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- xx network vs Integritee
xx network vs Integritee Scalability
Real-time TPS
xx network TPS is 99.14% lower than Integritee TPS
Max TPS (100 blocks)
xx network max TPS is 91.91% lower than Integritee max TPS
Max Theoretical TPS
xx network max theoretical TPS is the same as Integritee max theoretical TPS
Transaction Volume
xx network transaction volume is 99.1% lower than Integritee transaction volume
Block Time
xx network block time is 52.73% shorter than Integritee block time
Finality
xx network finality is 40% shorter than Integritee finality
Type
xx network is a layer 1 blockchain, while Integritee is a parachain
Launch Date
xx network was launched 4 months before Integritee
xx network vs Integritee Decentralization New
Nakamoto Coefficient
xx network has no data, while Integritee Nakamoto Coefficient is 282
Validators
xx network has 64.9% fewer validators than Integritee
Stake
xx network stake is 96.5% lower than Integritee stake
Consensus Mechanism
xx network is PoS, while Integritee is Nominated Proof of Stake
Governance
xx network and Integritee governance are both on-chain
xx network vs Integritee Real-Time TPS Chart
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Other Comparisons
xx network Comparisons
About Blockchains
About xx network
The xx network is a future-proof layer-one blockchain that facilitates thousands of transactions per second and protects against cryptography-breaking quantum computing. The xx network’s blockchain enables digital sovereignty by putting the users in control of the messaging and payments infrastructure. The xx blockchain utilizes breakthroughs in stake-based consensus protocols to provide energy-efficient and quantum-secure transactions at a scale to meet the needs for global payments.
About Integritee
Integritee is a blockchain project focused on providing privacy-preserving solutions for dApps and smart contracts. It aims to enable confidential computing on public blockchains, allowing sensitive data to be processed securely without compromising privacy. Integritee utilizes trusted execution environments (TEEs), such as Intel SGX, to create secure enclaves where data can be processed confidentially. This ensures that data remains encrypted and inaccessible to anyone, including the network validators or operators, while it is being processed. This idea opens up new possibilities for privacy-focused applications in finance, healthcare, and so on.