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Mathematical Equations for Theoretical Physics
Mathematical Equations for Theoretical Physics
11 days ago

\newcommand{\bea}{\begin{eqnarray}} \newcommand{\eea}{\end{eqnarray}}

Created 11 days ago · 2 comments· 0 likes

Atomix XL v4 Lightning

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Creation Summary by Vincent

Mathematical Equations for Theoretical Physics

This image displays complex mathematical equations and symbols, likely related to theoretical physics or advanced mathematics. It features equations with tensor notation and differential calculus.

Created by PeaceLoveAbundanceHarmony on Dec 1, 2025 using the Atomix XL v4 Lightning AI image generator model.


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Super

2025-12-03T14:32:05.158ZReply
PRO

Impressive scene - could be a perfect background for more

Creation Settings

Text Prompts
\newcommand{\bea}{\begin{eqnarray}} \newcommand{\eea}{\end{eqnarray}}
Weight: 1
\bea\label{V1} G_{00}+G_{11}=(\alpha^2+\beta^2)g_{MN}\frac{d\tilde{X}^M}{d\xi}\frac{d\tilde{X}^N}{d\xi} +2\beta\Lambda^\mu g_{\mu N} \frac{d\tilde{X}^N}{d\xi} +\Lambda^\mu\Lambda^\nu g_{\mu \nu} =0,\eea \bea\label{V2} G_{01}&=&\alpha\beta g_{MN}\frac{d\tilde{X}^M}{d\xi}\frac{d\tilde{X}^N}{d\xi}+\alpha\Lambda^\mu g_{\mu ...
Weight: 1.7
\bea\nn &&-(\alpha^2-\beta^2)\left[g_{LK}\frac{d^2\tilde{X}^K}{d\xi^2}+ \Gamma_{L,MN}\frac{d\tilde{X}^M}{d\xi}\frac{d\tilde{X}^N}{d\xi}\right] +2\beta\Lambda^\mu\Gamma_{L,\mu N}\frac{d\tilde{X}^N}{d\xi} +\Lambda^\mu\Lambda^\nu \Gamma_{L,\mu\nu} \\ \label{EM} &&= \alpha\Lambda^\mu H_{L\mu N}\frac{d\tilde{X}^N}{d\xi},\eea \bea\label{Q} ...
Weight: 2.5
Model
Atomix XL v4 Lightning
CKPT

Atomix XL v4 Lightning

Initial Resolution

Medium

Aspect Ratio

1:1

Runtime

Long

Overall Prompt Weight

95%

Prompt to Edit Settings

Model

Qwen Image Edit Plus

Prompts
Take a section of \(\mathbf{T\mathbb{C} \otimes T^*\mathcal{O}}\) (i.e. a vector field on the conifold tensored with a 1-form on the orbifold) and apply the **exterior covariant derivative only on the orbifold side**, then contract or antisymmetrize in a way that produces genuine curvature or rotation. $$ \mathbf{R_\xi ...
Original Image
\newcommand{\bea}{\begin{eqnarray}}
\newcommand{\eea}{\end{eqnarray}}

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