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Carv

Carv árfolyam (CARV)

A(z) Carv vásárlása Európa vezető digitális eszköz kereskedőjénél egyszerű, gyors és biztonságos.

A(z) Carv vásárlása Európa vezető digitális eszköz kereskedőjénél egyszerű, gyors és biztonságos.

€0.0293

-€0.0017-5.60 %
-€0.0017-5.60 %



Ez az átváltó csak tájékoztató jellegű értékeket mutat, és nem tükrözi a tényleges tranzakciós árfolyamokat.

Utolsó frissítés: 2026. 09. 16. 14:20:00

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Előfordulhat, hogy befektetésed egy részét vagy akár egészét elveszíted, ezért fontos, hogy csak annyit fektess be, amennyinek az elvesztését megengedheted magadnak. A kockázatokról részletes információt a következő dokumentumban találsz:Kockázati tájékoztató.

Előfordulhat, hogy befektetésed egy részét vagy akár egészét elveszíted, ezért fontos, hogy csak annyit fektess be, amennyinek az elvesztését megengedheted magadnak. A kockázatokról részletes információt a következő dokumentumban találsz:Kockázati tájékoztató.

Carv mai ára

Tekintsd át a legfrissebb Carv ármozgásokat. Íme a mai trend egy pillantásra: -5.60 %

Carv árstatisztikák

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Carv piaci statisztikák

  • Napi csúcs

    €0.03

  • Napi mélypont

    €0.03

  • Volatilitás (1H)

    19.61%

  • 52 hetes csúcs

    €0.27

  • 52 hetes mélypont

    €0.02

  • Piaci kapitalizáció

    €15.65M

Carv átváltási táblázat

1 EUR

34.11 CARV

5 EUR

170.55 CARV

10 EUR

341.10 CARV

15 EUR

511.64 CARV

20 EUR

682.19 CARV

25 EUR

852.74 CARV

1 Carv (CARV) = Us Dollar (USD)

USD 0,03

1 Carv (CARV) = Swiss Franc (CHF)

CHF 0,03

1 Carv (CARV) = British Pound Sterling (GBP)

GBP 0,03

1 Carv (CARV) = Turkish Lira (TRY)

TRY 1,64

1 Carv (CARV) = Polish Zloty (PLN)

PLN 0,13

1 Carv (CARV) = Hungarian Forint (HUF)

HUF 10,69

1 Carv (CARV) = Czech Koruna (CZK)

CZK 0,71

1 Carv (CARV) = Norwegian Krone (NOK)

NOK 0,32

1 Carv (CARV) = Swedish Krona (SEK)

SEK 0,33

1 Carv (CARV) = Danish Krone (DKK)

DKK 0,22

1 Carv (CARV) = Romanian Leu (RON)

RON 0,15

A(z) Carv (CARV) bemutatása

A CARV egy decentralizált adatinfrastruktúra projekt, amely a magas minőségű on-chain és off-chain adatokon keresztül az Általános Mesterséges Intelligencia (AGI) fejlesztésére összpontosít. Az adatok feletti önrendelkezés biztosításával és a kollaboratív AGI-fejlődés lehetővé tételével a CARV hidat képez a blokklánc és a mesterséges intelligencia között, hogy felszabadítsa a méltányos értékteremtést, adatvédelmet és intelligenciát a kialakuló digitális ökoszisztémában.

Fedezz fel kapcsolódó kriptovalutákat

Legnagyobb piaci kapitalizáció

A legnagyobb piaci kapitalizációval rendelkező kriptovaluták

  • Szabályozott

    Ausztriai székhelyű, európai szabályozás alatt álló kripto- és értékpapír bróker platform

    Bővebben
  • Biztonságos és megbízható

    A pénzeszközöket biztonságosan, offline pénztárcákban tároljuk. Teljes mértékben megfelel az európai adat-, IT- és pénzmosás elleni előírásoknak.

    Bővebben
  • Megbízható

    Több mint 7 millió elégedett felhasználó. Kiváló Trustpilot értékelés.

