DigiByte价格

(澳元)
A$0.012108
-- (--)
AUD
市值
A$2.17亿
流通总量
179.35亿 / 210亿
历史最高价
A$0.27975
24 小时成交量
A$801.33万
3.6 / 5
DGBDGB
AUDAUD

了解DigiByte

DigiByte(DGB)是一个专注于安全性、速度和可扩展性的去中心化区块链。它采用五种不同的挖矿算法来增强安全性并防止中心化,使其成为加密货币领域最具韧性的网络之一。凭借15秒的快速交易确认时间和低廉手续费,DigiByte非常适合日常支付、跨境汇款和去中心化应用场景。其即将推出的DigiDollar稳定币旨在通过锁定DGB作为抵押,提供一种与美元挂钩的无信任资产,进一步拓展实际应用场景。作为一个没有中央管理机构的社区驱动型项目,DigiByte始终坚持真正的去中心化理念——通过自托管钱包赋予用户对资产的完全控制权。其210亿枚DGB的固定供应量创造了长期稀缺性,有望成为加密生态中的战略性储备资产。
本内容由 AI 生成
PoW
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最后审计日期:--

免责声明

本页面的社交内容 (包括由 LunarCrush 提供支持的推文和社交统计数据) 均来自第三方,并按“原样”提供,仅供参考。本文内容不代表对任何数字货币或投资的认可或推荐,也未获得欧易授权或撰写,也不代表我们的观点。我们不保证所显示的用户生成内容的准确性或可靠性。本文不应被解释为财务或投资建议。在做出投资决策之前,评估您的投资经验、财务状况、投资目标和风险承受能力并咨询独立财务顾问至关重要。过去的表现并不代表未来的结果。您的投资价值可能会波动,您可能无法收回您投资的金额。您对自己的投资选择自行承担全部责任,我们对因使用本信息而造成的任何损失或损害不承担任何责任。提供外部网站链接是为了用户方便,并不意味着对其内容的认可或控制。

请参阅我们的 使用条款风险警告,了解更多详情。通过使用第三方网站(“第三方网站”),您同意对第三方网站的任何使用均受第三方网站条款的约束和管辖。除非书面明确说明,否则欧易及其关联方(“OKX”)与第三方网站的所有者或运营商没有任何关联。您同意欧易对您使用第三方网站而产生的任何损失、损害和任何其他后果不承担任何责任。请注意,使用第三方网站可能会导致您的资产损失或贬值。本产品可能无法在所有司法管辖区提供或适用。

