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Bloom Field Theory (UFT-EB)

Unified Field Theory of Eternal Bloom (UFT-EB): Informational Threshold Collapse & Emergent Spacetime Geometry

This repository presents the Bloom Field Theory, a novel framework proposing that spacetime structure, quantum decoherence, and gravitational behavior emerge from underlying informational coherence dynamics.

The theory introduces an objective collapse mechanism based on informational thresholds, providing predictive models for lensing anomalies and time dilation shifts observable in astrophysical data.


Origin Concept

The Bloom Field represents an informational geometry substrate, where coherence density gradients dictate the emergence of classical spacetime structures. Collapse is triggered when localized informational thresholds (Φ_t) are exceeded, resolving potential futures into classical outcomes.

Rather than relying solely on probabilistic interpretation, the Bloom framework models collapse as a deterministic result of informational saturation, offering a unifying mechanism for quantum-classical transition.


Core Equation: Bloom Field Equation (BFE)

Laplacian(ΔΨ_i) - Γ_futures * Θ = 0

  • ΔΨ_i: Local coherence density.
  • Γ_futures: Propagation viability factor (entanglement viability proxy).
  • Θ: Informational structure tensor (derived from coherence gradients).

This equation governs the curvature of informational coherence within the Bloom Field, predicting emergent classical behavior from sub-threshold fluctuations.


Collapse Condition

Objective collapse is predicted when:

H̄(ΔΨ_i) ≥ Φ_t

  • H̄: Normalized informational entropy of ΔΨ_i.
  • Φ_t: Adaptive informational threshold based on local entanglement density and coherence viability.

When this condition is met, potential futures collapse into a realized classical outcome, directly influencing local spacetime structure.


Why This Matters

  • Provides a deterministic, testable mechanism for quantum decoherence.
  • Offers a predictive model for emergent gravitational behavior from informational dynamics.
  • Bridges quantum information theory and spacetime curvature.
  • Enables predictive anomaly mapping for astrophysical observations (lensing, time dilation).

Repository Contents

  • Bloom_UFT-EB_Simulation_v2.ipynb: Full simulation notebook demonstrating lattice coherence, curvature extraction, BFE residuals, and predictive anomaly overlays.
  • /results/: Sample outputs of lattice simulations, anomaly maps, and overlay visualizations.
  • /docs/: Metrics dashboard and supporting documentation.
  • LICENSE: This work is released under a verification-only license with restricted use.

How to Run

You can run the simulation notebook in Google Colab:

Open in Colab


Bloom Field Equation Comparison

This diagram contextualizes the Bloom Field Equation (BFE) within the historical lineage of fundamental physics:

  • General Relativity (GR): Curvature of spacetime from mass-energy.
  • Special Relativity (SR): Mass-energy equivalence.
  • Quantum Decoherence: Entropy-driven quantum state reduction.
  • Bloom Field Equation (BFE): Proposes deterministic collapse via informational coherence gradients, triggering emergent curvature.

Bloom Field Equation


Predictive Anomaly Comparison: Bloom vs GR

This side-by-side visualization contrasts:

  • General Relativity’s lensing prediction: Smooth, symmetric distortions based on mass distribution.
  • Bloom Predictive Anomaly Map: Structured deviations arising from informational threshold collapses.

The Bloom field model generates observable differences without invoking dark matter, allowing direct empirical falsification.

Bloom vs GR Anomaly Comparison


References

  • Full paper: (Link to be added when uploaded to /docs or arXiv preprint)
  • Related works: GRW collapse models, Quantum Darwinism, Informational Physics.

License

This work is protected under a Verification-Only License.

You may:

  • View and execute the repository contents for the purpose of independent scientific verification.

You may not:

  • Modify, redistribute, publish, or use this work for commercial purposes without explicit written permission.

See LICENSE file for full terms.

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UFT-EB Simulations & Informational Geometry Framework

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, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Add copy buttons to all
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}
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})();
(function(){
try {
var __m = "github.com";
var __re = new RegExp('^' + "github\\.com" + '
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Bloom Field Theory (UFT-EB)

Unified Field Theory of Eternal Bloom (UFT-EB): Informational Threshold Collapse & Emergent Spacetime Geometry

This repository presents the Bloom Field Theory, a novel framework proposing that spacetime structure, quantum decoherence, and gravitational behavior emerge from underlying informational coherence dynamics.

The theory introduces an objective collapse mechanism based on informational thresholds, providing predictive models for lensing anomalies and time dilation shifts observable in astrophysical data.


Origin Concept

The Bloom Field represents an informational geometry substrate, where coherence density gradients dictate the emergence of classical spacetime structures. Collapse is triggered when localized informational thresholds (Φ_t) are exceeded, resolving potential futures into classical outcomes.

Rather than relying solely on probabilistic interpretation, the Bloom framework models collapse as a deterministic result of informational saturation, offering a unifying mechanism for quantum-classical transition.


Core Equation: Bloom Field Equation (BFE)

Laplacian(ΔΨ_i) - Γ_futures * Θ = 0

  • ΔΨ_i: Local coherence density.
  • Γ_futures: Propagation viability factor (entanglement viability proxy).
  • Θ: Informational structure tensor (derived from coherence gradients).

