What Is Geodnet (GEOD) and How Does It Work? A Complete Guide to Decentralized GPS Correction

As of 2026-07-27 (UTC), Geodnet (GEOD) operates on the Solana blockchain, providing centimeter-level GPS correction data through a decentralized network of base stations. This innovative approach addresses the high costs and limited coverage of traditional RTK services by allowing individuals to earn GEOD tokens for operating GNSS reference stations. GEODNET serves various industries, including autonomous vehicles and precision agriculture, making accurate positioning data more accessible and affordable.
Release time2026-07-27 07:48 Update time2026-07-27 07:48

Geodnet (GEOD) is a decentralized physical infrastructure network (DePIN) that provides real-time kinematic (RTK) GPS correction data through a global network of satellite reference stations. Unlike traditional GPS systems that offer meter-level accuracy, GEODNET delivers centimeter-level precision by leveraging blockchain technology to incentivize individuals and organizations to operate base stations that collect and distribute Global Navigation Satellite System (GNSS) signals. The network serves autonomous vehicles, precision agriculture, surveying, and robotics applications that require highly accurate positioning data. GEODNET operates on the Solana blockchain and rewards base station operators with GEOD tokens for contributing data to the network. As of 2026-07-27, the project has established a global footprint with thousands of active base stations across multiple continents.

Key Takeaway: Geodnet addresses the high cost and limited coverage of traditional RTK correction services by decentralizing the infrastructure layer. Instead of relying on expensive subscription services from centralized providers, GEODNET allows anyone to deploy a base station and earn GEOD tokens while contributing to a global network that delivers affordable, high-precision GPS correction data to industries that depend on accurate positioning.

What Is Geodnet (GEOD)?

Geodnet is a blockchain-based decentralized physical infrastructure network designed to provide real-time kinematic (RTK) GPS correction services. RTK is a satellite navigation technique that enhances the precision of position data derived from GNSS signals. Traditional GPS systems typically provide accuracy within 5-10 meters, which is insufficient for applications such as autonomous vehicle navigation, precision farming, land surveying, and drone operations. RTK correction data can improve accuracy to the centimeter level by correcting for atmospheric interference, satellite orbit errors, and clock drift.

GEODNET decentralizes the delivery of RTK correction data by incentivizing individuals and organizations to operate GNSS reference stations. These base stations receive signals from multiple satellite constellations including GPS, GLONASS, Galileo, and BeiDou, then calculate correction data and broadcast it to the network. Users who need high-precision positioning can access this correction data through GEODNET’s network, paying fees in GEOD tokens or accessing subsidized services depending on the network’s governance decisions.

The GEOD token serves multiple functions within the ecosystem. It is used to reward base station operators for providing data, to pay for access to correction services, and to participate in governance decisions that shape the network’s development and resource allocation. The project is built on the Solana blockchain, which provides the speed and low transaction costs necessary for a global infrastructure network that processes real-time data from thousands of distributed nodes.

GEODNET’s decentralized model contrasts with traditional RTK services, which are typically provided by commercial operators or government agencies that maintain proprietary base station networks. These centralized services often charge high subscription fees and have limited geographic coverage. By opening the infrastructure layer to decentralized participation, GEODNET aims to expand global RTK coverage while reducing costs for end users.

How Does Geodnet Work?

Core Technology Behind Geodnet

GEODNET operates through a network of GNSS reference stations that continuously receive signals from satellite constellations. Each base station is equipped with a multi-band GNSS receiver capable of tracking signals from GPS, GLONASS, Galileo, and BeiDou satellites. The receiver collects raw satellite data including pseudorange measurements, carrier phase observations, and satellite ephemeris information.

The base station processes this raw data to calculate its precise position using known coordinates. Because the station’s location is fixed and known, any discrepancies between the calculated position and the actual position represent errors in the satellite signals caused by atmospheric delays, ionospheric interference, and other factors. The station generates correction data that quantifies these errors and broadcasts it to the GEODNET network.

The correction data is transmitted to a central processing layer that aggregates information from multiple base stations. This aggregation improves the accuracy and reliability of the correction data by cross-referencing observations from different geographic locations. The processed correction data is then made available to users through GEODNET’s network infrastructure.

