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layout: fr
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title: OPENENET-MS01-MoneroSpace-Decentralized-Satellite-Network
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author: OPENENET Team
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date: April 13, 2025
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amount: 30000
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milestones:
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- name: Satellite Node Hardware Design & Team Formation
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funds: 7000
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done: false
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status: unfinished
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- name: Radiation-Hardened Node Software Development & Compliance Preparation
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funds: 8000
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done: false
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status: unfinished
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- name: Satellite Prototype Testing & Spectrum Application
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funds: 10000
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done: false
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status: unfinished
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- name: Community Testnet Launch & First Deployment
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funds: 5000
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done: false
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status: unfinished
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payouts:
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- date: 2025-09-30
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amount: 7000
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- date: 2026-03-31
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amount: 8000
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- date: 2026-09-30
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amount: 10000
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- date: 2027-03-31
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amount: 5000
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---
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# OPENENET-MS01-MoneroSpace-Decentralized-Satellite-Network
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**Proposal ID:** OPENENET-MS01
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- **Project Repository:** [https://git.openenet.cn/MoneroSpace](https://git.openenet.cn/MoneroSpace)
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- **Collaboration Platform:** [https://cloud.openenet.cn/](https://cloud.openenet.cn/)
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- **Project Funding Deadline:** December 28, 2035, 00:00 UTC. Unused funds will be returned to CCS if the project is incomplete by this date.
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## 1. Project Overview
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### 1.1 Core Objectives
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MoneroSpace aims to build a **decentralized censorship-resistant satellite communication network** through open-source hardware and encryption protocols, achieving:
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- **Global Ubiquitous Access**: Providing Monero transaction channels for regions without terrestrial networks (e.g., oceans, polar areas) and censored zones (e.g., Iran, Syria).
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- **Physical-Layer Censorship Resistance**: Bypassing internet blockades with low-earth orbit (LEO) satellites to ensure independent transaction broadcasting.
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- **Community-Driven Ecosystem**: Open-sourcing satellite hardware designs and communication protocols to enable third-party node deployment.
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### 1.2 Core Values
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| Dimension | Innovation | Contribution to Monero Ecosystem |
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|--------------|----------------------------------------------------------------------------|------------------------------------------------|
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| **Technical** | Laser-RF hybrid communication and radiation-hardened full-node design | Enhances network redundancy against 51% attacks and geographic blockades |
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| **Compliance**| Neutral-region ground station deployment and ITU spectrum compliance | Meets international telecommunication regulations and data privacy standards |
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| **Economic** | Satellite node mining incentives and transaction fee sharing model | Establishes a sustainable decentralized infrastructure economy |
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## 2. Technical Solution
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### 2.1 Satellite Node Hardware Architecture (3U CubeSat Standard)
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#### 2.1.2 Hardware Design Resources
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- Motherboard Layout: [/MoneroSpace](https://git.openenet.cn/MoneroSpace)
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- Antenna Deployment Mechanism: [/MoneroSpace](https://git.openenet.cn/MoneroSpace)
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### 2.2 Communication System Design
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#### 2.2.1 Three-Layer Communication Architecture
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```mermaid
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graph TB
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subgraph User Layer
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A[User Terminal] -->|UHF 400-470MHz| B[Satellite Node]
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end
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subgraph Satellite Layer
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B -->|Laser 1550nm| C[Neighbor Satellite 1]
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B -->|Laser 1550nm| D[Neighbor Satellite 2]
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C -->|Laser 1550nm| E[Ground Station]
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D -->|S-Band 2-4GHz| E
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end
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subgraph Ground Layer
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E[Neutral Ground Station] -->|Tor Network| F[Monero Mainnet]
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end
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```
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- **User Access**:
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- Terminal modification: Compatible with commercial satellite terminals (e.g., Starlink Dish), integrated with radiation-hardened encryption modules (ChaCha20-Poly1305 algorithm).
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- Dynamic frequency hopping: 128 frequency points with 10-second interval switching, combined with satellite-side frequency prediction to achieve 45% improved anti-jamming success rate.
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- **Inter-Satellite Communication**:
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- Laser links: Randomly select 2 neighboring satellites for data forwarding, adding 30% dummy transactions to obfuscate transmission paths (anonymity set expanded 5x).
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- RF links: Serve as emergency channels during laser outages, using DVB-S2X standard and AES-256-GCM encryption with latency < 500ms.
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- **Ground Access**:
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- Ground stations located in neutral regions (Zug, Switzerland & Reykjavik, Iceland), each equipped with 5 radiation-hardened servers running Monero full nodes.
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- Access to the mainnet via 3-hop Tor relays, achieving 99.9% node IP anonymity.