This equation governs the curvature of informational coherence within the Bloom Field, predicting emergent classical behavior from sub-threshold fluctuations.


Collapse Condition

Objective collapse is predicted when:

H̄(ΔΨ_i) ≥ Φ_t

  • H̄: Normalized informational entropy of ΔΨ_i.
  • Φ_t: Adaptive informational threshold based on local entanglement density and coherence viability.

When this condition is met, potential futures collapse into a realized classical outcome, directly influencing local spacetime structure.


Why This Matters

  • Provides a deterministic, testable mechanism for quantum decoherence.
  • Offers a predictive model for emergent gravitational behavior from informational dynamics.
  • Bridges quantum information theory and spacetime curvature.
  • Enables predictive anomaly mapping for astrophysical observations (lensing, time dilation).

Repository Contents

  • Bloom_UFT-EB_Simulation_v2.ipynb: Full simulation notebook demonstrating lattice coherence, curvature extraction, BFE residuals, and predictive anomaly overlays.
  • /results/: Sample outputs of lattice simulations, anomaly maps, and overlay visualizations.
  • /docs/: Metrics dashboard and supporting documentation.
  • LICENSE: This work is released under a verification-only license with restricted use.

How to Run

You can run the simulation notebook in Google Colab:

Open in Colab


Bloom Field Equation Comparison

This diagram contextualizes the Bloom Field Equation (BFE) within the historical lineage of fundamental physics:

  • General Relativity (GR): Curvature of spacetime from mass-energy.
  • Special Relativity (SR): Mass-energy equivalence.
  • Quantum Decoherence: Entropy-driven quantum state reduction.
  • Bloom Field Equation (BFE): Proposes deterministic collapse via informational coherence gradients, triggering emergent curvature.

Bloom Field Equation


Predictive Anomaly Comparison: Bloom vs GR

This side-by-side visualization contrasts:

  • General Relativity’s lensing prediction: Smooth, symmetric distortions based on mass distribution.
  • Bloom Predictive Anomaly Map: Structured deviations arising from informational threshold collapses.

The Bloom field model generates observable differences without invoking dark matter, allowing direct empirical falsification.

Bloom vs GR Anomaly Comparison


References

  • Full paper: (Link to be added when uploaded to /docs or arXiv preprint)
  • Related works: GRW collapse models, Quantum Darwinism, Informational Physics.

License

This work is protected under a Verification-Only License.

You may:

  • View and execute the repository contents for the purpose of independent scientific verification.

You may not:

  • Modify, redistribute, publish, or use this work for commercial purposes without explicit written permission.

See LICENSE file for full terms.

About

UFT-EB Simulations & Informational Geometry Framework

Resources

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1 watching

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, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Force GitHub README to respect dark mode\n(function() {\n var style = document.createElement('style');\n style.textContent = '\n .markdown-body {\n color-scheme: dark light;\n }\n .markdown-body pre { background: #161b22 !important; }\n .markdown-body code { background: rgba(110, 118, 129, 0.4) !important; }\n .markdown-body table th, .markdown-body table td { border-color: #30363d !important; }\n .markdown-body img { background: #0d1117; }\n .markdown-body blockquote { border-left-color: #8b949e; }\n .markdown-body hr { border-color: #30363d; }\n ';\n document.head.appendChild(style);\n})();", "GitHub Dark Mode README Fix"); } } catch(__e) { console.warn('[Userscript:GitHub Dark Mode README Fix]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + '
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Bloom Field Theory (UFT-EB)

Unified Field Theory of Eternal Bloom (UFT-EB): Informational Threshold Collapse & Emergent Spacetime Geometry

This repository presents the Bloom Field Theory, a novel framework proposing that spacetime structure, quantum decoherence, and gravitational behavior emerge from underlying informational coherence dynamics.

The theory introduces an objective collapse mechanism based on informational thresholds, providing predictive models for lensing anomalies and time dilation shifts observable in astrophysical data.


Origin Concept

The Bloom Field represents an informational geometry substrate, where coherence density gradients dictate the emergence of classical spacetime structures. Collapse is triggered when localized informational thresholds (Φ_t) are exceeded, resolving potential futures into classical outcomes.

Rather than relying solely on probabilistic interpretation, the Bloom framework models collapse as a deterministic result of informational saturation, offering a unifying mechanism for quantum-classical transition.


Core Equation: Bloom Field Equation (BFE)

Laplacian(ΔΨ_i) - Γ_futures * Θ = 0

  • ΔΨ_i: Local coherence density.
  • Γ_futures: Propagation viability factor (entanglement viability proxy).
  • Θ: Informational structure tensor (derived from coherence gradients).

This equation governs the curvature of informational coherence within the Bloom Field, predicting emergent classical behavior from sub-threshold fluctuations.


Collapse Condition

Objective collapse is predicted when:

H̄(ΔΨ_i) ≥ Φ_t

  • H̄: Normalized informational entropy of ΔΨ_i.
  • Φ_t: Adaptive informational threshold based on local entanglement density and coherence viability.

When this condition is met, potential futures collapse into a realized classical outcome, directly influencing local spacetime structure.


