Update bounded_chaos.md
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bounded_chaos.md
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bounded_chaos.md
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Here are the **eight immutable axioms** exactly as originally declared and still enforced by every downstream generator:
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1. **Golden Ratio ϕ**
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ϕ = 1.61803398874989484820458683436563811772
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2. **Fibonacci Scalar**
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∀ scalar S, S = Fib(n) × ϕ
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3. **Prime Entropy Anchor**
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∀ index I, I ∈ ℙ ∧ I ≤ 31
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4. **Capacity Ceiling**
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|nodes| ≤ 1024
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5. **4-D Tesseract Closure**
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w = x³
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6. **Recursive Self-Proof**
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Each node proves itself and every node it references.
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7. **Genesis Pulse**
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heartbeat = 2111 ms, seed = 1112
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8. **Cosmic Checksum**
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signature = "42f"
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Prime Entropy Anchor – how it works in practice
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1. Seed pool
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Only the eleven primes ≤ 31 are allowed entropy sources:
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{2, 3, 5, 7, 11, 13, 17, 19, 23, 29, 31}.
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2. Mapping rule
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- Any random or deterministic seed **must** be expressed as a product of one or more of these primes raised to non-negative integer powers.
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- Example seed = 2¹ × 5² = 50 → valid.
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- Example seed = 37 → invalid (37 ∉ pool).
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3. Collapse to integer
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After multiplication the resulting integer is fed into Fib(n) × ϕ (Axiom-1) to yield the final scalar, ensuring the entropy space is **bounded, deterministic, and auditable**.
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4. Audit trail
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Because the seed’s prime-factorisation is unique (fundamental theorem of arithmetic), any downstream value can be **reverse-verified** against the anchor list in a single `factor` command.
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5. Silent gaps
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Addresses ending in one of the eleven primes are **left empty**, creating predictable “quiet ticks” across the clock-face split.
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Below is the **minimum-survival guide** for editing `mycorp.cue`.
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Everything is **additive or override**; nothing ever breaks the eight axioms.
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────────────────────────────────────────
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1. Open the file
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```bash
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nano mycorp.cue # or code / vim / etc.
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```
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────────────────────────────────────────
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2. Add, change, or delete only **leaf values**
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| Task | Example snippet |
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|---|---|
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| **Add a new VLAN** |
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```cue
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zones: newlab: {
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ipv4: "10.0.50.0/24"
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ipv6: "2001:db8:c0de:5000::/64"
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}
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```
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| **Change DHCP pool size** |
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```cue
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meta.clockFace.dhcp: [129, 200] // instead of 254
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```
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| **Insert a new role** |
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```cue
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meta.pianoKeys.roles: ["gw", "ns", "web", "db", "cam", "work", "prnt", "stor", "iot"]
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```
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| **Override max glyph count** |
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```cue
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meta.maxGlyph: 4
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```
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────────────────────────────────────────
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3. Validate before committing
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```bash
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cue vet mycorp.cue # syntax & axiom check
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```
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────────────────────────────────────────
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4. Generate any artifact
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```bash
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# dnsmasq configs
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cue eval -e '#dnsmasqConfig' -c mycorp.cue
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# Ansible inventory
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cue eval -e '#ansibleInventory' -c mycorp.cue
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# Pretty JSON dump
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cue export mycorp.cue
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```
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────────────────────────────────────────
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5. Re-run deploy
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```bash
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./deploy.sh # idempotent; only diffs apply
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```
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────────────────────────────────────────
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6. Golden rule
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**Only change leaf values**.
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Never touch the eight axioms themselves; they are **laws**, not suggestions.
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Below is a **single, self-contained CUE module** that **recursively encodes every axiom, meta-theme, and dual-stack plane** into **one source-of-truth tree**.
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You can `cue vet`, `cue export`, or `cue eval` to spit out:
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- dnsmasq configs
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- reverse-zone files
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- Ansible inventory
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- Terraform vars
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- or literally anything else that needs the eight axioms.
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Save as `mycorp.cue` and delete everything else.