Users who require high-precision positioning access the correction data through GEODNET’s application programming interface (API) or through compatible RTK-enabled devices. The user’s GNSS receiver applies the correction data to its own satellite observations, which significantly reduces positioning errors and achieves centimeter-level accuracy. This process happens in real-time, allowing applications such as autonomous vehicles and precision agriculture equipment to make immediate navigation decisions based on highly accurate position data.

The blockchain layer serves several critical functions. First, it records the contributions of each base station operator, tracking uptime, data quality, and geographic coverage. Second, it manages the distribution of GEOD token rewards to operators based on their contributions. Third, it facilitates payments from users who access the correction services. Fourth, it enables governance mechanisms that allow token holders to vote on network parameters such as reward distribution, service fees, and infrastructure priorities.

Step-by-Step Functionality

  1. Base Station Deployment: An individual or organization purchases a GEODNET-compatible GNSS receiver and antenna. The equipment is installed at a fixed location with a clear view of the sky to maximize satellite visibility. The operator registers the base station on the GEODNET network by providing geographic coordinates and connecting the device to the internet.
  1. Data Collection: The base station continuously receives signals from multiple satellite constellations. The multi-band receiver tracks L1, L2, and L5 frequency bands, which provide the data necessary for high-precision RTK calculations. The station collects raw observation data including carrier phase measurements, which are critical for achieving centimeter-level accuracy.
  1. Correction Calculation: The base station’s processing unit calculates the difference between the observed satellite positions and the station’s known fixed position. This difference represents the error in the satellite signals. The station generates correction data in standard formats such as RTCM (Radio Technical Commission for Maritime Services) messages, which are widely used in the GNSS industry.
  1. Data Transmission: The correction data is transmitted to GEODNET’s network infrastructure through an internet connection. The data is timestamped and associated with the base station’s unique identifier. The network validates the data quality and ensures that the station is operating within acceptable parameters.
  1. Reward Distribution: The blockchain layer records the base station’s contribution and calculates the appropriate GEOD token reward. Rewards are distributed based on factors such as uptime, data quality, geographic coverage value, and network demand. Operators receive rewards periodically, and the distribution is transparent and verifiable on the Solana blockchain.
  1. User Access: Users who need RTK correction data access the GEODNET network through compatible devices or software applications. The user’s device requests correction data for their geographic location, and the network provides the most relevant correction information from nearby base stations. The user’s GNSS receiver applies the correction data to achieve high-precision positioning.
  1. Payment and Governance: Users who access premium services or high-volume data pay fees in GEOD tokens. These fees contribute to the network’s sustainability and may be redistributed to base station operators. GEOD token holders participate in governance votes to determine how network resources are allocated, which services are prioritized, and how the reward structure evolves over time.

How Is Geodnet Different from GPS?

Key Differences Between Geodnet and GPS

Feature Traditional GPS GEODNET
Accuracy 5-10 meters Centimeter-level (1-3 cm)
Infrastructure Government-operated satellites Decentralized base station network
Correction Data Limited or expensive RTK services Blockchain-incentivized global coverage
Cost Free for basic use; high fees for RTK Token-based access; lower cost potential
Coverage Global satellite coverage Growing base station network coverage
Governance Centralized government control Decentralized token holder governance
Incentive Model No user participation rewards Base station operators earn GEOD tokens
Data Transparency Limited public access to correction data Blockchain-verified data contributions

Traditional GPS relies on satellite signals from government-operated constellations such as the United States’ GPS, Russia’s GLONASS, Europe’s Galileo, and China’s BeiDou. These systems provide free positioning services with accuracy sufficient for general navigation, but they do not deliver the precision required for applications such as autonomous vehicles, precision agriculture, or professional surveying. To achieve centimeter-level accuracy, users must subscribe to commercial RTK correction services, which are often expensive and have limited geographic coverage.

GEODNET decentralizes the correction data infrastructure by incentivizing individuals and organizations to operate base stations. This model expands coverage to areas that are underserved by traditional RTK providers and reduces costs by eliminating the need for centralized infrastructure investment. The blockchain layer ensures that contributions are transparent, verifiable, and fairly rewarded, creating a sustainable ecosystem that aligns the interests of base station operators, users, and token holders.

The decentralized model also introduces governance mechanisms that allow the community to shape the network’s development. Token holders can vote on proposals that determine how resources are allocated, which geographic regions receive priority for expansion, and how the reward structure adapts to changing market conditions. This participatory governance contrasts with the top-down decision-making of traditional GPS systems, which are controlled by government agencies with limited public input.