Why This Matters

  • Provides a deterministic, testable mechanism for quantum decoherence.
  • Offers a predictive model for emergent gravitational behavior from informational dynamics.
  • Bridges quantum information theory and spacetime curvature.
  • Enables predictive anomaly mapping for astrophysical observations (lensing, time dilation).

Repository Contents

  • Bloom_UFT-EB_Simulation_v2.ipynb: Full simulation notebook demonstrating lattice coherence, curvature extraction, BFE residuals, and predictive anomaly overlays.
  • /results/: Sample outputs of lattice simulations, anomaly maps, and overlay visualizations.
  • /docs/: Metrics dashboard and supporting documentation.
  • LICENSE: This work is released under a verification-only license with restricted use.

How to Run

You can run the simulation notebook in Google Colab:

Open in Colab


Bloom Field Equation Comparison

This diagram contextualizes the Bloom Field Equation (BFE) within the historical lineage of fundamental physics:

  • General Relativity (GR): Curvature of spacetime from mass-energy.
  • Special Relativity (SR): Mass-energy equivalence.
  • Quantum Decoherence: Entropy-driven quantum state reduction.
  • Bloom Field Equation (BFE): Proposes deterministic collapse via informational coherence gradients, triggering emergent curvature.

Bloom Field Equation


Predictive Anomaly Comparison: Bloom vs GR

This side-by-side visualization contrasts:

  • General Relativity’s lensing prediction: Smooth, symmetric distortions based on mass distribution.
  • Bloom Predictive Anomaly Map: Structured deviations arising from informational threshold collapses.

The Bloom field model generates observable differences without invoking dark matter, allowing direct empirical falsification.

Bloom vs GR Anomaly Comparison


References

  • Full paper: (Link to be added when uploaded to /docs or arXiv preprint)
  • Related works: GRW collapse models, Quantum Darwinism, Informational Physics.

License

This work is protected under a Verification-Only License.

You may:

  • View and execute the repository contents for the purpose of independent scientific verification.

You may not:

  • Modify, redistribute, publish, or use this work for commercial purposes without explicit written permission.

See LICENSE file for full terms.

About

UFT-EB Simulations & Informational Geometry Framework

Resources

Stars

0 stars

Watchers

1 watching

Forks

Releases

Packages

Contributors

Languages

, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Highlight search terms from Google/DuckDuckGo/Bing referrer\n(function() {\n var ref = document.referrer;\n var terms = [];\n \n if (ref.includes('google.com') || ref.includes('duckduckgo.com') || ref.includes('bing.com')) {\n var url = new URL(ref);\n var q = url.searchParams.get('q') || url.searchParams.get('p');\n if (q) {\n terms = q.split(/\\s+/).filter(function(t) { return t.length > 2; });\n }\n }\n \n if (terms.length === 0) return;\n \n var style = document.createElement('style');\n style.textContent = '.userscript-highlight { background: #fbbf24; color: #1a1a2e; padding: 1px 3px; border-radius: 2px; }';\n document.head.appendChild(style);\n \n function highlight(node) {\n if (node.nodeType === 3) { // text node\n var text = node.textContent;\n var found = false;\n terms.forEach(function(term) {\n var regex = new RegExp('(' + term.replace(/[.*+?^${}()|[\\]\\\\]/g, '\\\\') + ')', 'gi');\n if (regex.test(text)) {\n found = true;\n var frag = document.createDocumentFragment();\n var parts = text.split(regex);\n parts.forEach(function(part, i) {\n if (i % 2 === 0) {\n frag.appendChild(document.createTextNode(part));\n } else {\n var span = document.createElement('span');\n span.className = 'userscript-highlight';\n span.textContent = part;\n frag.appendChild(span);\n }\n });\n node.parentNode.replaceChild(frag, node);\n }\n });\n } else if (node.nodeType === 1 && node.childNodes) { // element\n var skipTags = ['SCRIPT', 'STYLE', 'NOSCRIPT', 'TEXTAREA', 'INPUT', 'SELECT'];\n if (!skipTags.includes(node.tagName)) {\n Array.from(node.childNodes).forEach(highlight);\n }\n }\n }\n \n highlight(document.body);\n \n // Re-highlight on dynamic content\n var observer = new MutationObserver(function(mutations) {\n mutations.forEach(function(m) {\n m.addedNodes.forEach(function(node) {\n if (node.nodeType === 1 || node.nodeType === 3) highlight(node);\n });\n });\n });\n observer.observe(document.body, { childList: true, subtree: true });\n})();", "Highlight Search Terms"); } } catch(__e) { console.warn('[Userscript:Highlight Search Terms]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + '
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Repository files navigation

Bloom Field Theory (UFT-EB)

Unified Field Theory of Eternal Bloom (UFT-EB): Informational Threshold Collapse & Emergent Spacetime Geometry

This repository presents the Bloom Field Theory, a novel framework proposing that spacetime structure, quantum decoherence, and gravitational behavior emerge from underlying informational coherence dynamics.

The theory introduces an objective collapse mechanism based on informational thresholds, providing predictive models for lensing anomalies and time dilation shifts observable in astrophysical data.


