Properties

Label 3400.1.k.a
Level $3400$
Weight $1$
Character orbit 3400.k
Analytic conductor $1.697$
Analytic rank $0$
Dimension $2$
Projective image $D_{2}$
CM/RM discs -8, -136, 17
Inner twists $8$

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Show commands: Magma / PariGP / SageMath

Newspace parameters

comment: Compute space of new eigenforms
 
[N,k,chi] = [3400,1,Mod(1699,3400)]
 
mf = mfinit([N,k,chi],0)
 
lf = mfeigenbasis(mf)
 
from sage.modular.dirichlet import DirichletCharacter
 
H = DirichletGroup(3400, base_ring=CyclotomicField(2))
 
chi = DirichletCharacter(H, H._module([1, 1, 1, 1]))
 
N = Newforms(chi, 1, names="a")
 
//Please install CHIMP (https://github.com/edgarcosta/CHIMP) if you want to run this code
 
chi := DirichletCharacter("3400.1699");
 
S:= CuspForms(chi, 1);
 
N := Newforms(S);
 
Level: \( N \) \(=\) \( 3400 = 2^{3} \cdot 5^{2} \cdot 17 \)
Weight: \( k \) \(=\) \( 1 \)
Character orbit: \([\chi]\) \(=\) 3400.k (of order \(2\), degree \(1\), not minimal)

Newform invariants

comment: select newform
 
sage: f = N[0] # Warning: the index may be different
 
gp: f = lf[1] \\ Warning: the index may be different
 
Self dual: no
Analytic conductor: \(1.69682104295\)
Analytic rank: \(0\)
Dimension: \(2\)
Coefficient field: \(\Q(i)\)
comment: defining polynomial
 
gp: f.mod \\ as an extension of the character field
 
Defining polynomial: \( x^{2} + 1 \) Copy content Toggle raw display
Coefficient ring: \(\Z[a_1, a_2]\)
Coefficient ring index: \( 1 \)
Twist minimal: no (minimal twist has level 136)
Projective image: \(D_{2}\)
Projective field: Galois closure of \(\Q(\sqrt{-2}, \sqrt{17})\)
Artin image: $D_4:C_2$
Artin field: Galois closure of 8.0.18496000000.1

$q$-expansion

comment: q-expansion
 
sage: f.q_expansion() # note that sage often uses an isomorphic number field
 
gp: mfcoefs(f, 20)
 

The \(q\)-expansion and trace form are shown below.

\(f(q)\) \(=\) \( q - i q^{2} - q^{4} + i q^{8} - q^{9} +O(q^{10}) \) Copy content Toggle raw display \( q - i q^{2} - q^{4} + i q^{8} - q^{9} + q^{16} - i q^{17} + i q^{18} + q^{19} - i q^{32} - q^{34} + q^{36} - 2 i q^{38} - i q^{43} + q^{49} - q^{59} - q^{64} - i q^{67} + i q^{68} - i q^{72} - 2 q^{76} + q^{81} - i q^{83} - 2 q^{86} + q^{89} - i q^{98} +O(q^{100}) \) Copy content Toggle raw display
\(\operatorname{Tr}(f)(q)\) \(=\) \( 2 q - 2 q^{4} - 2 q^{9}+O(q^{10}) \) Copy content Toggle raw display \( 2 q - 2 q^{4} - 2 q^{9} + 2 q^{16} + 4 q^{19} - 2 q^{34} + 2 q^{36} + 2 q^{49} - 4 q^{59} - 2 q^{64} - 4 q^{76} + 2 q^{81} - 4 q^{86} + 4 q^{89}+O(q^{100}) \) Copy content Toggle raw display

Character values

We give the values of \(\chi\) on generators for \(\left(\mathbb{Z}/3400\mathbb{Z}\right)^\times\).

\(n\) \(1601\) \(1701\) \(2177\) \(2551\)
\(\chi(n)\) \(-1\) \(-1\) \(-1\) \(-1\)

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.

comment: embeddings in the coefficient field
 
gp: mfembed(f)
 
Label   \(\iota_m(\nu)\) \( a_{2} \) \( a_{3} \) \( a_{4} \) \( a_{5} \) \( a_{6} \) \( a_{7} \) \( a_{8} \) \( a_{9} \) \( a_{10} \)
1699.1
1.00000i
1.00000i
1.00000i 0 −1.00000 0 0 0 1.00000i −1.00000 0
1699.2 1.00000i 0 −1.00000 0 0 0 1.00000i −1.00000 0
\(n\): e.g. 2-40 or 990-1000
Significant digits:
Format:

Inner twists

Char Parity Ord Mult Type
1.a even 1 1 trivial
8.d odd 2 1 CM by \(\Q(\sqrt{-2}) \)
17.b even 2 1 RM by \(\Q(\sqrt{17}) \)
136.e odd 2 1 CM by \(\Q(\sqrt{-34}) \)
5.b even 2 1 inner
40.e odd 2 1 inner
85.c even 2 1 inner
680.k odd 2 1 inner

