Landscape




$a$ =

$c$ =

$\leq a \leq$

$\leq c \leq$

id =





Chosen Fixed Point

Here is the data for the chosen fixed point.
$F_{UV}$ represents the flavor symmetries in the UV Lagrangian, and $F_{IR}$ represents the flavor symmetries in the IR. $F_{UV}$ and $F_{IR}$ can differ due to accidental symmetry enhancement.
The number of marginal operators, $n_{marginal}$, minus the dimension of flavor symmetries in IR, $|F_{IR}|$, corresponds to the coefficient of $t^6$ in the superconformal index.

#TheorySuperpotentialCentral charge $a$Central charge $c$Ratio $a/c$Matter field: $R$-chargeU(1) part of $F_{UV}$Rank of $F_{UV}$Rational
5763 SU2adj1nf2 ${}M_{1}q_{1}q_{2}$ + ${ }\phi_{1}^{2}\tilde{q}_{1}\tilde{q}_{2}$ + ${ }M_{2}q_{1}\tilde{q}_{1}$ + ${ }M_{3}q_{2}\tilde{q}_{2}$ + ${ }M_{4}q_{2}\tilde{q}_{1}$ + ${ }M_{2}M_{4}$ + ${ }M_{1}M_{3}$ + ${ }M_{3}M_{5}$ + ${ }M_{6}\tilde{q}_{1}\tilde{q}_{2}$ + ${ }M_{4}M_{7}$ + ${ }M_{8}q_{1}\tilde{q}_{2}$ + ${ }M_{9}\phi_{1}q_{2}^{2}$ 0.7323 0.9237 0.7928 [M:[0.9686, 0.9057, 1.0314, 1.0943, 0.9686, 0.9686, 0.9057, 0.8429, 0.6729], q:[0.61, 0.4214], qb:[0.4843, 0.5471], phi:[0.4843]] [M:[[-2], [-6], [2], [6], [-2], [-2], [-6], [-10], [11]], q:[[7], [-5]], qb:[[-1], [3]], phi:[[-1]]] 1
Relevant OperatorsMarginal Operators$n_{marginal}$$-$$|F_{IR}|$Superconformal IndexRefined index
${}M_{9}$, ${ }M_{8}$, ${ }M_{2}$, ${ }M_{7}$, ${ }M_{1}$, ${ }M_{5}$, ${ }M_{6}$, ${ }\phi_{1}^{2}$, ${ }M_{9}^{2}$, ${ }\phi_{1}q_{2}\tilde{q}_{1}$, ${ }\phi_{1}\tilde{q}_{1}^{2}$, ${ }\phi_{1}q_{2}\tilde{q}_{2}$, ${ }M_{8}M_{9}$, ${ }\phi_{1}q_{1}q_{2}$, ${ }\phi_{1}\tilde{q}_{1}\tilde{q}_{2}$, ${ }M_{2}M_{9}$, ${ }M_{7}M_{9}$, ${ }\phi_{1}q_{1}\tilde{q}_{1}$, ${ }\phi_{1}\tilde{q}_{2}^{2}$, ${ }M_{1}M_{9}$, ${ }M_{5}M_{9}$, ${ }M_{6}M_{9}$, ${ }M_{9}\phi_{1}^{2}$, ${ }\phi_{1}q_{1}\tilde{q}_{2}$, ${ }M_{8}^{2}$, ${ }\phi_{1}q_{1}^{2}$, ${ }M_{2}M_{8}$, ${ }M_{7}M_{8}$, ${ }M_{2}^{2}$, ${ }M_{2}M_{7}$, ${ }M_{7}^{2}$, ${ }M_{1}M_{8}$, ${ }M_{5}M_{8}$, ${ }M_{6}M_{8}$, ${ }M_{8}\phi_{1}^{2}$, ${ }M_{1}M_{2}$, ${ }M_{2}M_{5}$, ${ }M_{2}M_{6}$, ${ }M_{1}M_{7}$, ${ }M_{5}M_{7}$, ${ }M_{6}M_{7}$, ${ }M_{2}\phi_{1}^{2}$, ${ }M_{7}\phi_{1}^{2}$, ${ }M_{1}^{2}$, ${ }M_{1}M_{5}$, ${ }M_{5}^{2}$, ${ }M_{1}M_{6}$, ${ }M_{5}M_{6}$, ${ }M_{6}^{2}$, ${ }M_{1}\phi_{1}^{2}$, ${ }M_{5}\phi_{1}^{2}$, ${ }M_{6}\phi_{1}^{2}$, ${ }\phi_{1}^{4}$ ${}$ -4 t^2.019 + t^2.529 + 2*t^2.717 + 4*t^2.906 + t^4.037 + t^4.17 + 2*t^4.359 + 3*t^4.547 + 4*t^4.736 + 5*t^4.924 + t^5.057 + t^5.113 + 2*t^5.246 + 6*t^5.434 + 6*t^5.623 + 7*t^5.811 - 4*t^6. + t^6.056 - 3*t^6.189 + 2*t^6.566 + t^6.699 + 4*t^6.754 + 3*t^6.887 + 5*t^6.943 + 7*t^7.076 + t^7.131 + 10*t^7.264 + 11*t^7.453 + t^7.586 + 9*t^7.641 + 2*t^7.774 + 6*t^7.83 + 6*t^7.963 - 4*t^8.019 + t^8.074 + 8*t^8.151 - 5*t^8.207 + 12*t^8.34 + 5*t^8.529 + 2*t^8.584 + 2*t^8.717 + 4*t^8.773 - 16*t^8.906 + 5*t^8.961 - t^4.453/y - t^6.471/y - t^6.981/y - t^7.17/y - (3*t^7.359)/y + (4*t^7.547)/y + (3*t^7.736)/y + (5*t^7.924)/y + (2*t^8.246)/y + (6*t^8.434)/y - t^8.49/y + (8*t^8.623)/y + (6*t^8.811)/y - t^4.453*y - t^6.471*y - t^6.981*y - t^7.17*y - 3*t^7.359*y + 4*t^7.547*y + 3*t^7.736*y + 5*t^7.924*y + 2*t^8.246*y + 6*t^8.434*y - t^8.49*y + 8*t^8.623*y + 6*t^8.811*y g1^11*t^2.019 + t^2.529/g1^10 + (2*t^2.717)/g1^6 + (4*t^2.906)/g1^2 + g1^22*t^4.037 + t^4.17/g1^7 + (2*t^4.359)/g1^3 + 3*g1*t^4.547 + 4*g1^5*t^4.736 + 5*g1^9*t^4.924 + t^5.057/g1^20 + g1^13*t^5.113 + (2*t^5.246)/g1^16 + (6*t^5.434)/g1^12 + (6*t^5.623)/g1^8 + (7*t^5.811)/g1^4 - 4*t^6. + g1^33*t^6.056 - 3*g1^4*t^6.189 + 2*g1^12*t^6.566 + t^6.699/g1^17 + 4*g1^16*t^6.754 + (3*t^6.887)/g1^13 + 5*g1^20*t^6.943 + (7*t^7.076)/g1^9 + g1^24*t^7.131 + (10*t^7.264)/g1^5 + (11*t^7.453)/g1 + t^7.586/g1^30 + 9*g1^3*t^7.641 + (2*t^7.774)/g1^26 + 6*g1^7*t^7.83 + (6*t^7.963)/g1^22 - 4*g1^11*t^8.019 + g1^44*t^8.074 + (8*t^8.151)/g1^18 - 5*g1^15*t^8.207 + (12*t^8.34)/g1^14 + (5*t^8.529)/g1^10 + 2*g1^23*t^8.584 + (2*t^8.717)/g1^6 + 4*g1^27*t^8.773 - (16*t^8.906)/g1^2 + 5*g1^31*t^8.961 - t^4.453/(g1*y) - (g1^10*t^6.471)/y - t^6.981/(g1^11*y) - t^7.17/(g1^7*y) - (3*t^7.359)/(g1^3*y) + (4*g1*t^7.547)/y + (3*g1^5*t^7.736)/y + (5*g1^9*t^7.924)/y + (2*t^8.246)/(g1^16*y) + (6*t^8.434)/(g1^12*y) - (g1^21*t^8.49)/y + (8*t^8.623)/(g1^8*y) + (6*t^8.811)/(g1^4*y) - (t^4.453*y)/g1 - g1^10*t^6.471*y - (t^6.981*y)/g1^11 - (t^7.17*y)/g1^7 - (3*t^7.359*y)/g1^3 + 4*g1*t^7.547*y + 3*g1^5*t^7.736*y + 5*g1^9*t^7.924*y + (2*t^8.246*y)/g1^16 + (6*t^8.434*y)/g1^12 - g1^21*t^8.49*y + (8*t^8.623*y)/g1^8 + (6*t^8.811*y)/g1^4