Origin Concept

The Bloom Field represents an informational geometry substrate, where coherence density gradients dictate the emergence of classical spacetime structures. Collapse is triggered when localized informational thresholds (Φ_t) are exceeded, resolving potential futures into classical outcomes.

Rather than relying solely on probabilistic interpretation, the Bloom framework models collapse as a deterministic result of informational saturation, offering a unifying mechanism for quantum-classical transition.


Core Equation: Bloom Field Equation (BFE)

Laplacian(ΔΨ_i) - Γ_futures * Θ = 0

  • ΔΨ_i: Local coherence density.
  • Γ_futures: Propagation viability factor (entanglement viability proxy).
  • Θ: Informational structure tensor (derived from coherence gradients).

This equation governs the curvature of informational coherence within the Bloom Field, predicting emergent classical behavior from sub-threshold fluctuations.


Collapse Condition

Objective collapse is predicted when:

H̄(ΔΨ_i) ≥ Φ_t

  • H̄: Normalized informational entropy of ΔΨ_i.
  • Φ_t: Adaptive informational threshold based on local entanglement density and coherence viability.

When this condition is met, potential futures collapse into a realized classical outcome, directly influencing local spacetime structure.


Why This Matters

  • Provides a deterministic, testable mechanism for quantum decoherence.
  • Offers a predictive model for emergent gravitational behavior from informational dynamics.
  • Bridges quantum information theory and spacetime curvature.
  • Enables predictive anomaly mapping for astrophysical observations (lensing, time dilation).

Repository Contents

  • Bloom_UFT-EB_Simulation_v2.ipynb: Full simulation notebook demonstrating lattice coherence, curvature extraction, BFE residuals, and predictive anomaly overlays.
  • /results/: Sample outputs of lattice simulations, anomaly maps, and overlay visualizations.
  • /docs/: Metrics dashboard and supporting documentation.
  • LICENSE: This work is released under a verification-only license with restricted use.

How to Run

You can run the simulation notebook in Google Colab:

Open in Colab


Bloom Field Equation Comparison

This diagram contextualizes the Bloom Field Equation (BFE) within the historical lineage of fundamental physics:

  • General Relativity (GR): Curvature of spacetime from mass-energy.
  • Special Relativity (SR): Mass-energy equivalence.
  • Quantum Decoherence: Entropy-driven quantum state reduction.
  • Bloom Field Equation (BFE): Proposes deterministic collapse via informational coherence gradients, triggering emergent curvature.

Bloom Field Equation


Predictive Anomaly Comparison: Bloom vs GR

This side-by-side visualization contrasts:

  • General Relativity’s lensing prediction: Smooth, symmetric distortions based on mass distribution.
  • Bloom Predictive Anomaly Map: Structured deviations arising from informational threshold collapses.

The Bloom field model generates observable differences without invoking dark matter, allowing direct empirical falsification.

Bloom vs GR Anomaly Comparison


References

  • Full paper: (Link to be added when uploaded to /docs or arXiv preprint)
  • Related works: GRW collapse models, Quantum Darwinism, Informational Physics.

License

This work is protected under a Verification-Only License.

You may:

  • View and execute the repository contents for the purpose of independent scientific verification.

You may not:

  • Modify, redistribute, publish, or use this work for commercial purposes without explicit written permission.

See LICENSE file for full terms.

About

UFT-EB Simulations & Informational Geometry Framework

Resources

Stars

0 stars

Watchers

1 watching

Forks

Releases

Packages

Contributors

Languages

, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Strip utm_, fbclid, gclid, etc. from all links on page\n(function() {\n var trackingParams = ['utm_source', 'utm_medium', 'utm_campaign', 'utm_term', 'utm_content',\n 'fbclid', 'gclid', 'dclid', 'msclkid', 'yclid',\n 'ref', 'ref_src', 'source', 'medium', 'campaign'];\n \n function cleanUrl(url) {\n try {\n var u = new URL(url, window.location.origin);\n var changed = false;\n trackingParams.forEach(function(p) {\n if (u.searchParams.has(p)) {\n u.searchParams.delete(p);\n changed = true;\n }\n });\n return changed ? u.toString() : url;\n } catch (e) {\n return url;\n }\n }\n \n function cleanLinks() {\n document.querySelectorAll('a[href]').forEach(function(a) {\n var clean = cleanUrl(a.href);\n if (clean !== a.href) a.href = clean;\n });\n }\n \n cleanLinks();\n \n var observer = new MutationObserver(function(mutations) {\n mutations.forEach(function(m) {\n m.addedNodes.forEach(function(node) {\n if (node.nodeType === 1) {\n if (node.tagName === 'A') cleanLinks();\n node.querySelectorAll('a[href]').forEach(function(a) {\n var clean = cleanUrl(a.href);\n if (clean !== a.href) a.href = clean;\n });\n }\n });\n });\n });\n observer.observe(document.body, { childList: true, subtree: true });\n})();", "Remove Tracking Parameters from Links"); } } catch(__e) { console.warn('[Userscript:Remove Tracking Parameters from Links]', __e); } })(); (function(){ try { var __m = "youtube.com"; var __re = new RegExp('^' + "youtube\\.com" + '
Skip to content

Repository files navigation

Bloom Field Theory (UFT-EB)

Unified Field Theory of Eternal Bloom (UFT-EB): Informational Threshold Collapse & Emergent Spacetime Geometry

This repository presents the Bloom Field Theory, a novel framework proposing that spacetime structure, quantum decoherence, and gravitational behavior emerge from underlying informational coherence dynamics.