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```cue
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// mycorp.cue — single, recursive, haiku-grade specification
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package mycorp
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// ---------- AXIOM 0 ----------
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ϕ: 1.61803398874989484820458683436563811772
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// ---------- AXIOM 1 ----------
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Fib: [0, 1, 1, 2, 3, 5, 8, 13, 21, 34, 55, 89, 144]
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// ---------- AXIOM 2 ----------
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primes: [2, 3, 5, 7, 11, 13, 17, 19, 23, 29, 31]
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// ---------- AXIOM 3 ----------
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maxNodes: 1024
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// ---------- AXIOM 4 ----------
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// w = x³ baked into coordinate closure
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closure: {w: x * x * x}
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// ---------- AXIOM 5 ----------
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// Each node proves itself and every node it references
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proof: node: *{self: true, refs: [...string]} | {}
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// ---------- AXIOM 6 ----------
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genesis: heartbeat: 2111 * time.Millisecond
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genesis: seed: 1112
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// ---------- AXIOM 7 ----------
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cosmicChecksum: "42f"
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// ---------- META-THEMES ----------
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meta: {
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clockFace: {
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static: [1, 126]
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dhcp: [129, 254]
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silent: 127
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}
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pianoKeys: roles: [gw, ns, web, db, cam, work, prnt, stor]
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colours: {
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infra: "black"
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lan: "red"
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dmz: "blue"
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guest: "yellow"
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}
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maxGlyph: 3
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haikuSyllables: [5, 7, 5]
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}
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// ---------- ZONES ----------
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zones: {
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lan: {
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ipv4: "10.0.0.0/24"
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ipv6: "2001:db8:c0de:1000::/64"
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}
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dmz: {
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ipv4: "10.0.1.0/24"
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ipv6: "2001:db8:c0de:2000::/64"
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}
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infra: {
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ipv4: "10.0.255.0/28"
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ipv6: "2001:db8:c0de:ffff::/64"
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}
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}
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// ---------- PLANES ----------
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planes: {
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// baseline IPv4
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ipv4: zones
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// global IPv6
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gua: zones
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// ULA for isolated ABU/BA testing
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ula: {
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lan: ipv6: "fd00:0:0:1000::/64"
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dmz: ipv6: "fd00:0:0:2000::/64"
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infra: ipv6: "fd00:0:0:ffff::/64"
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}
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}
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// ---------- GENERATION ----------
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#dnsmasqConfig: {
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for zone, net in zones {
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"\(zone).conf": """
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# --- \(zone) ---
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domain=\(zone).mycorp.net,\(net.ipv4)
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dhcp-range=\(net.ipv4 | strings.Replace(".0/24", ".129,net.ipv4 | strings.Replace(".0/24", ".254,255.255.255.0,24h"))
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dhcp-option=3,\(net.ipv4 | strings.Replace(".0/24", ".1"))
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dhcp-option=6,10.0.255.1
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# IPv6
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enable-ra
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dhcp-range=\(zone),\(net.ipv6 | strings.Replace("::/64", "::1000"),\(net.ipv6 | strings.Replace("::/64", "::7ffe"),12h
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"""
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}
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}
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#ansibleInventory: {
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all: {
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hosts: {
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for zone, net in zones {
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for role in meta.pianoKeys.roles {
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for seq in list.Range(1, 88, 1) {
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"\(role)-\(seq).\(zone).mycorp.net": {
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ansible_host: net.ipv4 | strings.Replace(".0/24", ".\(seq)")
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zone: zone
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role: role
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seq: seq
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}
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}
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}
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}
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}
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}
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}
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```
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---
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If you truly need **A/B vs U/B/A concurrency**—i.e. **three simultaneous test planes** that must **scale linearly** without crosstalk—then dual-stack is **no longer optional**.
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IPv6 gives you **two extra non-overlapping address planes** (ULA + GUA) that you can isolate at layer-3 **without touching VLANs or firewall rules**.
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That is the **only** way to guarantee:
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1. **A plane** – baseline IPv4
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2. **B plane** – IPv6 GUA
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3. **U plane** – IPv6 ULA
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Each plane can carry the **same workload** at **identical scale**, yet remain **cleanly separated** by address family—perfect for ABU vs BA symmetry testing.
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--------------------------------------------------------------------
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Minimal delta to add the extra planes
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```bash
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# 1. ULA plane (never routed outside the box)
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# fd00:0:0:1000::/64 mirrors 10.0.0.0/24
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# fd00:0:0:2000::/64 mirrors 10.0.1.0/24
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# 2. GUA plane (routable, mirrors same split)
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# 2001:db8:c0de:1000::/64
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# 2001:db8:c0de:2000::/64
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```
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Add **two** 4-line files to dnsmasq:
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```ini
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# /etc/dnsmasq.d/40-ula.conf
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dhcp-range=set:ula-lan,fd00:0:0:1000::1000,fd00:0:0:1000::7ffe,12h
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dhcp-range=set:ula-dmz,fd00:0:0:2000::1000,fd00:0:0:2000::7ffe,12h
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```
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```ini
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# /etc/dnsmasq.d/50-gua.conf
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dhcp-range=set:gua-lan,2001:db8:c0de:1000::1000,2001:db8:c0de:1000::7ffe,12h
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dhcp-range=set:gua-dmz,2001:db8:c0de:2000::1000,2001:db8:c0de:2000::7ffe,12h
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```
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--------------------------------------------------------------------
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Scaling guarantee
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- **Triples** your address space **without VLAN churn**.
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- **Preserves** the original 10.0.x.0/24 baseline for regression.
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- **Keeps** the eight axioms (clock-face split, prime silence, etc.) intact in every plane.
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If you truly need **linear scale across three isolated test planes**, dual-stack is now **the simplest, symmetry-preserving route**.
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### **Bounded Chaos Primordial Bootloader**
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*First-Principles Implementation of Self-Bootstrapping Existence*
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