    Vélemények megtekintése
  • Az ESG (környezeti, társadalmi és irányítási) szabályozások célja, hogy a kriptoeszközök környezeti hatásait (pl. energiaigényes bányászat) kezeljék, támogassák az átláthatóságot, és biztosítsák az etikus irányítási gyakorlatokat, hogy a kriptoipar összhangba kerüljön a szélesebb fenntarthatósági és társadalmi célokkal. Ezek a szabályozások elősegítik a kockázatokat mérséklő és a digitális eszközökbe vetett bizalmat erősítő szabványok betartását.

    Név

    Bitpanda Asset Management GmbH, Bitpanda GmbH

    Relevant legal entity identifier

    9845005X9B7N610K0093, 5493007WZ7IFULIL8G21

    Name of the crypto-asset

    carv

    Consensus Mechanism

    carv is present on the following networks: Arbitrum, Base, Ethereum, Solana. Arbitrum is a Layer 2 solution on top of Ethereum that uses Optimistic Rollups to enhance scalability and reduce transaction costs. It assumes that transactions are valid by default and only verifies them if there's a challenge (optimistic): Core Components: • Sequencer: Orders transactions and creates batches for processing. • Bridge: Facilitates asset transfers between Arbitrum and Ethereum. • Fraud Proofs: Protect against invalid transactions through an interactive verification process. Verification Process: 1. Transaction Submission: Users submit transactions to the Arbitrum Sequencer, which orders and batches them. 2. State Commitment: These batches are submitted to Ethereum with a state commitment. 3. Challenge Period: Validators have a specific period to challenge the state if they suspect fraud. 4. Dispute Resolution: If a challenge occurs, the dispute is resolved through an iterative process to identify the fraudulent transaction. The final operation is executed on Ethereum to determine the correct state. 5. Rollback and Penalties: If fraud is proven, the state is rolled back, and the dishonest party is penalized. Security and Efficiency: The combination of the Sequencer, bridge, and interactive fraud proofs ensures that the system remains secure and efficient. By minimizing on-chain data and leveraging off-chain computations, Arbitrum can provide high throughput and low fees. Base is a Layer-2 (L2) solution on Ethereum that was introduced by Coinbase and developed using Optimism's OP Stack. L2 transactions do not have their own consensus mechanism and are only validated by the execution clients. The so-called sequencer regularly bundles stacks of L2 transactions and publishes them on the L1 network, i.e. Ethereum. Ethereum's consensus mechanism (Proof-of-stake) thus indirectly secures all L2 transactions as soon as they are written to L1. The crypto-asset's Proof-of-Stake (PoS) consensus mechanism, introduced with The Merge in 2022, replaces mining with validator staking. Validators must stake at least 32 ETH every block a validator is randomly chosen to propose the next block. Once proposed the other validators verify the blocks integrity. The network operates on a slot and epoch system, where a new block is proposed every 12 seconds, and finalization occurs after two epochs (~12.8 minutes) using Casper-FFG. The Beacon Chain coordinates validators, while the fork-choice rule (LMD-GHOST) ensures the chain follows the heaviest accumulated validator votes. Validators earn rewards for proposing and verifying blocks, but face slashing for malicious behavior or inactivity. PoS aims to improve energy efficiency, security, and scalability, with future upgrades like Proto-Danksharding enhancing transaction efficiency. Solana uses a unique combination of Proof of History (PoH) and Proof of Stake (PoS) to achieve high throughput, low latency, and robust security. Here’s a detailed explanation of how these mechanisms work: Core Concepts 1. Proof of History (PoH): Time-Stamped Transactions: PoH is a cryptographic technique that timestamps transactions, creating a historical record that proves that an event has occurred at a specific moment in time. Verifiable Delay Function: PoH uses a Verifiable Delay Function (VDF) to generate a unique hash that includes the transaction and the time it was processed. This sequence of hashes provides a verifiable order of events, enabling the network to efficiently agree on the sequence of transactions. 2. Proof of Stake (PoS): Validator Selection: Validators are chosen to produce new blocks based on the number of SOL tokens they have staked. The more tokens staked, the higher the chance of being selected to validate transactions and produce new blocks. Delegation: Token holders can delegate their SOL tokens to validators, earning rewards proportional to their stake while enhancing the network's security. Consensus Process 1. Transaction Validation: Transactions are broadcast to the network and collected by validators. Each transaction is validated to ensure it meets the network’s criteria, such as having correct signatures and sufficient funds. 2. PoH Sequence Generation: A validator generates a sequence of hashes using PoH, each containing a timestamp and the previous hash. This process creates a historical record of transactions, establishing a cryptographic clock for the network. 3. Block Production: The network uses PoS to select a leader validator based on their stake. The leader is responsible for bundling the validated transactions into a block. The leader validator uses the PoH sequence to order transactions within the block, ensuring that all transactions are processed in the correct order. 4. Consensus and Finalization: Other validators verify the block produced by the leader validator. They check the correctness of the PoH sequence and validate the transactions within the block. Once the block is verified, it is added to the blockchain. Validators sign off on the block, and it is considered finalized. Security and Economic Incentives 1. Incentives for Validators: Block Rewards: Validators earn rewards for producing and validating blocks. These rewards are distributed in SOL tokens and are proportional to the validator’s stake and performance. Transaction Fees: Validators also earn transaction fees from the transactions included in the blocks they produce. These fees provide an additional incentive for validators to process transactions efficiently. 2. Security: Staking: Validators must stake SOL tokens to participate in the consensus process. This staking acts as collateral, incentivizing validators to act honestly. If a validator behaves maliciously or fails to perform, they risk losing their staked tokens. Delegated Staking: Token holders can delegate their SOL tokens to validators, enhancing network security and decentralization. Delegators share in the rewards and are incentivized to choose reliable validators. 3. Economic Penalties: Slashing: Validators can be penalized for malicious behavior, such as double-signing or producing invalid blocks. This penalty, known as slashing, results in the loss of a portion of the staked tokens, discouraging dishonest actions.