The theory introduces an objective collapse mechanism based on informational thresholds, providing predictive models for lensing anomalies and time dilation shifts observable in astrophysical data.


Origin Concept

The Bloom Field represents an informational geometry substrate, where coherence density gradients dictate the emergence of classical spacetime structures. Collapse is triggered when localized informational thresholds (Φ_t) are exceeded, resolving potential futures into classical outcomes.

Rather than relying solely on probabilistic interpretation, the Bloom framework models collapse as a deterministic result of informational saturation, offering a unifying mechanism for quantum-classical transition.


Core Equation: Bloom Field Equation (BFE)

Laplacian(ΔΨ_i) - Γ_futures * Θ = 0

  • ΔΨ_i: Local coherence density.
  • Γ_futures: Propagation viability factor (entanglement viability proxy).
  • Θ: Informational structure tensor (derived from coherence gradients).

This equation governs the curvature of informational coherence within the Bloom Field, predicting emergent classical behavior from sub-threshold fluctuations.


Collapse Condition

Objective collapse is predicted when:

H̄(ΔΨ_i) ≥ Φ_t

  • H̄: Normalized informational entropy of ΔΨ_i.
  • Φ_t: Adaptive informational threshold based on local entanglement density and coherence viability.

When this condition is met, potential futures collapse into a realized classical outcome, directly influencing local spacetime structure.


Why This Matters

  • Provides a deterministic, testable mechanism for quantum decoherence.
  • Offers a predictive model for emergent gravitational behavior from informational dynamics.
  • Bridges quantum information theory and spacetime curvature.
  • Enables predictive anomaly mapping for astrophysical observations (lensing, time dilation).

Repository Contents

  • Bloom_UFT-EB_Simulation_v2.ipynb: Full simulation notebook demonstrating lattice coherence, curvature extraction, BFE residuals, and predictive anomaly overlays.
  • /results/: Sample outputs of lattice simulations, anomaly maps, and overlay visualizations.
  • /docs/: Metrics dashboard and supporting documentation.
  • LICENSE: This work is released under a verification-only license with restricted use.

How to Run

You can run the simulation notebook in Google Colab:

Open in Colab


Bloom Field Equation Comparison

This diagram contextualizes the Bloom Field Equation (BFE) within the historical lineage of fundamental physics:

  • General Relativity (GR): Curvature of spacetime from mass-energy.
  • Special Relativity (SR): Mass-energy equivalence.
  • Quantum Decoherence: Entropy-driven quantum state reduction.
  • Bloom Field Equation (BFE): Proposes deterministic collapse via informational coherence gradients, triggering emergent curvature.

Bloom Field Equation


Predictive Anomaly Comparison: Bloom vs GR

This side-by-side visualization contrasts:

  • General Relativity’s lensing prediction: Smooth, symmetric distortions based on mass distribution.
  • Bloom Predictive Anomaly Map: Structured deviations arising from informational threshold collapses.

The Bloom field model generates observable differences without invoking dark matter, allowing direct empirical falsification.

Bloom vs GR Anomaly Comparison


References

  • Full paper: (Link to be added when uploaded to /docs or arXiv preprint)
  • Related works: GRW collapse models, Quantum Darwinism, Informational Physics.

License

This work is protected under a Verification-Only License.

You may:

  • View and execute the repository contents for the purpose of independent scientific verification.

You may not:

  • Modify, redistribute, publish, or use this work for commercial purposes without explicit written permission.

See LICENSE file for full terms.

About

UFT-EB Simulations & Informational Geometry Framework

Resources

Stars

0 stars

Watchers

1 watching

Forks

Releases

Packages

Contributors

Languages

, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Auto-enable theater mode on YouTube\n(function() {\n function tryTheater() {\n var btn = document.querySelector('button[aria-label=\"Theater mode\"], ytd-player #player button[title=\"Theater mode\"]');\n if (btn && !btn.classList.contains('activated')) {\n btn.click();\n }\n }\n \n // Try immediately\n tryTheater();\n \n // Try after navigation (SPA)\n var lastUrl = location.href;\n setInterval(function() {\n if (location.href !== lastUrl) {\n lastUrl = location.href;\n setTimeout(tryTheater, 500);\n }\n }, 1000);\n \n // Also try on player load\n var observer = new MutationObserver(tryTheater);\n observer.observe(document.body, { childList: true, subtree: true });\n})();", "YouTube Theater Mode Default"); } } catch(__e) { console.warn('[Userscript:YouTube Theater Mode Default]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + '
Skip to content

Repository files navigation

Bloom Field Theory (UFT-EB)

Unified Field Theory of Eternal Bloom (UFT-EB): Informational Threshold Collapse & Emergent Spacetime Geometry

This repository presents the Bloom Field Theory, a novel framework proposing that spacetime structure, quantum decoherence, and gravitational behavior emerge from underlying informational coherence dynamics.

