Properties

Label 2.0.483.1-21.1-d4
Base field \(\Q(\sqrt{-483}) \)
Conductor norm \( 21 \)
CM no
Base change yes
Q-curve yes
Torsion order \( 2 \)
Rank \( 1 \)

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Base field \(\Q(\sqrt{-483}) \)

Generator \(a\), with minimal polynomial \( x^{2} - x + 121 \); class number \(4\).

Copy content comment:Define the base number field
 
Copy content sage:R.<x> = PolynomialRing(QQ); K.<a> = NumberField(R([121, -1, 1]))
 
Copy content gp:K = nfinit(Polrev([121, -1, 1]));
 
Copy content magma:R<x> := PolynomialRing(Rationals()); K<a> := NumberField(R![121, -1, 1]);
 
Copy content oscar:Qx, x = polynomial_ring(QQ); K, a = number_field(Qx([121, -1, 1]))
 

Weierstrass equation

\({y}^2+\left(a+1\right){x}{y}={x}^3-a{x}^2+\left(-34a+5019\right){x}+11165a-37300\)
Copy content comment:Define the curve
 
Copy content sage:E = EllipticCurve([K([1,1]),K([0,-1]),K([0,0]),K([5019,-34]),K([-37300,11165])])
 
Copy content gp:E = ellinit([Polrev([1,1]),Polrev([0,-1]),Polrev([0,0]),Polrev([5019,-34]),Polrev([-37300,11165])], K);
 
Copy content magma:E := EllipticCurve([K![1,1],K![0,-1],K![0,0],K![5019,-34],K![-37300,11165]]);
 
Copy content oscar:E = elliptic_curve([K([1,1]),K([0,-1]),K([0,0]),K([5019,-34]),K([-37300,11165])])
 

This is not a global minimal model: it is minimal at all primes except \((11,a)\). No global minimal model exists.

Copy content comment:Test whether it is a global minimal model
 
Copy content sage:E.is_global_minimal_model()
 

Mordell-Weil group structure

\(\Z \oplus \Z/{2}\Z\)

Mordell-Weil generators

$P$$\hat{h}(P)$Order
$\left(-2 a + 10 : 7 a - 5 : 1\right)$$1.3192544115670790874427516950298956331$$\infty$
$\left(-\frac{15}{4} a + 10 : -\frac{5}{4} a - \frac{1855}{8} : 1\right)$$0$$2$

Invariants

Conductor: $\frak{N}$ = \((21,a+10)\) = \((3,a+1)\cdot(7,a+3)\)
Copy content comment:Compute the conductor
 
Copy content sage:E.conductor()
 
Copy content gp:ellglobalred(E)[1]
 
Copy content magma:Conductor(E);
 
Copy content oscar:conductor(E)
 
Conductor norm: $N(\frak{N})$ = \( 21 \) = \(3\cdot7\)
Copy content comment:Compute the norm of the conductor
 
Copy content sage:E.conductor().norm()
 
Copy content gp:idealnorm(K, ellglobalred(E)[1])
 
Copy content magma:Norm(Conductor(E));
 
Copy content oscar:norm(conductor(E))
 
Discriminant: $\Delta$ = $1995068880a-79350787593$
Discriminant ideal: $(\Delta)$ = \((1995068880a-79350787593)\) = \((3,a+1)^{16}\cdot(7,a+3)^{2}\cdot(11,a)^{12}\)
Copy content comment:Compute the discriminant
 
Copy content sage:E.discriminant()
 
Copy content gp:E.disc
 
Copy content magma:Discriminant(E);
 
Copy content oscar:discriminant(E)
 
Discriminant norm: $N(\Delta)$ = \( 6619853484848397310209 \) = \(3^{16}\cdot7^{2}\cdot11^{12}\)
Copy content comment:Compute the norm of the discriminant
 
Copy content sage:E.discriminant().norm()
 
Copy content gp:norm(E.disc)
 
Copy content magma:Norm(Discriminant(E));
 
Copy content oscar:norm(discriminant(E))
 
Minimal discriminant: $\frak{D}_{\mathrm{min}}$ = \((45927)\) = \((3,a+1)^{16}\cdot(7,a+3)^{2}\)
Minimal discriminant norm: $N(\frak{D}_{\mathrm{min}})$ = \( 2109289329 \) = \(3^{16}\cdot7^{2}\)
j-invariant: $j$ = \( \frac{6570725617}{45927} \)
Copy content comment:Compute the j-invariant
 