    Incentive Mechanisms and Applicable Fees

    carv is present on the following networks: Arbitrum, Base, Ethereum, Solana. Arbitrum One, a Layer 2 scaling solution for Ethereum, employs several incentive mechanisms to ensure the security and integrity of transactions on its network. The key mechanisms include: 1. Validators and Sequencers: o Sequencers are responsible for ordering transactions and creating batches that are processed off-chain. They play a critical role in maintaining the efficiency and throughput of the network. o Validators monitor the sequencers' actions and ensure that transactions are processed correctly. Validators verify the state transitions and ensure that no invalid transactions are included in the batches. 2. Fraud Proofs: o Assumption of Validity: Transactions processed off-chain are assumed to be valid. This allows for quick transaction finality and high throughput. o Challenge Period: There is a predefined period during which anyone can challenge the validity of a transaction by submitting a fraud proof. This mechanism acts as a deterrent against malicious behavior. o Dispute Resolution: If a challenge is raised, an interactive verification process is initiated to pinpoint the exact step where fraud occurred. If the challenge is valid, the fraudulent transaction is reverted, and the dishonest actor is penalized. 3. Economic Incentives: o Rewards for Honest Behavior: Participants in the network, such as validators and sequencers, are incentivized through rewards for performing their duties honestly and efficiently. These rewards come from transaction fees and potentially other protocol incentives. o Penalties for Malicious Behavior: Participants who engage in dishonest behavior or submit invalid transactions are penalized. This can include slashing of staked tokens or other forms of economic penalties, which serve to discourage malicious actions. Fees on the Arbitrum One Blockchain 1. Transaction Fees: o Layer 2 Fees: Users pay fees for transactions processed on the Layer 2 network. These fees are typically lower than Ethereum mainnet fees due to the reduced computational load on the main chain. o Arbitrum Transaction Fee: A fee is charged for each transaction processed by the sequencer. This fee covers the cost of processing the transaction and ensuring its inclusion in a batch. 2. L1 Data Fees: o Posting Batches to Ethereum: Periodically, the state updates from the Layer 2 transactions are posted to the Ethereum mainnet as calldata. This involves a fee, known as the L1 data fee, which accounts for the gas required to publish these state updates on Ethereum. o Cost Sharing: Because transactions are batched, the fixed costs of posting state updates to Ethereum are spread across multiple transactions, making it more cost-effective for users. Base is a Layer-2 (L2) solution on Ethereum that uses optimistic rollups provided by the OP Stack on which it was developed. Transaction on base are bundled by a, so called, sequencer and the result is regularly submitted as an Layer-1 (L1) transactions. This way many L2 transactions get combined into a single L1 transaction. This lowers the average transaction cost per transaction, because many L2 transactions together fund the transaction cost for the single L1 transaction. This creates incentives to use base rather than the L1, i.e. Ethereum, itself. To get crypto-assets in and out of base, a special smart contract on Ethereum is used. Since there is no consensus mechanism on L2 an additional mechanism ensures that only existing funds can be withdrawn from L2. When a user wants to withdraw funds, that user needs to submit a withdrawal request on L1. If this request remains unchallenged for a period of time