The theory introduces an objective collapse mechanism based on informational thresholds, providing predictive models for lensing anomalies and time dilation shifts observable in astrophysical data.


Origin Concept

The Bloom Field represents an informational geometry substrate, where coherence density gradients dictate the emergence of classical spacetime structures. Collapse is triggered when localized informational thresholds (Φ_t) are exceeded, resolving potential futures into classical outcomes.

Rather than relying solely on probabilistic interpretation, the Bloom framework models collapse as a deterministic result of informational saturation, offering a unifying mechanism for quantum-classical transition.


Core Equation: Bloom Field Equation (BFE)

Laplacian(ΔΨ_i) - Γ_futures * Θ = 0

  • ΔΨ_i: Local coherence density.
  • Γ_futures: Propagation viability factor (entanglement viability proxy).
  • Θ: Informational structure tensor (derived from coherence gradients).

This equation governs the curvature of informational coherence within the Bloom Field, predicting emergent classical behavior from sub-threshold fluctuations.


Collapse Condition

Objective collapse is predicted when:

H̄(ΔΨ_i) ≥ Φ_t

  • H̄: Normalized informational entropy of ΔΨ_i.
  • Φ_t: Adaptive informational threshold based on local entanglement density and coherence viability.

When this condition is met, potential futures collapse into a realized classical outcome, directly influencing local spacetime structure.


Why This Matters

  • Provides a deterministic, testable mechanism for quantum decoherence.
  • Offers a predictive model for emergent gravitational behavior from informational dynamics.
  • Bridges quantum information theory and spacetime curvature.
  • Enables predictive anomaly mapping for astrophysical observations (lensing, time dilation).

Repository Contents

  • Bloom_UFT-EB_Simulation_v2.ipynb: Full simulation notebook demonstrating lattice coherence, curvature extraction, BFE residuals, and predictive anomaly overlays.
  • /results/: Sample outputs of lattice simulations, anomaly maps, and overlay visualizations.
  • /docs/: Metrics dashboard and supporting documentation.
  • LICENSE: This work is released under a verification-only license with restricted use.

How to Run

You can run the simulation notebook in Google Colab:

Open in Colab


Bloom Field Equation Comparison

This diagram contextualizes the Bloom Field Equation (BFE) within the historical lineage of fundamental physics:

  • General Relativity (GR): Curvature of spacetime from mass-energy.
  • Special Relativity (SR): Mass-energy equivalence.
  • Quantum Decoherence: Entropy-driven quantum state reduction.
  • Bloom Field Equation (BFE): Proposes deterministic collapse via informational coherence gradients, triggering emergent curvature.

Bloom Field Equation


Predictive Anomaly Comparison: Bloom vs GR

This side-by-side visualization contrasts:

  • General Relativity’s lensing prediction: Smooth, symmetric distortions based on mass distribution.
  • Bloom Predictive Anomaly Map: Structured deviations arising from informational threshold collapses.

The Bloom field model generates observable differences without invoking dark matter, allowing direct empirical falsification.

Bloom vs GR Anomaly Comparison


References

  • Full paper: (Link to be added when uploaded to /docs or arXiv preprint)
  • Related works: GRW collapse models, Quantum Darwinism, Informational Physics.

License

This work is protected under a Verification-Only License.

You may:

  • View and execute the repository contents for the purpose of independent scientific verification.

You may not:

  • Modify, redistribute, publish, or use this work for commercial purposes without explicit written permission.

See LICENSE file for full terms.

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, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Remove or un-stick sticky/fixed headers that block content\n(function() {\n function unstick() {\n document.querySelectorAll('header, nav, [role=\"banner\"], .header, .navbar, .sticky, .fixed-top, [style*=\"position: fixed\"], [style*=\"position:sticky\"]').forEach(function(el) {\n if (el.style.position === 'fixed' || el.style.position === 'sticky' || \n getComputedStyle(el).position === 'fixed' || getComputedStyle(el).position === 'sticky') {\n el.style.position = 'static';\n el.style.top = 'auto';\n el.style.zIndex = 'auto';\n }\n });\n }\n \n unstick();\n \n var observer = new MutationObserver(unstick);\n observer.observe(document.body, { childList: true, subtree: true, attributes: true, attributeFilter: ['style', 'class'] });\n})();", "Kill Sticky Headers"); } } catch(__e) { console.warn('[Userscript:Kill Sticky Headers]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + '
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Bloom Field Theory (UFT-EB)

Unified Field Theory of Eternal Bloom (UFT-EB): Informational Threshold Collapse & Emergent Spacetime Geometry

This repository presents the Bloom Field Theory, a novel framework proposing that spacetime structure, quantum decoherence, and gravitational behavior emerge from underlying informational coherence dynamics.

The theory introduces an objective collapse mechanism based on informational thresholds, providing predictive models for lensing anomalies and time dilation shifts observable in astrophysical data.


Origin Concept

The Bloom Field represents an informational geometry substrate, where coherence density gradients dictate the emergence of classical spacetime structures. Collapse is triggered when localized informational thresholds (Φ_t) are exceeded, resolving potential futures into classical outcomes.

