N}}\prod _{k=1}^{\frac {N-1}{2}}\left[{2+{\frac {2{x^{2}}}{N^{2}}}-2\cos \left({\frac {2\pi k}{N}}\right)+{\frac {2{x^{2}}}{N^{2}}}\cos({\frac {2\pi k}{N}})}\right]\\&={\frac {4x}{N}}\prod _{k=1}^{\frac {N-1}{2}}\left({(1-\cos({\frac {2\pi k}{N}}))+(1+\cos({\frac {2\pi k}{N}})){\frac {x^{2}}{N^{2}}}}\right)\\&={\frac {4x}{N}}\prod _{k=1}^{\frac {N-1}{2}}\left\{\left[1-\cos \left({\frac {2\pi k}{N}}\right)\right]\left[{1+{\frac {1+\cos \left({\frac {2\pi k}{N}}\right)}{1-\cos({\frac {2\pi k}{N}})}}{\frac {x^{2}}{N^{2}}}}\right]\right\}\\\end{aligned}}}](https://wikimedia.org/api/rest_v1/media/math/render/svg/23ed868ba0fd3d14af72b827080bb13dcab2a8e8)
![{\displaystyle {\begin{aligned}\left(1+{\frac {x}{N}}\right)^{N}-\left(1-{\frac {x}{N}}\right)^{N}&=2x\prod _{k=1}^{\frac {N-1}{2}}\left[1+{\frac {1+\cos \left({\frac {2\pi k}{N}}\right)}{1-\cos \left({\frac {2\pi k}{N}}\right)}}{\frac {x^{2}}{N^{2}}}\right]\\&=2x\prod _{k=1}^{\frac {N-1}{2}}\left\{1+{\frac {1+\left[1-{\frac {\theta ^{2}}{2}}+\mathrm {O} \left(\theta ^{3}\right)\right]}{1-\left[1-{\frac {\theta ^{2}}{2}}+\mathrm {O} \left(\theta ^{3}\right)\right]}}{\frac {x^{2}}{N^{2}}}\right\}\\&=2x\prod _{k=1}^{\frac {N-1}{2}}\left[1+{\frac {2-{\frac {\theta ^{2}}{2}}+\mathrm {O} \left(\theta ^{3}\right)}{{\frac {\theta ^{2}}{2}}+\mathrm {O} \left(\theta ^{3}\right)}}{\frac {x^{2}}{N^{2}}}\right]\\&=2x\prod _{k=1}^{\frac {N-1}{2}}\left(1+{\frac {\left(4-\theta ^{2}+\mathrm {O} \left(\theta ^{3}\right)\right)x^{2}}{\left(\theta ^{2}+\mathrm {O} \left(\theta ^{3}\right)\right)N^{2}}}\right)\\&=2x\prod _{k=1}^{\frac {N-1}{2}}\left(1+{\frac {\left(4-\left({\frac {2k\pi }{N}}\right)^{2}+\mathrm {O} \left(\left({\frac {2k\pi }{N}}\right)^{3}\right)\right)x^{2}}{\left(\left({\frac {2k\pi }{N}}\right)^{2}+\mathrm {O} \left(\left({\frac {2k\pi }{N}}\right)^{3}\right)\right)N^{2}}}\right)\\&=2x\prod _{k=1}^{\frac {N-1}{2}}\left(1+{\frac {\left(4-\left({\frac {2k\pi }{N}}\right)^{2}+\mathrm {O} \left(\left({\frac {2k\pi }{N}}\right)^{3}\right)\right)x^{2}}{(2k\pi )^{2}+\mathrm {O} \left({\frac {(2k\pi )^{3}}{N}}\right)}}\right)\end{aligned}}}](https://wikimedia.org/api/rest_v1/media/math/render/svg/a3463889e69fa6c26e55d810d8a2ef0a8dc7c440)
.png)
.png)
![{\displaystyle \arg[\zeta (x+{\rm {i}}y)]=-\arctan {\frac {\sum _{k=1}^{\infty }{\frac {\sin(y\ln k)}{k^{x}}}}{\sum _{k=1}^{\infty }{\frac {\cos(y\ln k)}{k^{x}}}}}}](https://wikimedia.org/api/rest_v1/media/math/render/svg/e900016d87e7c6f5d1672b28108042d891a05718)