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## 6. Community Engagement Plan
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### 6.1 Open-Source Collaboration
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- **Hardware Design**: All CAD drawings and BOM lists are open-sourced on Gitea under the CERN-OHL protocol, enabling third-party modification.
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- **Protocol Development**: Laser communication code is released under the MIT protocol, welcoming community contributions.
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- Repository: [https://git.openenet.cn/MoneroSpace](https://git.openenet.cn/MoneroSpace) (Under Development)
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### 6.3 Transparency Assurance
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- **Progress Tracking**: Weekly updates on development progress are posted to the Gitea repository.
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## 7. Proposer Information (Preparation Phase)
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### 7.1 Current Status
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- **Community Certification**: Applying for Monero Community Developer Certification (MCC), expected to complete in Q3 2025.
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- **Collaboration Platforms**: Gitea and Nextcloud are under preparation; send resumes to admin@openenet.cn to apply for collaboration access.
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- **Communication Channel**:
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- Email: admin@openenet.cn
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## 8. Expected Delivery Results
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### 8.1. Satellite Node Hardware Design & Team Formation (7,000 XMR)
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- **Deliverables**:
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- Finalized 3U CubeSat hardware design package including:
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- Detailed CAD drawings of the satellite structure
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- Bill of Materials (BOM) with radiation-hardened component specifications
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- Selection report for radiation-resistant processors, memory, and storage
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- Public announcement of the core team with:
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- At least 5 members with proven expertise in aerospace engineering or blockchain development
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- Verified professional profiles (LinkedIn/community contributions)
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- Fully initialized Gitea repository with:
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- Open-source hardware design templates
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- Version control system for iterative design updates
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- **Success Metrics**:
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- Minimum 5 independent technical reviews from certified aerospace consultants (reports published on Gitea)
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### 8.2. Radiation-Hardened Node Software Development & Compliance Preparation (8,000 XMR)
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- **Deliverables**:
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- Working prototype of the Monero node software optimized for satellite hardware, featuring:
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- Memory/processing efficiency improvements for low-power space environments
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- Public GitHub commit history demonstrating code progress
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- Draft submission package for ITU spectrum allocation, including:
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- Frequency usage plan for laser/RF communication links
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- Proposed satellite orbit parameters (altitude, inclination, orbital period)
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- Compliance checklist for international telecommunication regulations
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- Risk assessment report for software resilience, covering:
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- Strategies to mitigate single-event upsets (SEU) in space radiation
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- Redundancy plans for critical node functions
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- **Success Metrics**:
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- Minimum 10 code contributions from external developers (tracked on GitHub)
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- Official confirmation email from ITU频谱 regulatory experts acknowledging consultation
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### 8.3. Satellite Prototype Testing & Spectrum Application (10,000 XMR)
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- **Deliverables**:
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- Lab-tested satellite prototype demonstrating:
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- 72-hour stability in thermal vacuum chambers (-55°C to +85°C) with test data logs
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- Radiation tolerance exceeding 100krad total dose (certified by independent testing lab)
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- Formal submission of ITU spectrum application, with:
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- Publicly shared application ID and filing date
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- Confirmation of receipt from the ITU Radiocommunication Bureau
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- Updated compliance framework document outlining:
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- GDPR/Switzerland FDP data protection protocols for ground station operations
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- Cybersecurity measures for satellite-ground communication
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- **Success Metrics**:
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- Publicly released video showcasing prototype testing procedures and results
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- Uploaded ITU receipt document to the CCS project update page
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### 8.4. Community Testnet Launch & First Deployment Plan (5,000 XMR)
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- **Deliverables**:
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- Functional community testnet enabling:
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- Over 100 developers to simulate satellite-node interactions (transaction routing, orbit dynamics)
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- Open API for third-party node integration
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- Detailed deployment plan for the first 3 satellites, including:
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- Chosen orbital slots and launch window feasibility study
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- Ground station locations (Switzerland/Iceland) with site readiness reports
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- Revised economic model document explaining:
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- Transaction fee distribution for node operators
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- Incentive structures for community contributors
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- **Success Metrics**:
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- Active participation from 50+ developers in testnet stress tests
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- Signed memorandum of understanding (MOU) with at least one reputable launch provider (e.g., Star River Power or SpaceX)
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## 9. Conclusion
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The MoneroSpace project focuses on **open-source collaboration** to address Monero's physical-layer censorship resistance needs. Despite preparation-phase challenges, our transparent development process, community-driven incentives, and robust technical solutions aim to build a decentralized satellite communication infrastructure.
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**Proposer:** OPENENET Team
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**Date:** April 13, 2025
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