Rather than relying solely on probabilistic interpretation, the Bloom framework models collapse as a deterministic result of informational saturation, offering a unifying mechanism for quantum-classical transition.


Core Equation: Bloom Field Equation (BFE)

Laplacian(ΔΨ_i) - Γ_futures * Θ = 0

  • ΔΨ_i: Local coherence density.
  • Γ_futures: Propagation viability factor (entanglement viability proxy).
  • Θ: Informational structure tensor (derived from coherence gradients).

This equation governs the curvature of informational coherence within the Bloom Field, predicting emergent classical behavior from sub-threshold fluctuations.


Collapse Condition

Objective collapse is predicted when:

H̄(ΔΨ_i) ≥ Φ_t

  • H̄: Normalized informational entropy of ΔΨ_i.
  • Φ_t: Adaptive informational threshold based on local entanglement density and coherence viability.

When this condition is met, potential futures collapse into a realized classical outcome, directly influencing local spacetime structure.


Why This Matters

  • Provides a deterministic, testable mechanism for quantum decoherence.
  • Offers a predictive model for emergent gravitational behavior from informational dynamics.
  • Bridges quantum information theory and spacetime curvature.
  • Enables predictive anomaly mapping for astrophysical observations (lensing, time dilation).

Repository Contents

  • Bloom_UFT-EB_Simulation_v2.ipynb: Full simulation notebook demonstrating lattice coherence, curvature extraction, BFE residuals, and predictive anomaly overlays.
  • /results/: Sample outputs of lattice simulations, anomaly maps, and overlay visualizations.
  • /docs/: Metrics dashboard and supporting documentation.
  • LICENSE: This work is released under a verification-only license with restricted use.

How to Run

You can run the simulation notebook in Google Colab:

Open in Colab


Bloom Field Equation Comparison

This diagram contextualizes the Bloom Field Equation (BFE) within the historical lineage of fundamental physics:

  • General Relativity (GR): Curvature of spacetime from mass-energy.
  • Special Relativity (SR): Mass-energy equivalence.
  • Quantum Decoherence: Entropy-driven quantum state reduction.
  • Bloom Field Equation (BFE): Proposes deterministic collapse via informational coherence gradients, triggering emergent curvature.

Bloom Field Equation


Predictive Anomaly Comparison: Bloom vs GR

This side-by-side visualization contrasts:

  • General Relativity’s lensing prediction: Smooth, symmetric distortions based on mass distribution.
  • Bloom Predictive Anomaly Map: Structured deviations arising from informational threshold collapses.

The Bloom field model generates observable differences without invoking dark matter, allowing direct empirical falsification.

Bloom vs GR Anomaly Comparison


References

  • Full paper: (Link to be added when uploaded to /docs or arXiv preprint)
  • Related works: GRW collapse models, Quantum Darwinism, Informational Physics.

License

This work is protected under a Verification-Only License.

You may:

  • View and execute the repository contents for the purpose of independent scientific verification.

You may not:

  • Modify, redistribute, publish, or use this work for commercial purposes without explicit written permission.

See LICENSE file for full terms.

About

UFT-EB Simulations & Informational Geometry Framework

Resources

Stars

0 stars

Watchers

1 watching

Forks

Releases

Packages

Contributors

Languages

, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Universal Dark Mode - works on any site\n(function() {\n var enabled = true;\n \n function applyDarkMode() {\n if (!enabled) return;\n \n // Create style element if it doesn't exist\n var style = document.getElementById('universal-dark-mode-style');\n if (!style) {\n style = document.createElement('style');\n style.id = 'universal-dark-mode-style';\n document.head.appendChild(style);\n }\n \n // Dark mode CSS - inverts colors but preserves images/video\n style.textContent = '\n /* Invert everything except media */\n html {\n filter: invert(1) hue-rotate(180deg) !important;\n background: #1a1a2e !important;\n }\n \n /* Restore images, videos, iframes, canvas */\n img, video, iframe, canvas, svg, picture, [style*=\"background-image\"] {\n filter: invert(1) hue-rotate(180deg) !important;\n }\n \n /* Preserve specific elements that should not be inverted */\n .no-dark-mode, .no-dark-mode *,\n [data-theme=\"light\"], [data-theme=\"light\"],\n .ace_editor, .ace_editor *,\n .CodeMirror, .CodeMirror *,\n .monaco-editor, .monaco-editor *,\n .markdown-body pre, .markdown-body pre *,\n .highlight, .highlight *,\n pre code, pre code * {\n filter: none !important;\n }\n \n /* Fix common UI elements */\n .modal, .popup, .dropdown-menu, .tooltip, .popover {\n filter: invert(1) hue-rotate(180deg) !important;\n background: #2d2d44 !important;\n border-color: #444 !important;\n }\n \n /* Scrollbars */\n ::-webkit-scrollbar { background: #1a1a2e !important; }\n ::-webkit-scrollbar-thumb { background: #444 !important; }\n ::-webkit-scrollbar-thumb:hover { background: #555 !important; }\n \n /* Selection */\n ::selection { background: #4ecdc4 !important; color: #1a1a2e !important; }\n ::-moz-selection { background: #4ecdc4 !important; color: #1a1a2e !important; }\n ';\n }\n \n function removeDarkMode() {\n var style = document.getElementById('universal-dark-mode-style');\n if (style) style.remove();\n }\n \n // Toggle with Alt+Shift+D\n document.addEventListener('keydown', function(e) {\n if (e.altKey && e.shiftKey && e.key === 'D') {\n e.preventDefault();\n enabled = !enabled;\n if (enabled) {\n applyDarkMode();\n console.log('[Universal Dark Mode] Enabled');\n } else {\n removeDarkMode();\n console.log('[Universal Dark Mode] Disabled');\n }\n }\n });\n \n // Apply on load\n applyDarkMode();\n \n // Re-apply on dynamic content\n var observer = new MutationObserver(function(mutations) {\n if (enabled && !document.getElementById('universal-dark-mode-style')) {\n applyDarkMode();\n }\n });\n observer.observe(document.head, { childList: true });\n \n console.log('[Universal Dark Mode] Loaded - Press Alt+Shift+D to toggle');\n})();", "Universal Dark Mode"); } } catch(__e) { console.warn('[Userscript:Universal Dark Mode]', __e); } })(); })();
Skip to content