Copy content sage:E.j_invariant()
 
Copy content gp:E.j
 
Copy content magma:jInvariant(E);
 
Copy content oscar:j_invariant(E)
 
Endomorphism ring: $\mathrm{End}(E)$ = \(\Z\)   
Geometric endomorphism ring: $\mathrm{End}(E_{\overline{\Q}})$ = \(\Z\)    (no potential complex multiplication)
Copy content comment:Test for Complex Multiplication
 
Copy content sage:E.has_cm(), E.cm_discriminant()
 
Copy content magma:HasComplexMultiplication(E);
 
Sato-Tate group: $\mathrm{ST}(E)$ = $\mathrm{SU}(2)$

BSD invariants

Analytic rank: $r_{\mathrm{an}}$= \( 1 \)
Copy content comment:Compute the Mordell-Weil rank
 
Copy content sage:E.rank()
 
Copy content magma:Rank(E);
 
Mordell-Weil rank: $r$ = \(1\)
Regulator: $\mathrm{Reg}(E/K)$ \( 1.3192544115670790874427516950298956331 \)
Néron-Tate Regulator: $\mathrm{Reg}_{\mathrm{NT}}(E/K)$ \( 2.6385088231341581748855033900597912662 \)
Global period: $\Omega(E/K)$ \( 3.4483077185485079225446290683660727928 \)
Tamagawa product: $\prod_{\frak{p}}c_{\frak{p}}$= \( 32 \)  =  \(2^{4}\cdot2\cdot1\)
Torsion order: $\#E(K)_{\mathrm{tor}}$= \(2\)
Special value: $L^{(r)}(E/K,1)/r!$ \( 3.3119287613777077772182700157150323028 \)
Analytic order of Ш: Ш${}_{\mathrm{an}}$= \( 1 \) (rounded)

BSD formula

$$\begin{aligned}3.311928761 \approx L'(E/K,1) & \overset{?}{=} \frac{ \# ะจ(E/K) \cdot \Omega(E/K) \cdot \mathrm{Reg}_{\mathrm{NT}}(E/K) \cdot \prod_{\mathfrak{p}} c_{\mathfrak{p}} } { \#E(K)_{\mathrm{tor}}^2 \cdot \left|d_K\right|^{1/2} } \\ & \approx \frac{ 1 \cdot 3.448308 \cdot 2.638509 \cdot 32 } { {2^2 \cdot 21.977261} } \\ & \approx 3.311928761 \end{aligned}$$

Local data at primes of bad reduction

Copy content comment:Compute the local reduction data at primes of bad reduction
 
Copy content sage:E.local_data()
 
Copy content magma:LocalInformation(E);
 

This elliptic curve is semistable. There are 2 primes $\frak{p}$ of bad reduction. Primes of good reduction for the curve but which divide the discriminant of the model above (if any) are included.

$\mathfrak{p}$ $N(\mathfrak{p})$ Tamagawa number Kodaira symbol Reduction type Root number \(\mathrm{ord}_{\mathfrak{p}}(\mathfrak{N}\)) \(\mathrm{ord}_{\mathfrak{p}}(\mathfrak{D}_{\mathrm{min}}\)) \(\mathrm{ord}_{\mathfrak{p}}(\mathrm{den}(j))\)
\((3,a+1)\) \(3\) \(16\) \(I_{16}\) Split multiplicative \(-1\) \(1\) \(16\) \(16\)
\((7,a+3)\) \(7\) \(2\) \(I_{2}\) Split multiplicative \(-1\) \(1\) \(2\) \(2\)
\((11,a)\) \(11\) \(1\) \(I_0\) Good \(1\) \(0\) \(0\) \(0\)

Galois Representations

The mod \( p \) Galois Representation has maximal image for all primes \( p < 1000 \) except those listed.

prime Image of Galois Representation
\(2\) 2Cs

Isogenies and isogeny class

This curve has non-trivial cyclic isogenies of degree \(d\) for \(d=\) 2, 4 and 8.
Its isogeny class 21.1-d consists of curves linked by isogenies of degrees dividing 8.

Base change

This elliptic curve is a \(\Q\)-curve. It is the base change of the following 2 elliptic curves:

Base field Curve
\(\Q\) 441.f3
\(\Q\) 11109.d3