What Are the Advantages of Using Geodnet?

Scalability and Decentralization

GEODNET’s decentralized architecture enables rapid global expansion without the need for centralized capital investment. Traditional RTK correction services require companies or government agencies to deploy and maintain proprietary base station networks, which involves significant upfront costs and ongoing operational expenses. This centralized model limits coverage to high-value markets and leaves many regions underserved.

By contrast, GEODNET allows anyone to deploy a base station and contribute to the network. Individuals, businesses, and organizations can purchase compatible equipment, install it at a suitable location, and begin earning GEOD token rewards. This distributed deployment model accelerates network growth and expands coverage to areas that would not be economically viable for centralized providers. As of 2026-07-27, GEODNET has established thousands of active base stations across North America, Europe, Asia, and other regions, creating a global RTK correction network that continues to expand.

Decentralization also enhances the network’s resilience. Traditional RTK services are vulnerable to single points of failure, such as equipment malfunctions, internet outages, or operational disruptions at centralized facilities. GEODNET’s distributed network reduces this risk by ensuring that correction data is available from multiple base stations in any given area. If one station goes offline, nearby stations continue to provide coverage, maintaining service availability for users.

The decentralized model aligns incentives between network participants. Base station operators are rewarded for contributing high-quality data, which encourages them to maintain reliable equipment and maximize uptime. Users benefit from lower costs and broader coverage, while token holders gain value from the network’s growth and adoption. This alignment creates a sustainable ecosystem that can scale globally without relying on centralized funding or subsidies.

Enhanced Accuracy and Reliability

GEODNET delivers centimeter-level positioning accuracy by leveraging RTK correction techniques. RTK works by comparing satellite observations from a user’s GNSS receiver with observations from nearby reference stations. The reference stations have known fixed positions, so any discrepancies between their calculated positions and their actual positions represent errors in the satellite signals. By quantifying these errors and transmitting correction data to users, RTK systems eliminate most sources of positioning inaccuracy.

GEODNET’s multi-constellation approach enhances accuracy and reliability. The network’s base stations track signals from GPS, GLONASS, Galileo, and BeiDou satellites, providing redundancy and improving positioning performance in challenging environments. Multi-constellation tracking increases the number of visible satellites, which improves geometric dilution of precision (GDOP) and reduces the impact of signal obstructions such as buildings, trees, and terrain.

The network’s data aggregation layer further enhances accuracy by cross-referencing observations from multiple base stations. This approach reduces the impact of localized errors and improves the consistency of correction data across different geographic areas. Users benefit from more reliable positioning, which is critical for applications such as autonomous vehicle navigation, where even small positioning errors can have significant safety implications.

GEODNET’s blockchain-based verification ensures data integrity. Each base station’s contributions are recorded on the Solana blockchain, creating a transparent and tamper-proof record of data quality and uptime. This verification mechanism prevents fraudulent contributions and ensures that users receive accurate correction data. The transparency of the blockchain layer also builds trust among network participants, which is essential for the network’s long-term sustainability and adoption.

What Is the Role of the GEOD Token?

The GEOD token is the native utility and governance token of the GEODNET ecosystem. It serves multiple functions that are essential to the network’s operation and sustainability.

Incentivizing Base Station Operators: GEOD tokens are distributed to base station operators as rewards for contributing correction data to the network. The reward amount is determined by factors such as uptime, data quality, geographic coverage value, and network demand. Operators receive rewards periodically, and the distribution is transparent and verifiable on the Solana blockchain. This incentive mechanism encourages individuals and organizations to deploy and maintain base stations, which expands the network’s coverage and improves service availability.

Paying for Network Services: Users who access GEODNET’s RTK correction services pay fees in GEOD tokens. These fees may be required for premium services, high-volume data access, or specialized applications that require enhanced accuracy or reliability. The fee structure is determined by the network’s governance mechanisms, which allow token holders to vote on pricing models that balance accessibility with sustainability. Fees collected from users contribute to the network’s revenue and may be redistributed to base station operators or used to fund network development.

Governance Participation: GEOD token holders can participate in governance votes that shape the network’s development and resource allocation. Governance proposals may address topics such as reward distribution formulas, service fee structures, geographic expansion priorities, protocol upgrades, and partnerships with industry stakeholders. The decentralized governance model ensures that the network evolves in response to the needs and preferences of its community rather than being controlled by a centralized authority.

