Minimal Weierstrass equation
Minimal Weierstrass equation
Simplified equation
\(y^2=x^3-279147x-56595814\)
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(homogenize, simplify) |
\(y^2z=x^3-279147xz^2-56595814z^3\)
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(dehomogenize, simplify) |
\(y^2=x^3-279147x-56595814\)
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(homogenize, minimize) |
Mordell-Weil group structure
\(\Z\)
Mordell-Weil generators
$P$ | $\hat{h}(P)$ | Order |
---|---|---|
$(-305, 414)$ | $3.2724349861499937000163527019$ | $\infty$ |
Integral points
\((-305,\pm 414)\)
Invariants
Conductor: | $N$ | = | \( 87120 \) | = | $2^{4} \cdot 3^{2} \cdot 5 \cdot 11^{2}$ |
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Discriminant: | $\Delta$ | = | $8393816014848000$ | = | $2^{21} \cdot 3^{7} \cdot 5^{3} \cdot 11^{4} $ |
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j-invariant: | $j$ | = | \( \frac{55025549689}{192000} \) | = | $2^{-9} \cdot 3^{-1} \cdot 5^{-3} \cdot 11^{2} \cdot 769^{3}$ |
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Endomorphism ring: | $\mathrm{End}(E)$ | = | $\Z$ | |||
Geometric endomorphism ring: | $\mathrm{End}(E_{\overline{\Q}})$ | = | \(\Z\) (no potential complex multiplication) |
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Sato-Tate group: | $\mathrm{ST}(E)$ | = | $\mathrm{SU}(2)$ | |||
Faltings height: | $h_{\mathrm{Faltings}}$ | ≈ | $1.9181389591360868628981891624$ |
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Stable Faltings height: | $h_{\mathrm{stable}}$ | ≈ | $-0.12361279002403680690398010351$ |
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$abc$ quality: | $Q$ | ≈ | $0.9969513053929001$ | |||
Szpiro ratio: | $\sigma_{m}$ | ≈ | $4.328079447366612$ |
BSD invariants
Analytic rank: | $r_{\mathrm{an}}$ | = | $ 1$ |
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Mordell-Weil rank: | $r$ | = | $ 1$ |
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Regulator: | $\mathrm{Reg}(E/\Q)$ | ≈ | $3.2724349861499937000163527019$ |
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Real period: | $\Omega$ | ≈ | $0.20774588862451474363101963177$ |
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Tamagawa product: | $\prod_{p}c_p$ | = | $ 12 $ = $ 2\cdot2\cdot3\cdot1 $ |
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Torsion order: | $\#E(\Q)_{\mathrm{tor}}$ | = | $1$ |
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Special value: | $ L'(E,1)$ | ≈ | $8.1580189699641844659473448185 $ |
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Analytic order of Ш: | Ш${}_{\mathrm{an}}$ | ≈ | $1$ (rounded) |
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BSD formula
$$\begin{aligned} 8.158018970 \approx L'(E,1) & = \frac{\# ะจ(E/\Q)\cdot \Omega_E \cdot \mathrm{Reg}(E/\Q) \cdot \prod_p c_p}{\#E(\Q)_{\rm tor}^2} \\ & \approx \frac{1 \cdot 0.207746 \cdot 3.272435 \cdot 12}{1^2} \\ & \approx 8.158018970\end{aligned}$$
Modular invariants
Modular form 87120.2.a.fb
For more coefficients, see the Downloads section to the right.
Modular degree: | 497664 |
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$ \Gamma_0(N) $-optimal: | no | |
Manin constant: | 1 |
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Local data at primes of bad reduction
This elliptic curve is not semistable. There are 4 primes $p$ of bad reduction:
$p$ | Tamagawa number | Kodaira symbol | Reduction type | Root number | $\mathrm{ord}_p(N)$ | $\mathrm{ord}_p(\Delta)$ | $\mathrm{ord}_p(\mathrm{den}(j))$ |
---|---|---|---|---|---|---|---|
$2$ | $2$ | $I_{13}^{*}$ | additive | -1 | 4 | 21 | 9 |
$3$ | $2$ | $I_{1}^{*}$ | additive | -1 | 2 | 7 | 1 |
$5$ | $3$ | $I_{3}$ | split multiplicative | -1 | 1 | 3 | 3 |
$11$ | $1$ | $IV$ | additive | -1 | 2 | 4 | 0 |
Galois representations
The $\ell$-adic Galois representation has maximal image for all primes $\ell$ except those listed in the table below.