Twists

       By twisting character orbit
Char Parity Ord Mult Type Twist Min Dim
1.a even 1 1 trivial 3400.1.k.a 2
5.b even 2 1 inner 3400.1.k.a 2
5.c odd 4 1 136.1.e.a 1
5.c odd 4 1 3400.1.g.a 1
8.d odd 2 1 CM 3400.1.k.a 2
15.e even 4 1 1224.1.n.a 1
17.b even 2 1 RM 3400.1.k.a 2
20.e even 4 1 544.1.e.a 1
40.e odd 2 1 inner 3400.1.k.a 2
40.i odd 4 1 544.1.e.a 1
40.k even 4 1 136.1.e.a 1
40.k even 4 1 3400.1.g.a 1
85.c even 2 1 inner 3400.1.k.a 2
85.f odd 4 1 2312.1.f.a 1
85.g odd 4 1 136.1.e.a 1
85.g odd 4 1 3400.1.g.a 1
85.i odd 4 1 2312.1.f.a 1
85.k odd 8 2 2312.1.j.a 2
85.n odd 8 2 2312.1.j.a 2
85.o even 16 4 2312.1.p.c 4
85.r even 16 4 2312.1.p.c 4
120.q odd 4 1 1224.1.n.a 1
136.e odd 2 1 CM 3400.1.k.a 2
255.o even 4 1 1224.1.n.a 1
340.r even 4 1 544.1.e.a 1
680.k odd 2 1 inner 3400.1.k.a 2
680.t even 4 1 2312.1.f.a 1
680.u even 4 1 136.1.e.a 1
680.u even 4 1 3400.1.g.a 1
680.bi odd 4 1 544.1.e.a 1
680.bl even 4 1 2312.1.f.a 1
680.bw even 8 2 2312.1.j.a 2
680.bz even 8 2 2312.1.j.a 2
680.ch odd 16 4 2312.1.p.c 4
680.cr odd 16 4 2312.1.p.c 4
2040.cp odd 4 1 1224.1.n.a 1
    
        By twisted newform orbit
Twist Min Dim Char Parity Ord Mult Type
136.1.e.a 1 5.c odd 4 1
136.1.e.a 1 40.k even 4 1
136.1.e.a 1 85.g odd 4 1
136.1.e.a 1 680.u even 4 1
544.1.e.a 1 20.e even 4 1
544.1.e.a 1 40.i odd 4 1
544.1.e.a 1 340.r even 4 1
544.1.e.a 1 680.bi odd 4 1
1224.1.n.a 1 15.e even 4 1
1224.1.n.a 1 120.q odd 4 1
1224.1.n.a 1 255.o even 4 1
1224.1.n.a 1 2040.cp odd 4 1
2312.1.f.a 1 85.f odd 4 1
2312.1.f.a 1 85.i odd 4 1
2312.1.f.a 1 680.t even 4 1
2312.1.f.a 1 680.bl even 4 1
2312.1.j.a 2 85.k odd 8 2
2312.1.j.a 2 85.n odd 8 2
2312.1.j.a 2 680.bw even 8 2
2312.1.j.a 2 680.bz even 8 2
2312.1.p.c 4 85.o even 16 4
2312.1.p.c 4 85.r even 16 4
2312.1.p.c 4 680.ch odd 16 4
2312.1.p.c 4 680.cr odd 16 4
3400.1.g.a 1 5.c odd 4 1
3400.1.g.a 1 40.k even 4 1
3400.1.g.a 1 85.g odd 4 1
3400.1.g.a 1 680.u even 4 1
3400.1.k.a 2 1.a even 1 1 trivial
3400.1.k.a 2 5.b even 2 1 inner
3400.1.k.a 2 8.d odd 2 1 CM
3400.1.k.a 2 17.b even 2 1 RM
3400.1.k.a 2 40.e odd 2 1 inner
3400.1.k.a 2 85.c even 2 1 inner
3400.1.k.a 2 136.e odd 2 1 CM
3400.1.k.a 2 680.k odd 2 1 inner

Hecke kernels

This newform subspace can be constructed as the kernel of the linear operator \( T_{3} \) acting on \(S_{1}^{\mathrm{new}}(3400, [\chi])\). Copy content Toggle raw display

Hecke characteristic polynomials

$p$ $F_p(T)$
$2$ \( T^{2} + 1 \) Copy content Toggle raw display
$3$ \( T^{2} \) Copy content Toggle raw display
$5$ \( T^{2} \) Copy content Toggle raw display
$7$ \( T^{2} \) Copy content Toggle raw display
$11$ \( T^{2} \) Copy content Toggle raw display
$13$ \( T^{2} \) Copy content Toggle raw display
$17$ \( T^{2} + 1 \) Copy content Toggle raw display
$19$ \( (T - 2)^{2} \) Copy content Toggle raw display
$23$ \( T^{2} \) Copy content Toggle raw display
$29$ \( T^{2} \) Copy content Toggle raw display
$31$ \( T^{2} \) Copy content Toggle raw display
$37$ \( T^{2} \) Copy content Toggle raw display
$41$ \( T^{2} \) Copy content Toggle raw display
$43$ \( T^{2} + 4 \) Copy content Toggle raw display
$47$ \( T^{2} \) Copy content Toggle raw display
$53$ \( T^{2} \) Copy content Toggle raw display
$59$ \( (T + 2)^{2} \) Copy content Toggle raw display
$61$ \( T^{2} \) Copy content Toggle raw display
$67$ \( T^{2} + 4 \) Copy content Toggle raw display
$71$ \( T^{2} \) Copy content Toggle raw display
$73$ \( T^{2} \) Copy content Toggle raw display
$79$ \( T^{2} \) Copy content Toggle raw display
$83$ \( T^{2} + 4 \) Copy content Toggle raw display
$89$ \( (T - 2)^{2} \) Copy content Toggle raw display
$97$ \( T^{2} \) Copy content Toggle raw display
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