6.7 KiB
Extracted Equations from Today's Articles and Theory Documents
1. From CERN / Physics Articles
Muon g-2 (Fermilab 2025 / Nature / PNAS)
Anomalous magnetic moment:
a_μ = (|g| - 2) / 2 = 0.001165920705(114)
Precision:
σ = 0.127 ppm (0.000000114)
Standard Model prediction (now matched):
a_μ^theory = a_μ^experiment within 0.5σ
g-factor:
g_μ = -2.00233184122(82)
Magnetic moment relation:
μ = g · (eℏ / 2m) · S
2. From Fractional Unified Field Theory
Unified fractional field equation
(D_t^α + (-∇²)^β) Ψ = λ |Ψ|^γ Ψ
Where:
D^α= fractional derivative of order αλ= foam-level coupling constantβ= self-interaction nonlinearity exponentγ= interaction power
Riesz fractional derivative
D^α f(x) = F^{-1}[ |k|^α · F[f](k) ]
Eigenfunctions: exp(i k x) with eigenvalues |k|^α
Force emergence (resonant quantization)
| Force | α | 1/α |
|---|---|---|
| Electromagnetism | 1 | 1 |
| Weak | 1/2 | 2 |
| Strong | 1/3 | 3 |
| Gravity | 1/4 | 4 |
Anthropic shear transformation
Ψ_observed(x, t) = ∫ K_θ(x - x') Ψ_unified(x', t) dx'
Mode weight under shear
w(α, θ) = sin(θ)^α · cos(θ)^{1-α}
Coupling hierarchy
g_n(θ_obs) = g_0 · sin(θ_obs)^{1/n} · cos(θ_obs)^{1 - 1/n}
Charge quantization
Q_n = (1/2π) ∮_C ∇_n φ · dn = m/n for m ∈ ℤ
3. From Torsional Cosmology
Torsional spacetime metric
ds² = -dθ²/ω(θ)² + a(θ)² [dr²/(1-kr²) + r² dΩ²] + ℓ_P² dθ² Γ(θ)
Variable torsional rotation cases
| Case | ω(θ) | Expansion a(t) |
|---|---|---|
| Constant | ω_0 | Exponential |
| Accelerating | ω_0 · θ | Super-exponential |
| Decelerating | ω_0 / θ | Power-law |
| Oscillating | ω_0 · sin(θ/θ_0) | Cyclic / bounce |
| Damping | ω_0 · exp(-θ/θ_c) | Asymptotic halt |
Hubble parameter
H_eff = ω(θ)
Dark energy as residual torsion
ρ_DE(θ) = ρ_foam · (1 - θ/θ_max)²
Bekenstein bound on fractal
S(R) ≤ C' · R^{D_H} · T^{(D_H - 1)}
For D_H = 1.44:
S ≤ C' · R^{1.44} · T^{0.44}
4. From Recursive Branch-Cut Self-Similarity
Hyperbolic area growth
A(r) = 2π (cosh(r) - 1) ≈ π · exp(r) for r >> 1
Scaling factor
L_{n+1} / L_n ≈ exp(d_inj) ≈ Φ² ≈ 2.618
Spectral dimension
D_s = 2 D_H / (1 + D_H)
For D_H = 2 (sheet-like foam):
D_s = 4/3 ≈ 1.333
Energy eigenvalue density
ρ(E) ~ E^{D_s/2 - 1} = E^{-1/3}
Mode quantization
E_n ~ n³
CMB spectral index
n_s = 1 - 2/(1 + θ_max/θ_recombination) ≈ 0.965
5. From Thermodynamic Tests
Landauer limit
E_dissipated ≥ k_B T · ln(2) per bit erased
Shannon entropy
H(X) = -Σ p(x) log p(x)
Bekenstein bound (standard)
S ≤ 2π R E / (ℏ c ln 2) = A / (4 G ℏ)
Debye specific heat (3D)
C_V = (12π⁴/5) N k_B (T/Θ_D)³ ∝ T³
Fractal specific heat
C_V ∝ T^{D_s}
For D_s = 1.18:
C_V ∝ T^{1.18}
Jarzynski equality
⟨exp(-β W)⟩ = exp(-β ΔF)
Thermodynamic uncertainty relation
(ΔJ)² / ⟨J⟩² · σ ≥ 2 k_B
6. From Quantum Uncertainty / Double-Slit
Heisenberg uncertainty (derived from torsional sampling)
