Properties

Label 966.2.i.e
Level $966$
Weight $2$
Character orbit 966.i
Analytic conductor $7.714$
Analytic rank $0$
Dimension $2$
CM no
Inner twists $2$

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Newspace parameters

Level: \( N \) \(=\) \( 966 = 2 \cdot 3 \cdot 7 \cdot 23 \)
Weight: \( k \) \(=\) \( 2 \)
Character orbit: \([\chi]\) \(=\) 966.i (of order \(3\), degree \(2\), minimal)

Newform invariants

Self dual: no
Analytic conductor: \(7.71354883526\)
Analytic rank: \(0\)
Dimension: \(2\)
Coefficient field: \(\Q(\sqrt{-3}) \)
Defining polynomial: \(x^{2} - x + 1\)
Coefficient ring: \(\Z[a_1, a_2]\)
Coefficient ring index: \( 1 \)
Twist minimal: yes
Sato-Tate group: $\mathrm{SU}(2)[C_{3}]$

$q$-expansion

Coefficients of the \(q\)-expansion are expressed in terms of a primitive root of unity \(\zeta_{6}\). We also show the integral \(q\)-expansion of the trace form.

\(f(q)\) \(=\) \( q + \zeta_{6} q^{2} + ( -1 + \zeta_{6} ) q^{3} + ( -1 + \zeta_{6} ) q^{4} -3 \zeta_{6} q^{5} - q^{6} + ( -1 + 3 \zeta_{6} ) q^{7} - q^{8} -\zeta_{6} q^{9} +O(q^{10})\) \( q + \zeta_{6} q^{2} + ( -1 + \zeta_{6} ) q^{3} + ( -1 + \zeta_{6} ) q^{4} -3 \zeta_{6} q^{5} - q^{6} + ( -1 + 3 \zeta_{6} ) q^{7} - q^{8} -\zeta_{6} q^{9} + ( 3 - 3 \zeta_{6} ) q^{10} + ( 5 - 5 \zeta_{6} ) q^{11} -\zeta_{6} q^{12} + ( -3 + 2 \zeta_{6} ) q^{14} + 3 q^{15} -\zeta_{6} q^{16} + ( 4 - 4 \zeta_{6} ) q^{17} + ( 1 - \zeta_{6} ) q^{18} + 3 q^{20} + ( -2 - \zeta_{6} ) q^{21} + 5 q^{22} -\zeta_{6} q^{23} + ( 1 - \zeta_{6} ) q^{24} + ( -4 + 4 \zeta_{6} ) q^{25} + q^{27} + ( -2 - \zeta_{6} ) q^{28} -3 q^{29} + 3 \zeta_{6} q^{30} + ( 9 - 9 \zeta_{6} ) q^{31} + ( 1 - \zeta_{6} ) q^{32} + 5 \zeta_{6} q^{33} + 4 q^{34} + ( 9 - 6 \zeta_{6} ) q^{35} + q^{36} + 12 \zeta_{6} q^{37} + 3 \zeta_{6} q^{40} + 12 q^{41} + ( 1 - 3 \zeta_{6} ) q^{42} + 6 q^{43} + 5 \zeta_{6} q^{44} + ( -3 + 3 \zeta_{6} ) q^{45} + ( 1 - \zeta_{6} ) q^{46} -2 \zeta_{6} q^{47} + q^{48} + ( -8 + 3 \zeta_{6} ) q^{49} -4 q^{50} + 4 \zeta_{6} q^{51} + ( -5 + 5 \zeta_{6} ) q^{53} + \zeta_{6} q^{54} -15 q^{55} + ( 1 - 3 \zeta_{6} ) q^{56} -3 \zeta_{6} q^{58} + ( 9 - 9 \zeta_{6} ) q^{59} + ( -3 + 3 \zeta_{6} ) q^{60} + 2 \zeta_{6} q^{61} + 9 q^{62} + ( 3 - 2 \zeta_{6} ) q^{63} + q^{64} + ( -5 + 5 \zeta_{6} ) q^{66} + ( 2 - 2 \zeta_{6} ) q^{67} + 4 \zeta_{6} q^{68} + q^{69} + ( 6 + 3 \zeta_{6} ) q^{70} + 6 q^{71} + \zeta_{6} q^{72} + ( 14 - 14 \zeta_{6} ) q^{73} + ( -12 + 12 \zeta_{6} ) q^{74} -4 \zeta_{6} q^{75} + ( 10 + 5 \zeta_{6} ) q^{77} -11 \zeta_{6} q^{79} + ( -3 + 3 \zeta_{6} ) q^{80} + ( -1 + \zeta_{6} ) q^{81} + 12 \zeta_{6} q^{82} -17 q^{83} + ( 3 - 2 \zeta_{6} ) q^{84} -12 q^{85} + 6 \zeta_{6} q^{86} + ( 3 - 3 \zeta_{6} ) q^{87} + ( -5 + 5 \zeta_{6} ) q^{88} -10 \zeta_{6} q^{89} -3 q^{90} + q^{92} + 9 \zeta_{6} q^{93} + ( 2 - 2 \zeta_{6} ) q^{94} + \zeta_{6} q^{96} -13 q^{97} + ( -3 - 5 \zeta_{6} ) q^{98} -5 q^{99} +O(q^{100})\)
\(\operatorname{Tr}(f)(q)\) \(=\) \( 2q + q^{2} - q^{3} - q^{4} - 3q^{5} - 2q^{6} + q^{7} - 2q^{8} - q^{9} + O(q^{10}) \) \( 2q + q^{2} - q^{3} - q^{4} - 3q^{5} - 2q^{6} + q^{7} - 2q^{8} - q^{9} + 3q^{10} + 5q^{11} - q^{12} - 4q^{14} + 6q^{15} - q^{16} + 4q^{17} + q^{18} + 6q^{20} - 5q^{21} + 10q^{22} - q^{23} + q^{24} - 4q^{25} + 2q^{27} - 5q^{28} - 6q^{29} + 3q^{30} + 9q^{31} + q^{32} + 5q^{33} + 8q^{34} + 12q^{35} + 2q^{36} + 12q^{37} + 3q^{40} + 24q^{41} - q^{42} + 12q^{43} + 5q^{44} - 3q^{45} + q^{46} - 2q^{47} + 2q^{48} - 13q^{49} - 8q^{50} + 4q^{51} - 5q^{53} + q^{54} - 30q^{55} - q^{56} - 3q^{58} + 9q^{59} - 3q^{60} + 2q^{61} + 18q^{62} + 4q^{63} + 2q^{64} - 5q^{66} + 2q^{67} + 4q^{68} + 2q^{69} + 15q^{70} + 12q^{71} + q^{72} + 14q^{73} - 12q^{74} - 4q^{75} + 25q^{77} - 11q^{79} - 3q^{80} - q^{81} + 12q^{82} - 34q^{83} + 4q^{84} - 24q^{85} + 6q^{86} + 3q^{87} - 5q^{88} - 10q^{89} - 6q^{90} + 2q^{92} + 9q^{93} + 2q^{94} + q^{96} - 26q^{97} - 11q^{98} - 10q^{99} + O(q^{100}) \)

