pec5d-module / pec5d /agency.py
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# pec5d/agency.py
"""
Φ-ENTANGLEMENT AGENCY + ZENITH CHAMBER (boardroom automaton).
Agency divisions: Coral · Resonance · Space · Grid · Impact
Locations: Brisbane (HQ) · Tokyo · Amsterdam · Singapore · Cape Canaveral
Zenith Chamber governance:
Board of Directors: 7 seats (3 science/tech, 2 ecology/bio, 1 social/ethics, 1 public)
Advisory Council: 12 members
Decision framework: Φ-consensus + resonance voting + IPT field analysis
"""
from __future__ import annotations
import time
from typing import Any, Dict, List, Optional
import numpy as np
from pec5d.constants import PHI
class PhiEntanglementAgency:
"""Φ-Entanglement Agency — organizational model."""
DIVISIONS = {
"coral": "Reef restoration, bio-materials, living architecture",
"resonance": "IPT, harmonic technology, bio-digital interfaces",
"space": "Coral spacecraft, orbital habitats, planetary monitoring",
"grid": "PEC5D platform, AI cores, sensor networks",
"impact": "Policy, community, education, global partnerships",
}
LOCATIONS = ["Brisbane (HQ)", "Tokyo", "Amsterdam", "Singapore", "Cape Canaveral"]
def __init__(self):
self.active = False
def initialize(self) -> "PhiEntanglementAgency":
print("🤝 Φ-ENTANGLEMENT AGENCY initializing")
self.active = True
return self
def get_state(self) -> Dict[str, Any]:
return {
"active": self.active,
"divisions": self.DIVISIONS,
"locations": self.LOCATIONS,
"mission": "Weaving technology, biology, consciousness, and ecosystem "
"restoration into a coherent planetary renaissance",
}
class ZenithChamber:
"""ZENITH CHAMBER — boardroom automaton (proposals, voting, minutes)."""
BOARD_SEATS = {
"science_tech_1": "3 science/tech",
"science_tech_2": "3 science/tech",
"science_tech_3": "3 science/tech",
"ecology_1": "2 ecology/bio",
"ecology_2": "2 ecology/bio",
"social_ethics": "1 social/ethics",
"public": "1 public representative",
}
ADVISORY_SIZE = 12
def __init__(self):
self.proposals: List[Dict[str, Any]] = []
self.votes: List[Dict[str, Any]] = []
self.minutes: List[Dict[str, Any]] = []
self.active = False
def initialize(self) -> "ZenithChamber":
print("🏛 ZENITH CHAMBER initializing — Φ-consensus governance")
self.active = True
return self
def submit_proposal(self, title: str, body: str, proposer: str = "agency") -> Dict[str, Any]:
"""Submit a proposal for the chamber."""
proposal = {
"id": f"prop_{len(self.proposals) + 1:03d}",
"title": title,
"body": body,
"proposer": proposer,
"status": "submitted",
"timestamp": time.time(),
}
self.proposals.append(proposal)
return proposal
def resonance_vote(self, proposal_id: str) -> Dict[str, Any]:
"""Φ-consensus resonance vote (simulated)."""
proposal = next((p for p in self.proposals if p["id"] == proposal_id), None)
if proposal is None:
return {"error": f"unknown proposal '{proposal_id}'"}
rng = np.random.default_rng()
alignment = round(float(rng.random()), 4)
passed = alignment > 0.5
vote = {
"proposal": proposal_id,
"phi_alignment": alignment,
"passed": passed,
"decision": "Φ-consensus + resonance voting + IPT field analysis",
}
self.votes.append(vote)
if passed:
proposal["status"] = "passed"
return vote
def record_minutes(self, summary: str) -> Dict[str, Any]:
"""Record board minutes."""
entry = {"summary": summary, "timestamp": time.time()}
self.minutes.append(entry)
return entry
def get_state(self) -> Dict[str, Any]:
return {
"active": self.active,
"board_seats": len(self.BOARD_SEATS),
"advisory_size": self.ADVISORY_SIZE,
"proposals": len(self.proposals),
"votes": len(self.votes),
"minutes": len(self.minutes),
"decision_framework": "Φ-consensus · resonance voting · IPT field analysis",
"values": ["non-harm first", "bio-aligned", "intergenerational responsibility",
"open pattern sharing", "infinite horizon thinking"],
}