prime $\ell$ | mod-$\ell$ image | $\ell$-adic image |
---|---|---|
$3$ | 3B | 3.4.0.1 |
The image $H:=\rho_E(\Gal(\overline{\Q}/\Q))$ of the adelic Galois representation has level \( 120 = 2^{3} \cdot 3 \cdot 5 \), index $16$, genus $0$, and generators
$\left(\begin{array}{rr} 97 & 6 \\ 51 & 19 \end{array}\right),\left(\begin{array}{rr} 61 & 6 \\ 63 & 19 \end{array}\right),\left(\begin{array}{rr} 1 & 0 \\ 6 & 1 \end{array}\right),\left(\begin{array}{rr} 4 & 3 \\ 9 & 7 \end{array}\right),\left(\begin{array}{rr} 115 & 6 \\ 114 & 7 \end{array}\right),\left(\begin{array}{rr} 89 & 114 \\ 27 & 101 \end{array}\right),\left(\begin{array}{rr} 22 & 93 \\ 119 & 14 \end{array}\right),\left(\begin{array}{rr} 3 & 4 \\ 8 & 11 \end{array}\right),\left(\begin{array}{rr} 1 & 6 \\ 0 & 1 \end{array}\right)$.
The torsion field $K:=\Q(E[120])$ is a degree-$2211840$ Galois extension of $\Q$ with $\Gal(K/\Q)$ isomorphic to the projection of $H$ to $\GL_2(\Z/120\Z)$.
The table below list all primes $\ell$ for which the Serre invariants associated to the mod-$\ell$ Galois representation are exceptional.
$\ell$ | Reduction type | Serre weight | Serre conductor |
---|---|---|---|
$2$ | additive | $4$ | \( 5445 = 3^{2} \cdot 5 \cdot 11^{2} \) |
$3$ | additive | $8$ | \( 1936 = 2^{4} \cdot 11^{2} \) |
$5$ | split multiplicative | $6$ | \( 17424 = 2^{4} \cdot 3^{2} \cdot 11^{2} \) |
$11$ | additive | $52$ | \( 720 = 2^{4} \cdot 3^{2} \cdot 5 \) |
Isogenies
This curve has non-trivial cyclic isogenies of degree $d$ for $d=$
3.
Its isogeny class 87120.fb
consists of 2 curves linked by isogenies of
degree 3.
Twists
The minimal quadratic twist of this elliptic curve is 3630.g1, its twist by $12$.
Growth of torsion in number fields
The number fields $K$ of degree less than 24 such that $E(K)_{\rm tors}$ is strictly larger than $E(\Q)_{\rm tors}$ (which is trivial) are as follows:
$[K:\Q]$ | $K$ | $E(K)_{\rm tors}$ | Base change curve |
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$2$ | \(\Q(\sqrt{-1}) \) | \(\Z/3\Z\) | not in database |
$3$ | 3.3.14520.1 | \(\Z/2\Z\) | not in database |
$6$ | 6.6.25299648000.1 | \(\Z/2\Z \oplus \Z/2\Z\) | not in database |
$6$ | 6.2.165990990528.8 | \(\Z/3\Z\) | not in database |
$6$ | 6.0.3373286400.2 | \(\Z/6\Z\) | not in database |
$12$ | deg 12 | \(\Z/4\Z\) | not in database |
$12$ | deg 12 | \(\Z/3\Z \oplus \Z/3\Z\) | not in database |
$12$ | deg 12 | \(\Z/2\Z \oplus \Z/6\Z\) | not in database |
$18$ | 18.0.41355172574787727718417019456000000000000.2 | \(\Z/9\Z\) | not in database |
$18$ | 18.6.292707279705019160565451201003388928000000.1 | \(\Z/6\Z\) | not in database |
We only show fields where the torsion growth is primitive. For fields not in the database, click on the degree shown to reveal the defining polynomial.
Iwasawa invariants
$p$ | 2 | 3 | 5 | 7 | 11 | 13 | 17 | 19 | 23 | 29 | 31 | 37 | 41 | 43 | 47 |
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Reduction type | add | add | split | ord | add | ord | ord | ord | ord | ord | ord | ord | ss | ord | ord |
$\lambda$-invariant(s) | - | - | 2 | 3 | - | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1,1 | 1 | 1 |
$\mu$-invariant(s) | - | - | 0 | 0 | - | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0,0 | 0 | 0 |
An entry - indicates that the invariants are not computed because the reduction is additive.
$p$-adic regulators
$p$-adic regulators are not yet computed for curves that are not $\Gamma_0$-optimal.