Character values

We give the values of \(\chi\) on generators for \(\left(\mathbb{Z}/966\mathbb{Z}\right)^\times\).

\(n\) \(323\) \(829\) \(925\)
\(\chi(n)\) \(1\) \(-\zeta_{6}\) \(1\)

Embeddings

For each embedding \(\iota_m\) of the coefficient field, the values \(\iota_m(a_n)\) are shown below.

For more information on an embedded modular form you can click on its label.

Label \(\iota_m(\nu)\) \( a_{2} \) \( a_{3} \) \( a_{4} \) \( a_{5} \) \( a_{6} \) \( a_{7} \) \( a_{8} \) \( a_{9} \) \( a_{10} \)
277.1
0.500000 + 0.866025i
0.500000 0.866025i
0.500000 + 0.866025i −0.500000 + 0.866025i −0.500000 + 0.866025i −1.50000 2.59808i −1.00000 0.500000 + 2.59808i −1.00000 −0.500000 0.866025i 1.50000 2.59808i
415.1 0.500000 0.866025i −0.500000 0.866025i −0.500000 0.866025i −1.50000 + 2.59808i −1.00000 0.500000 2.59808i −1.00000 −0.500000 + 0.866025i 1.50000 + 2.59808i
\(n\): e.g. 2-40 or 990-1000
Significant digits:
Format:

Inner twists

Char Parity Ord Mult Type
1.a even 1 1 trivial
7.c even 3 1 inner

Twists

       By twisting character orbit
Char Parity Ord Mult Type Twist Min Dim
1.a even 1 1 trivial 966.2.i.e 2
7.c even 3 1 inner 966.2.i.e 2
7.c even 3 1 6762.2.a.t 1
7.d odd 6 1 6762.2.a.a 1
    
        By twisted newform orbit
Twist Min Dim Char Parity Ord Mult Type
966.2.i.e 2 1.a even 1 1 trivial
966.2.i.e 2 7.c even 3 1 inner
6762.2.a.a 1 7.d odd 6 1
6762.2.a.t 1 7.c even 3 1

Hecke kernels

This newform subspace can be constructed as the intersection of the kernels of the following linear operators acting on \(S_{2}^{\mathrm{new}}(966, [\chi])\):

\( T_{5}^{2} + 3 T_{5} + 9 \)
\( T_{11}^{2} - 5 T_{11} + 25 \)

Hecke characteristic polynomials

$p$ $F_p(T)$
$2$ \( 1 - T + T^{2} \)
$3$ \( 1 + T + T^{2} \)
$5$ \( 9 + 3 T + T^{2} \)
$7$ \( 7 - T + T^{2} \)
$11$ \( 25 - 5 T + T^{2} \)
$13$ \( T^{2} \)
$17$ \( 16 - 4 T + T^{2} \)
$19$ \( T^{2} \)
$23$ \( 1 + T + T^{2} \)
$29$ \( ( 3 + T )^{2} \)
$31$ \( 81 - 9 T + T^{2} \)
$37$ \( 144 - 12 T + T^{2} \)
$41$ \( ( -12 + T )^{2} \)
$43$ \( ( -6 + T )^{2} \)
$47$ \( 4 + 2 T + T^{2} \)
$53$ \( 25 + 5 T + T^{2} \)
$59$ \( 81 - 9 T + T^{2} \)
$61$ \( 4 - 2 T + T^{2} \)
$67$ \( 4 - 2 T + T^{2} \)
$71$ \( ( -6 + T )^{2} \)
$73$ \( 196 - 14 T + T^{2} \)
$79$ \( 121 + 11 T + T^{2} \)
$83$ \( ( 17 + T )^{2} \)
$89$ \( 100 + 10 T + T^{2} \)
$97$ \( ( 13 + T )^{2} \)
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