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Render
RENDER
Render är en decentraliserad beräkningsplattform som kopplar samman grafiska konstnärer och innehållsskapare för att möjliggöra effektivare 3D-rendering.
Kurs*: ...
Förändring (24H)*: ...
Marknadsvärde*: 1372267964.0541
Lansering: 2019
Nätverk: Ethereum
Protokoll: Solana - Proof of History + Proof of Stake (Tower BFT)

* Ej realtidsdata.

* Denna beskrivning av kryptotillgången har inte godkänts av någon behörig myndighet inom EU. Utgivaren av kryptotillgången är ensam ansvarig för innehållet i denna beskrivning av kryptotillgången.

Bakgrundshistoria

Render Token-projektet uppstod ur ett behov att hjälpa konstnärer och designers att utnyttja decentraliserad beräkningskraft för rendering av 3D-innehåll. Projektet startade 2016 och nätverket kom igång under 2017, när tokenens första försäljning genomfördes i oktober 2017 och den offentliga nätverkslansering skedde i april 2020. Skapandet av token inspirerades av idén att koppla samman beräkningskraft decentraliserat från olika delar av världen, samtidigt som det erbjöd en lösning för accelererad rendering – namnet “Render” syftar direkt på denna process.

Exempel

Render Token används i stor utsträckning inom 3D-konst och animation för att hjälpa konstnärer att dela och få beräkningskraft för stora 3D-projekt. Särskilt små studior och oberoende konstnärer har dragit nytta av detta kostnadseffektiva sätt att hantera rendering. Sådana framgångshistorier gör Render Token till ett värdefullt verktyg för många yrkesverksamma inom branschen.

Roliga fakta

En intressant trivia om Render Token är dess bakgrund genom Enjin-projektet, som främst fokuserade på blockchain-baserade spel och föremål innan det berörde 3D-rendering. Det decentraliserade nätverket som möjliggör delning av beräkningskraft och använder Render Tokens har väckt omfattande diskussioner i sitt samhälle som en innovativ metod.

Höjdpunkter från communityn

Render Token-gemenskapen är aktiv och kreativ, där användarna särskilt fokuserar på digitala konstnärer och 3D-designers. Gemenskapen delar tips och tricks för att optimera rendering, och den stoltserar med en stark närvaro på sociala medier, såsom Discord och Twitter, där konstnärer kan visa sina skapelser och få stöd från andra användare.

Vad för RENDER unikt?

Render Token utmärker sig genom sitt unika sätt att möjliggöra decentralisering av beräkningskraft. Till skillnad från många andra kryptovalutor som enbart fokuserar på värdeöverföring, tillför Render Token en praktisk möjlighet att utnyttja kraften i blockchain-teknologin för delning av beräkningskraft i visuella projekt. Detta gör det särskilt unikt inom 3D-konstvärlden.

Framtidsvision

Render Tokens vision är att möjliggöra en ännu mer mångsidig och global delning av beräkningskraft. Framtidsutsikterna förväntas, i takt med att teknologin utvecklas, att fler branscher relaterar till Render och erbjuder konstnärer och designers ännu fler möjligheter att skapa och dela högkvalitativt 3D-innehåll. Målet är att bli en ledande aktör inom kreativ teknologi och öka påverkan även inom andra innovativa områden.
ESG-information +

Energiförbrukning: 271.65161 kWh/a | Förnybar energi: 38.009620909%

ESG-reglering (miljö, socialt ansvar och bolagsstyrning) för kryptotillgångar syftar till att hantera deras miljöpåverkan (t.ex. energiintensiv mining), främja transparens och säkerställa etiska styrningsrutiner för att anpassa kryptobranschen till bredare hållbarhets- och samhällsmål. Dessa regleringar uppmuntrar efterlevnad av standarder som minskar risker och främjar förtroende för digitala tillgångar.

Namn Coinmotion Ltd
Relevant identifierare för juridisk person 2135881-0
Namn på kryptotillgången Render Token
Konsensusmekanism Render Token is present on the following networks: Ethereum, Solana. 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.
Incitamentsmekanismer och tillämpliga avgifter Render Token is present on the following networks: Ethereum, Solana. 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.
Periodens början 2025-07-25
Periodens slut 2026-07-25
Energiförbrukning 271.65161 (kWh/a)
Energiförbrukningsresurser och metoder The energy consumption of this asset is aggregated across multiple components: To determine the energy consumption of a token, the energy consumption of the network(s) ethereum, solana is calculated first. For the energy consumption of the token, a fraction of the energy consumption of the network is attributed to the token, which is determined based on the activity of the crypto-asset within the network. When calculating the energy consumption, the Functionally Fungible Group Digital Token Identifier (FFG DTI) is used - if available - to determine all implementations of the asset in scope. The mappings are updated regularly, based on data of the Digital Token Identifier Foundation. The information regarding the hardware used and the number of participants in the network is based on assumptions that are verified with best effort using empirical data. In general, participants are assumed to be largely economically rational. As a precautionary principle, we make assumptions on the conservative side when in doubt, i.e. making higher estimates for the adverse impacts.
Förnybar energiförbrukning 38.009620909%
Energiintensitet 0.00000 (kWh)
Scope 1 DLT växthusgasutsläpp - Kontrollerade 0.00000 (tCO2e/a)
Scope 2 DLT växthusgasutsläpp - Inköpta 0.09065 (tCO2e/a)
Växthusgasintensitet 0.00000 (kgCO2e)
Viktiga energikällor och metoder To determine the proportion of renewable energy usage, the locations of the nodes are to be determined using public information sites, open-source crawlers and crawlers developed in-house. If no information is available on the geographic distribution of the nodes, reference networks are used which are comparable in terms of their incentivization structure and consensus mechanism. This geo-information is merged with public information from Our World in Data, see citation. The intensity is calculated as the marginal energy cost wrt. one more transaction. Ember (2025); Energy Institute - Statistical Review of World Energy (2024) - with major processing by Our World in Data. “Share of electricity generated by renewables - Ember and Energy Institute” [dataset]. Ember, “Yearly Electricity Data Europe”; Ember, “Yearly Electricity Data”; Energy Institute, “Statistical Review of World Energy” [original data]. Retrieved from https://ourworldindata.org/grapher/share-electricity-renewables.
Viktiga växthusgaskällor och metoder To determine the GHG Emissions, the locations of the nodes are to be determined using public information sites, open-source crawlers and crawlers developed in-house. If no information is available on the geographic distribution of the nodes, reference networks are used which are comparable in terms of their incentivization structure and consensus mechanism. This geo-information is merged with public information from Our World in Data, see citation. The intensity is calculated as the marginal emission wrt. one more transaction. Ember (2025); Energy Institute - Statistical Review of World Energy (2024) - with major processing by Our World in Data. “Carbon intensity of electricity generation - Ember and Energy Institute” [dataset]. Ember, “Yearly Electricity Data Europe”; Ember, “Yearly Electricity Data”; Energy Institute, “Statistical Review of World Energy” [original data]. Retrieved from https://ourworldindata.org/grapher/carbon-intensity-electricity Licenced under CC BY 4.0.

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