the funds can be withdrawn. During this time period any other user can submit a fault proof, which will start a dispute resolution process. This process is designed with economic incentives for correct behaviour. The crypto-asset's PoS system secures transactions through validator incentives and economic penalties. Validators stake at least 32 ETH and earn rewards for proposing blocks, attesting to valid ones, and participating in sync committees. Rewards are paid in newly issued ETH and transaction fees. Under EIP-1559, transaction fees consist of a base fee, which is burned to reduce supply, and an optional priority fee (tip) paid to validators. Validators face slashing if they act maliciously and incur penalties for inactivity. This system aims to increase security by aligning incentives while making the crypto-asset's fee structure more predictable and deflationary during high network activity. Solana uses a combination of Proof of History (PoH) and Proof of Stake (PoS) to secure its network and validate transactions. Here’s a detailed explanation of the incentive mechanisms and applicable fees: Incentive Mechanisms 4. Validators: Staking Rewards: Validators are chosen based on the number of SOL tokens they have staked. They earn rewards for producing and validating blocks, which are distributed in SOL. The more tokens staked, the higher the chances of being selected to validate transactions and produce new blocks. Transaction Fees: Validators earn a portion of the transaction fees paid by users for the transactions they include in the blocks. This provides an additional financial incentive for validators to process transactions efficiently and maintain the network's integrity. 5. Delegators: Delegated Staking: Token holders who do not wish to run a validator node can delegate their SOL tokens to a validator. In return, delegators share in the rewards earned by the validators. This encourages widespread participation in securing the network and ensures decentralization. 6. Economic Security: Slashing: Validators can be penalized for malicious behavior, such as producing invalid blocks or being frequently offline. This penalty, known as slashing, involves the loss of a portion of their staked tokens. Slashing deters dishonest actions and ensures that validators act in the best interest of the network. Opportunity Cost: By staking SOL tokens, validators and delegators lock up their tokens, which could otherwise be used or sold. This opportunity cost incentivizes participants to act honestly to earn rewards and avoid penalties. Fees Applicable on the Solana Blockchain 7. Transaction Fees: Low and Predictable Fees: Solana is designed to handle a high throughput of transactions, which helps keep fees low and predictable. The average transaction fee on Solana is significantly lower compared to other blockchains like Ethereum. Fee Structure: Fees are paid in SOL and are used to compensate validators for the resources they expend to process transactions. This includes computational power and network bandwidth. 8. Rent Fees: State Storage: Solana charges rent fees for storing data on the blockchain. These fees are designed to discourage inefficient use of state storage and encourage developers to clean up unused state. Rent fees help maintain the efficiency and performance of the network. 9. Smart Contract Fees: Execution Costs: Similar to transaction fees, fees for deploying and interacting with smart contracts on Solana are based on the computational resources required. This ensures that users are charged proportionally for the resources they consume.

    Beginning of the period

    2025-05-05

    End of the period

    2026-05-05

    Energy consumption

    8.37410 (kWh/a)