Δx · Δp ≥ ℏ/2
where ℏ ≡ Δθ_min (minimum resolvable phase interval)
Double-slit interference
Ψ_total = Ψ_A + Ψ_B = A · exp(i ω_Ψ θ) · [exp(i k_Ψ x_A) + exp(i k_Ψ x_B)]
|Ψ_total|² = 2|A|² · [1 + cos(k_Ψ (x_A - x_B))]
Planck relation
E = ℏ ω = ω_Ψ (in natural units ℏ = 1)
de Broglie relation
p = ℏ k = dθ_0/dx = k_Ψ
λ = 2π / k_Ψ = 2π / p
7. From Universal Evolutionary Equation
Core equation
Phenotype(x, t) = Ψ_E [ Genotype(x) × Regulatory_State(t) ]
Compression analog
Residual(n) = Ψ_decode [ Basis, Context(n) ] XOR Byte(n)
Spectral entropy bound
H_Ψ(data) = -Σ_n p(n) log_2 p_Ψ(n) ≤ H_uniform(data) = 8 bits/byte
8. From van der Waals / Moiré Physics
Moiré superlattice period
λ = a / (2 sin(θ/2))
For small θ:
λ ≈ a / θ
Torsional force microscopy
Moiré period ~14.1 nm at twist angle ~0.99° (TBG)
9. From PIST Formalism
Composite address
CompositeAddress = (Tree, Surface, Torus, Shell)
Basis fusion operator
Ψ(A, B) = A ∩ B ∪ (A \ B) ∪ (B \ A) ∪ Bridge(A, B)
Mirror involution
t → 2k + 1 - t
Gear ratio (AngrySphinx)
G_AS = 1 + α · L_FAMM + β · R + γ · U + δ · H
10. From Plant Acoustics / Biology
Cavitation frequency (plant screams)
f_cav ≈ 30-50 clicks/hour (stressed plants)
f_cav ≈ 0 clicks/hour (healthy plants)
Species classification
ML classifier:
P(species | sound_pattern) > threshold
Distinguishes:
- Dehydrated vs. cut
- Tomato vs. tobacco
11. From DNA / Genetics
Genetic code mapping
f: ℤ₄ × ℤ₄ × ℤ₄ → ℤ₂₀ ∪ {stop}
64 codons → 20 amino acids + 1 start + 3 stop
Supergene (inversion) structure
Normal: A-B-C-D-E-F-G
Inverted: A-B-F-E-D-C-G
└─inversion─┘
Recombination blocked: P(recomb inside inversion) ≈ 0
Horizontal gene transfer
Beetle_Genome' = Beetle_Genome + Bacterial_Gene_HhMAN1
Flanked by transposable elements:
...[TE1]-HhMAN1-[TE2]...
Summary Table: All Equations by Domain
| Domain | Key Equation | Physical Meaning |
|---|---|---|
| Particle physics | a_μ = 0.001165920705(114) |
Muon magnetic anomaly |
| Unified field | `D^α Ψ = λ | Ψ |
| Cosmology | H_eff = ω(θ) |
Torsional Hubble parameter |
| Thermodynamics | E_diss ≥ k_B T ln(2) |
Landauer limit |
| Quantum | Δx·Δp ≥ ℏ/2 |
Uncertainty from phase sampling |
| Evolution | Phenotype = Ψ_E[Genotype × Context] |
Universal decode |
| Materials | λ = a/(2 sin(θ/2)) |
Moiré superlattice period |
| Compression | Residual = Ψ[Basis, Context] XOR Data |
Moiré decoder |
| Biology | f: ℤ₄³ → ℤ₂₀ |
Genetic code as basis fusion |
Compiled from: fractional_unified_field.md, torsional_cosmology_spin.md, thermodynamic_test_recursive_branch_cut.md, uncertainty_from_torsional_vibration.md, universal_evolutionary_equation.md, variable_omega_edge_anomalies.md, and SciTechDaily articles on muon g-2, plant acoustics, DNA inversions, evolution cheat sheet, horizontal gene transfer, and Sox9/Alzheimer's.