Deformation

Here is the data for the deformed fixed points from the chosen fixed point.

#SuperpotentialCentral Charge $a$ Central Charge $c$ Ratio $a/c$$R$-chargesSuperconformal IndexMore Info.Rational


Equivalent Fixed Points from Other Seed Theories

Here is a list of equivalent fixed points from other gauge theories.

#TheorySuperpotentialCentral Charge $a$ Central Charge $c$ Ratio $a/c$$R$-chargesSuperconformal IndexMore Info.Rational


Equivalent Fixed Points from the Same Seed Theory

Below is a list of equivalent fixed points from the same seed theories.

id Theory Superpotential Central Charge $a$ Central Charge $c$ Ratio $a/c$ $R$-charges More Info. Rational


Previous Theory

The previous fixed point before deforming to get the chosen fixed point.

#TheorySuperpotentialCentral Charge $a$ Central Charge $c$ Ratio $a/c$$R$-chargesSuperconformal IndexMore Info.Rational
4311 SU2adj1nf2 ${}M_{1}q_{1}q_{2}$ + ${ }\phi_{1}^{2}\tilde{q}_{1}\tilde{q}_{2}$ + ${ }M_{2}q_{1}\tilde{q}_{1}$ + ${ }M_{3}q_{2}\tilde{q}_{2}$ + ${ }M_{4}q_{2}\tilde{q}_{1}$ + ${ }M_{2}M_{4}$ + ${ }M_{1}M_{3}$ + ${ }M_{3}M_{5}$ + ${ }M_{6}\tilde{q}_{1}\tilde{q}_{2}$ + ${ }M_{4}M_{7}$ + ${ }M_{8}q_{1}\tilde{q}_{2}$ 0.7115 0.8827 0.806 [M:[0.9681, 0.9043, 1.0319, 1.0957, 0.9681, 0.9681, 0.9043, 0.8405], q:[0.6116, 0.4203], qb:[0.4841, 0.5478], phi:[0.4841]] t^2.522 + 2*t^2.713 + 4*t^2.904 + t^3.974 + t^4.165 + 2*t^4.356 + 2*t^4.548 + 2*t^4.739 + t^4.931 + t^5.043 + t^5.122 + 2*t^5.235 + 6*t^5.426 + 6*t^5.617 + 7*t^5.809 - 4*t^6. - t^4.452/y - t^4.452*y detail