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- Harmony vs Avalanche
Harmony vs Avalanche
Harmony vs Avalanche Scalability
Real-time TPS (1H)
Harmony has no data, while Avalanche TPS is 19.89 tx/s
Max TPS (100 blocks)
Harmony has no data, while Avalanche max TPS is 122.7 tx/s
Max Theoretical TPS
Harmony has no data, while Avalanche max theoretical TPS is 1,191 tx/s
Transaction Volume (1H)
Harmony has no data, while Avalanche transaction volume is 71.6K txns
Block Time (1H)
Harmony has no data, while Avalanche block time is 1.85s
Finality
Harmony has no data, while Avalanche finality is 2s
Type
Harmony has no data, while Avalanche is a layer 1 blockchain
Total Transactions
Neither Harmony nor Avalanche have data for total transactions
Launch Date
Harmony has no data, while Avalanche was launched on Sep 21, 2020
Harmony vs Avalanche Decentralization
Nakamoto Coefficient
Harmony has no data, while Avalanche Nakamoto Coefficient is 27
Validators/Miners
Harmony has no data, while Avalanche has 911 validators
Stake/Hashrate
Harmony has no data, while Avalanche stake is $6.834B
Consensus Mechanism
Harmony has no data, while Avalanche is PoS
Governance
Harmony has no data, while Avalanche governance is on-chain
Harmony vs Avalanche Developer Activity New
Developers
Harmony has no data, while Avalanche has 750 developers
Repos
Harmony has no data, while Avalanche has 109 repos
Commits
Harmony has no data, while Avalanche has 60,628 commits
Stars
Harmony has no data, while Avalanche has 6,594 stars
Watchers
Harmony has no data, while Avalanche has 1,286 watchers
Other Comparisons
Harmony Comparisons
About Blockchains
About Harmony
Harmony is an open blockchain with data sharding and fast finality.
About Avalanche
Avalanche emerges as a rapid, scalable blockchain platform facilitating the seamless creation and deployment of dApps. Distinguished by its unique consensus mechanism, it's particularly good for DeFi applications, allowing high throughput and nearly instant finality. Its architecture allows for a network of interconnected blockchains, each safeguarded by dynamic subsets of validators, ensuring scalability while maintaining speed, reliability, and security.