Staking and Network Security: Token holders may stake GEOD tokens to support network security and governance processes. Staking mechanisms can align long-term incentives by rewarding participants who commit their tokens to the network’s success. Staked tokens may also be used to validate data quality, resolve disputes, or participate in consensus mechanisms that ensure the integrity of the network’s operations.

The GEOD token’s utility is directly tied to the network’s growth and adoption. As more base stations join the network and more users access RTK correction services, demand for GEOD tokens increases. This demand creates value for token holders and incentivizes continued network expansion. The token’s role in governance ensures that the network remains responsive to changing market conditions and technological developments.

Tokenomics and Market Data

GEODNET’s tokenomics are designed to balance incentives for base station operators, users, and long-term token holders. The total supply of GEOD tokens is fixed, which creates scarcity and aligns the token’s value with the network’s growth and adoption. Token distribution is allocated across several categories including rewards for base station operators, ecosystem development, team and advisors, and liquidity provision.

As of 2026-07-27, specific market data such as circulating supply, market capitalization, and 24-hour trading volume are subject to change and should be verified through reputable cryptocurrency data platforms such as CoinMarketCap or CoinGecko. Market data reflects the token’s trading activity on centralized and decentralized exchanges, and prices may vary based on liquidity and market conditions.

The token’s utility within the GEODNET ecosystem creates intrinsic demand that is independent of speculative trading activity. Base station operators need to hold GEOD tokens to participate in governance and may choose to stake tokens to maximize rewards. Users who access network services must acquire GEOD tokens to pay for premium features or high-volume data access. This utility-driven demand supports the token’s value over time and differentiates it from purely speculative assets.

Token unlock schedules and vesting periods for team, advisor, and ecosystem allocations are designed to prevent sudden supply shocks and ensure long-term alignment with the network’s success. Transparent disclosure of token distribution and unlock schedules is essential for building trust with investors and network participants. Potential investors should review the project’s official documentation and tokenomics disclosures before making any decisions.

Allocation Category Percentage Purpose
Base Station Rewards 40-50% Incentivize data contribution and network expansion
Ecosystem Development 20-30% Fund partnerships, integrations, and growth initiatives
Team and Advisors 10-15% Compensate core contributors with vesting schedules
Liquidity and Exchange 5-10% Ensure trading availability and market liquidity
Community and Governance 5-10% Support decentralized governance and community initiatives

The table above represents a typical allocation structure for DePIN projects and may not reflect GEODNET’s exact distribution. Readers should consult the project’s official tokenomics documentation for precise allocation details.

Key Use Cases for GEODNET

Autonomous Vehicles: Self-driving cars, trucks, and delivery robots require centimeter-level positioning accuracy to navigate safely and efficiently. GEODNET’s RTK correction data enables autonomous systems to determine their exact position on the road, which is critical for lane-keeping, obstacle avoidance, and route planning. The decentralized network’s broad coverage and low cost make it an attractive alternative to proprietary RTK services for autonomous vehicle developers.

Precision Agriculture: Modern farming equipment uses GPS-guided systems to optimize planting, fertilization, and harvesting. Centimeter-level accuracy allows tractors and harvesters to follow precise paths, reducing overlap and minimizing waste. GEODNET’s correction data enables farmers to achieve higher yields, lower input costs, and reduce environmental impact by applying resources more efficiently. The network’s decentralized model also expands coverage to rural areas that are underserved by traditional RTK providers.

Land Surveying and Construction: Professional surveyors and construction companies rely on high-precision GNSS equipment to measure property boundaries, map terrain, and guide heavy machinery. GEODNET’s RTK correction data provides the accuracy required for these applications at a lower cost than commercial subscription services. The network’s global coverage also supports international projects and remote work sites where traditional RTK services may not be available.

Drone Operations: Drones used for mapping, inspection, and delivery require accurate positioning to capture high-quality data and navigate safely. GEODNET’s correction data enables drones to achieve precise flight paths and accurate georeferencing of aerial imagery. This capability is valuable for applications such as infrastructure inspection, agricultural monitoring, and emergency response.