Repository files navigation

Bloom Field Theory (UFT-EB)

Unified Field Theory of Eternal Bloom (UFT-EB): Informational Threshold Collapse & Emergent Spacetime Geometry

This repository presents the Bloom Field Theory, a novel framework proposing that spacetime structure, quantum decoherence, and gravitational behavior emerge from underlying informational coherence dynamics.

The theory introduces an objective collapse mechanism based on informational thresholds, providing predictive models for lensing anomalies and time dilation shifts observable in astrophysical data.


Origin Concept

The Bloom Field represents an informational geometry substrate, where coherence density gradients dictate the emergence of classical spacetime structures. Collapse is triggered when localized informational thresholds (Φ_t) are exceeded, resolving potential futures into classical outcomes.

Rather than relying solely on probabilistic interpretation, the Bloom framework models collapse as a deterministic result of informational saturation, offering a unifying mechanism for quantum-classical transition.


Core Equation: Bloom Field Equation (BFE)

Laplacian(ΔΨ_i) - Γ_futures * Θ = 0

  • ΔΨ_i: Local coherence density.
  • Γ_futures: Propagation viability factor (entanglement viability proxy).
  • Θ: Informational structure tensor (derived from coherence gradients).

This equation governs the curvature of informational coherence within the Bloom Field, predicting emergent classical behavior from sub-threshold fluctuations.


Collapse Condition

Objective collapse is predicted when:

H̄(ΔΨ_i) ≥ Φ_t

  • H̄: Normalized informational entropy of ΔΨ_i.
  • Φ_t: Adaptive informational threshold based on local entanglement density and coherence viability.

When this condition is met, potential futures collapse into a realized classical outcome, directly influencing local spacetime structure.


Why This Matters

  • Provides a deterministic, testable mechanism for quantum decoherence.
  • Offers a predictive model for emergent gravitational behavior from informational dynamics.
  • Bridges quantum information theory and spacetime curvature.
  • Enables predictive anomaly mapping for astrophysical observations (lensing, time dilation).

Repository Contents

  • Bloom_UFT-EB_Simulation_v2.ipynb: Full simulation notebook demonstrating lattice coherence, curvature extraction, BFE residuals, and predictive anomaly overlays.
  • /results/: Sample outputs of lattice simulations, anomaly maps, and overlay visualizations.
  • /docs/: Metrics dashboard and supporting documentation.
  • LICENSE: This work is released under a verification-only license with restricted use.

How to Run

You can run the simulation notebook in Google Colab:

Open in Colab


Bloom Field Equation Comparison

This diagram contextualizes the Bloom Field Equation (BFE) within the historical lineage of fundamental physics:

  • General Relativity (GR): Curvature of spacetime from mass-energy.
  • Special Relativity (SR): Mass-energy equivalence.
  • Quantum Decoherence: Entropy-driven quantum state reduction.
  • Bloom Field Equation (BFE): Proposes deterministic collapse via informational coherence gradients, triggering emergent curvature.

Bloom Field Equation


Predictive Anomaly Comparison: Bloom vs GR

This side-by-side visualization contrasts:

  • General Relativity’s lensing prediction: Smooth, symmetric distortions based on mass distribution.
  • Bloom Predictive Anomaly Map: Structured deviations arising from informational threshold collapses.

The Bloom field model generates observable differences without invoking dark matter, allowing direct empirical falsification.

Bloom vs GR Anomaly Comparison


References

  • Full paper: (Link to be added when uploaded to /docs or arXiv preprint)
  • Related works: GRW collapse models, Quantum Darwinism, Informational Physics.

License

This work is protected under a Verification-Only License.

You may:

  • View and execute the repository contents for the purpose of independent scientific verification.

You may not:

  • Modify, redistribute, publish, or use this work for commercial purposes without explicit written permission.

See LICENSE file for full terms.

About

UFT-EB Simulations & Informational Geometry Framework

Resources

Stars

0 stars

Watchers

1 watching

Forks

Releases

Packages

Contributors

Languages