Raven Protocol

价格

(raven)
注意:平台尚不支持该币种的交易服务
$0.00038053 -2.4%

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      raven 价格实时数据

      raven 价格信息

      24h最低价/最高价

      24h最低价 $0.0003797
      24h最高价 $0.0004105

      历史最高价

      US$0.00454777

      历史最低价

      US$0.00006247

      7天最高价

      US$0.00047603

      7天最低价

      US$0.00034048

      raven 市场信息

      市值排名

      3443

      完全摊薄估值

      US$3796986

      总供应量

      10,000,000,000

      最大供给

      市值优势

      0%

      流通量/总市值

      0.000

      关于 raven

      Raven Protocol's specific use case is to perform AI training where speed is the key. We're taking a 1M image dataset that takes 2-3 weeks to train on AWS down to 2-3 hours on Raven. AI companies will be able to train models better and faster. Raven Protocol is creating a self-sustaining and dynamic ecosystem for: Customers who want to train their AI engines; and/or Contributors who would like to share their compute resources in the form of Computers, Smartphones, or even a server rack. Raven Tokens (RAVEN) will work as the common ground to facilitate a secure transaction that will take place inside our ecosystem. Enterprise clients who want to rent compute power will do so with RAVEN and contributors of the compute power will be rewarded in RAVEN. Raven is creating a network of compute nodes that utilize idle compute power for the purposes of AI training where speed is the key. A native token is the key to bootstrapping a nascent network. We want to incentivize and reward people all over the world to contribute their compute power to our network. Additionally, we will reward token holders for running masternodes which will be responsible for orchestrating the training of various deep neural networks. Our consensus mechanism is something we call Proof-of-Calculation. Proof-of-Calculation will be the primary guideline for the regulation and distribution of incentives to the compute nodes in the network. Following are the two prime deciders for the incentive distribution: Speed: Depending upon how fast a node can perform gradient calculations (in a neural network) and return it back to the Gradient Collector. Redundancy: The 3 fastest redundant calculation will only qualify for receiving the incentive. This will make sure that the gradients that are getting returned are genuine and of the highest quality.

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