Robotics and Logistics: Warehouses, factories, and distribution centers increasingly use autonomous robots to move goods and manage inventory. GEODNET’s positioning data supports indoor-outdoor navigation systems that require seamless transitions between GPS-based outdoor tracking and indoor positioning technologies. The network’s low latency and high accuracy improve the efficiency and reliability of robotic logistics systems.

Geospatial Research: Scientists and researchers use high-precision GNSS data to study phenomena such as tectonic plate movement, sea level rise, and atmospheric conditions. GEODNET’s decentralized network provides researchers with access to a global dataset of GNSS observations, which can be used for scientific analysis and modeling. The network’s open data approach supports collaborative research and expands access to geospatial information.

Main Risks

Network Coverage Gaps: While GEODNET’s decentralized model accelerates expansion, coverage may still be limited in certain geographic regions, particularly in remote or economically disadvantaged areas. Users in these regions may experience reduced accuracy or service availability until more base stations are deployed. The network’s growth depends on continued incentives for base station operators and community-driven expansion efforts.

Data Quality Variability: Because GEODNET relies on distributed base stations operated by individuals and organizations, data quality may vary depending on equipment maintenance, installation quality, and environmental conditions. The network’s verification mechanisms help ensure data integrity, but users should be aware that correction data quality may not be uniform across all locations. The project’s governance and quality control processes are critical for maintaining high standards.

Token Price Volatility: Like all cryptocurrency assets, the GEOD token is subject to price volatility driven by market sentiment, trading activity, and macroeconomic conditions. Token price fluctuations can impact the economics of base station operation and the cost of accessing network services. Users and operators should consider this volatility when planning long-term participation in the network.

Regulatory Uncertainty: Decentralized infrastructure networks operate in a regulatory environment that is still evolving. Governments may introduce regulations that affect the operation of base stations, the use of GNSS data, or the trading of GEOD tokens. Regulatory changes could impact the network’s growth, service availability, or token value. Participants should stay informed about regulatory developments in their jurisdictions.

Competition from Centralized Providers: Traditional RTK correction services are provided by established companies with proprietary infrastructure and customer relationships. These providers may respond to GEODNET’s growth by lowering prices, expanding coverage, or introducing new services. The network’s success depends on its ability to offer compelling advantages in cost, coverage, and accessibility that differentiate it from centralized alternatives.

Technical and Operational Challenges: Operating a decentralized infrastructure network involves technical complexities such as data synchronization, network latency, and equipment compatibility. Users may encounter technical issues that require troubleshooting or support. The project’s development team and community must address these challenges to ensure a reliable and user-friendly experience.

What to Watch Next

Base Station Deployment Growth: Monitor the number of active base stations and their geographic distribution. Rapid growth in base station deployment indicates strong network effects and expanding coverage. Regional expansion into underserved markets such as Africa, South America, and Southeast Asia would demonstrate the network’s ability to scale globally.

Partnerships with Industry Leaders: Watch for announcements of partnerships with autonomous vehicle manufacturers, agricultural equipment companies, drone operators, and geospatial technology providers. Strategic partnerships validate the network’s value proposition and accelerate adoption among enterprise users. Integrations with popular GNSS hardware and software platforms would also expand the network’s reach.

Governance Proposals and Community Engagement: Track governance activity and community participation in decision-making processes. Active governance indicates a healthy and engaged community that is invested in the network’s long-term success. Proposals related to reward structures, fee models, and expansion priorities provide insight into the network’s strategic direction.

Token Listing and Liquidity: Monitor GEOD token listings on centralized and decentralized exchanges. Increased liquidity and trading volume improve price discovery and make it easier for users and operators to acquire tokens. Listings on major exchanges also increase the token’s visibility and accessibility to a broader audience.

Technological Upgrades: Follow the project’s development roadmap and technical updates. Enhancements such as improved data processing algorithms, lower latency, multi-frequency support, and integration with emerging positioning technologies would strengthen the network’s competitive position. Open-source development and transparent communication about technical progress build trust and attract developer participation.

Regulatory Developments: Stay informed about regulatory changes that affect decentralized infrastructure networks, GNSS services, and cryptocurrency assets. Regulatory clarity in key markets could accelerate adoption, while restrictive regulations could create challenges. The project’s ability to navigate regulatory environments will be critical for long-term sustainability.

Key Takeaways

GEODNET represents a new model for delivering high-precision GPS correction services by decentralizing the infrastructure layer and incentivizing global participation through blockchain technology. The network’s centimeter-level accuracy, broad coverage potential, and lower cost structure address key limitations of traditional RTK services. The GEOD token aligns incentives among base station operators, users, and governance participants, creating a sustainable ecosystem that can scale globally.

For users who require high-precision positioning, GEODNET offers an accessible alternative to expensive commercial RTK subscriptions. For base station operators, the network provides an opportunity to monetize GNSS infrastructure and contribute to a global positioning network. For token holders, GEODNET’s growth and adoption create utility-driven demand that supports long-term value.

However, participants should understand the risks associated with network coverage gaps, data quality variability, token price volatility, and regulatory uncertainty. The project’s success depends on continued base station deployment, community engagement, technological development, and strategic partnerships. Monitoring these factors will help stakeholders assess the network’s progress and make informed decisions about participation.

FAQ

Is GEODNET better than traditional GPS systems?

GEODNET is not a replacement for GPS satellite systems but rather a complementary service that enhances GPS accuracy. Traditional GPS provides meter-level positioning, which is sufficient for general navigation. GEODNET delivers centimeter-level accuracy through RTK correction data, which is necessary for applications such as autonomous vehicles, precision agriculture, and professional surveying. The decentralized model offers broader coverage and lower costs compared to traditional commercial RTK services.

Can anyone participate in GEODNET mining?

Yes, individuals and organizations can participate by deploying a GEODNET-compatible GNSS base station. Participants need to purchase compatible equipment, install it at a fixed location with clear sky visibility, and connect it to the internet. The base station must be registered on the GEODNET network with accurate geographic coordinates. Operators earn GEOD token rewards based on uptime, data quality, and network demand. Technical requirements and setup instructions are available through the project’s official documentation.

What industries can benefit from GEODNET?

GEODNET serves industries that require high-precision positioning including autonomous vehicles, precision agriculture, land surveying, construction, drone operations, robotics, logistics, and geospatial research. Any application that depends on centimeter-level accuracy can benefit from the network’s RTK correction data. The decentralized model also expands access to underserved regions and reduces costs for users who would otherwise rely on expensive commercial RTK subscriptions.

How secure is GEODNET’s blockchain?

GEODNET operates on the Solana blockchain, which uses a Proof of Stake (PoS) consensus mechanism and has been designed for high throughput and low transaction costs. The blockchain layer records base station contributions, manages token rewards, and facilitates governance processes. Security depends on the Solana network’s validator set and the integrity of the GEODNET protocol. The decentralized nature of the base station network also reduces single points of failure and enhances resilience against operational disruptions.

What is the future potential of GEODNET?

GEODNET’s future potential depends on its ability to expand base station coverage, attract enterprise users, and maintain a sustainable economic model. The growing demand for autonomous systems, precision agriculture, and high-accuracy positioning creates a favorable market environment. The network’s decentralized model offers competitive advantages in cost, coverage, and accessibility compared to traditional RTK services. Success will require continued community engagement, technological development, strategic partnerships, and effective governance.

How does GEODNET compare to other DePIN projects?

GEODNET is part of the broader decentralized physical infrastructure network (DePIN) category, which includes projects focused on wireless connectivity, storage, computing, and other infrastructure services. GEODNET’s focus on high-precision positioning differentiates it from other DePIN projects. The network’s success depends on its ability to deliver measurable value to users who require centimeter-level accuracy, which creates a clear use case and utility-driven demand for the GEOD token. Compared to other DePIN projects, GEODNET addresses a specialized but growing market with high barriers to entry for centralized providers.

Cryptocurrency prices are highly volatile. This article is for educational purposes only and does not constitute financial, investment, legal, or tax advice. Always do your own research and consider your financial situation and risk tolerance before making any decision. Market data, rankings, and statistics reflect sources available at the time of writing (as of 2026-07-27) and may change rapidly. The evaluation of GEODNET is based on available information, and availability of services may vary by region. Participation in decentralized infrastructure networks involves technical, operational, and market risks. Base station operators should understand equipment requirements, maintenance responsibilities, and token reward variability before deploying infrastructure. Users should verify data quality, coverage availability, and service fees before relying on GEODNET for critical applications.

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What Is Geodnet (GEOD) and How Does It Work? A Complete Guide to Decentralized GPS Correction | OneBullEx