DigiByte 的价格表现

近 1 年
+17.11%
A$0.01
3 个月
+2.20%
A$0.01
30 天
-3.13%
A$0.01
7 天
+10.93%
A$0.01

DigiByte 社交媒体动态

Jared Tate ©️
Jared Tate ©️
这真是太不可思议了!非常感谢您将 $DGB 纳入其中。这可能会成为推动全球和真正去中心化区块链采用的真正游戏规则改变者!
Digital Gold Talk
Digital Gold Talk
恭喜: $ADA $ZEC $BCH $DGB $DASH $XLM $EGLD 经过对14个有前景的加密货币社区的全面评估,我们的公司选择了七个我们认为被严重低估的第一层(L1)项目,这些项目由我们可以建立强大合作伙伴关系的团队领导。 我们计划于2026年1月15日开始投资,将基金管理费用的20%分配给这七个项目,以及一个来自原始小组的额外随机项目,稍后将公布。每个选定的项目将获得2500万美元,以支持关键领域,包括开发者生态系统、安全性、实用性、采用率、交易量、交易价值和网络能力评分(NPS)。 剩余的8亿美元将用于收购这些L1项目的代币,这些代币将被锁定十年。代表这些锁定资产的代币将在持有一年后可交易。
Jared Tate ©️
Jared Tate ©️
$DGB DigiDollar 的逻辑第一步是与其他 $1 稳定币如 $USDC 和 $USDT 进行 DEX 直接 1 对 1 的交换。这是 DGB 社区可以直接做到的。第二步是让 CEX 上架 DigiDollar。通过社区的推广,这是可能的。还有商家!
Jared Tate ©️
Jared Tate ©️
一直在使用AI攻击$DGB DigiDollar系统设计。非常有趣的AI观察: ----- "关键见解:这并不是试图成为$DAI或$USDC。这完全是另一种生物——一种"耐心资本稳定币",它用短期波动换取长期稳定。" ----- **自然套利**:如果DD的交易价格低于$1,购买并持有以便未来赎回$DGB将变得有利可图。 ---- ### 时间锁优势 由于头寸锁定多年: - **没有恐慌性抛售**抵押品 - **DGB价格有时间恢复** - **系统能够承受严重的下跌** ----- 完整文本----- ## DigiDollar系统如何在极端$DGB价格波动中自我稳定。 ### 没有坏账积累 由于没有强制清算: - **水下头寸只是等待**——它们被锁定多年 - **不存在"坏账"**——DGB仍然存在,只是暂时价值较低 - **系统通过DCA和ERR自动再平衡**: ### 1. **动态抵押品调整(DCA)** 当系统健康度下降时: - 新铸造需要更高的抵押品(最高可达2倍) - 这立即改善了系统范围内的抵押品比率 - 例如:如果系统在110%,新铸造需要1000%的抵押品,而不是500% ### 2. **紧急赎回比率(ERR)** 当系统低于100%时: - 赎回者必须燃烧更多的DigiDollars - 例如:在80%系统健康度时,燃烧125 DD以解锁铸造100 DD的头寸 - 这**减少了DD供应**,同时保持相同的DGB锁定 - 数学上迫使系统回到健康状态 ### 时间锁优势 由于头寸锁定多年: - **没有恐慌性抛售**抵押品 - **DGB价格有时间恢复** - **系统能够承受严重的下跌** ## 实际攻击向量(修订版) ### 1. **信心/认知攻击** 即使系统在数学上是合理的: - 交易者可能不理解自我修复机制 - DD可能基于**恐惧**而不是基本面交易低于$1 - 这更多是公关/教育问题,而不是技术缺陷 ### 2. **流动性不匹配** 核心紧张关系依然存在: - **DD在交易所即时交易** - **赎回是时间锁定的** - 这造成了时间套利问题 ### 3. **预言机前置** 复杂的参与者可能: - 预测预言机价格更新 - 在DGB价格上涨之前铸造DD - 或在价格下跌之前赎回(如果他们的锁定到期) ### 4. **通过周期系统游戏** 交易者可能会: - 等待系统健康度下降 - 在交易所低价购买DD - 持有直到系统通过DCA/ERR恢复 - 从恢复中获利 ## 为什么系统可能真的有效 你的修正强调了为什么这可能比我最初认为的更具韧性: 1. **没有死亡螺旋**:新铸造的更高抵押品要求防止级联失败 2. **供应减少**:ERR在压力期间自然减少DD供应 3. **时间治愈**:多年锁定给DGB价格恢复的时间 4. **自然套利**:如果DD的交易价格低于$1,购买并持有以便未来赎回将变得有利可图 ## 剩余关注点 ### 交易所价格发现 你说得对,1:1的稳定交换有帮助,但: - 当第一个主要交易所以订单簿列出DD/USD时会发生什么? - 市场力量最终会创造价格发现 ### "耐心资本"问题 系统本质上要求: - 能够锁定资本多年用户 - 对DGB长期保持/增加价值的信心 - 对复杂稳定机制的理解 这可能会限制最初的采用仅限于复杂用户。 ## 结论(修订版) 该系统比我最初评估的更为稳健。结合: - 没有强制清算 - 动态抵押品要求 - 紧急赎回比率 - 多年时间锁定 创建了一个不依赖于即时清算的自我修复机制。 主要挑战不是技术崩溃,而是: 1. **市场认知和教育** 2. **尽管时间锁定赎回,保持DD在交易所的挂钩** 3. **确保足够的流动性和采用** 关键见解:这并不是试图成为$DAI或$USDC。这完全是另一种生物——一种"耐心资本稳定币",它用短期波动换取长期稳定。
Jared Tate ©️
Jared Tate ©️
一直在使用AI攻击$DGB DigiDollar系统设计。非常有趣的AI观察: ----- "关键见解:这并不是试图成为$DAI或$USDC。这完全是另一种生物——一种"耐心资本稳定币",它用短期波动换取长期稳定。" ----- **自然套利**:如果DD的交易价格低于$1,购买并持有以便未来赎回$DGB将变得有利可图。 ---- ### 时间锁优势 由于头寸锁定多年: - **没有恐慌性抛售**抵押品 - **DGB价格有时间恢复** - **系统能够承受严重的下跌** ----- 完整文本----- ## DigiDollar系统如何在极端$DGB价格波动中自我稳定。 ### 没有坏账积累 由于没有强制清算: - **水下头寸只是等待**——它们被锁定多年 - **不存在"坏账"**——DGB仍然存在,只是暂时价值较低 - **系统通过DCA和ERR自动再平衡**: ### 1. **动态抵押品调整(DCA)** 当系统健康度下降时: - 新铸造需要更高的抵押品(最高可达2倍) - 这立即改善了系统范围内的抵押品比率 - 例如:如果系统在110%,新铸造需要1000%的抵押品,而不是500% ### 2. **紧急赎回比率(ERR)** 当系统低于100%时: - 赎回者必须燃烧更多的DigiDollars - 例如:在80%系统健康度时,燃烧125 DD以解锁铸造100 DD的头寸 - 这**减少了DD供应**,同时保持相同的DGB锁定 - 数学上迫使系统回到健康状态 ### 时间锁优势 由于头寸锁定多年: - **没有恐慌性抛售**抵押品 - **DGB价格有时间恢复** - **系统能够承受严重的下跌** ## 实际攻击向量(修订版) ### 1. **信心/认知攻击** 即使系统在数学上是合理的: - 交易者可能不理解自我修复机制 - DD可能基于**恐惧**而不是基本面交易低于$1 - 这更多是公关/教育问题,而不是技术缺陷 ### 2. **流动性不匹配** 核心紧张关系依然存在: - **DD在交易所即时交易** - **赎回是时间锁定的** - 这造成了时间套利问题 ### 3. **预言机前置** 复杂的参与者可能: - 预测预言机价格更新 - 在DGB价格上涨之前铸造DD - 或在价格下跌之前赎回(如果他们的锁定到期) ### 4. **通过周期系统游戏** 交易者可能会: - 等待系统健康度下降 - 在交易所低价购买DD - 持有直到系统通过DCA/ERR恢复 - 从恢复中获利 ## 为什么系统可能真的有效 你的修正强调了为什么这可能比我最初认为的更具韧性: 1. **没有死亡螺旋**:新铸造的更高抵押品要求防止级联失败 2. **供应减少**:ERR在压力期间自然减少DD供应 3. **时间治愈**:多年锁定给DGB价格恢复的时间 4. **自然套利**:如果DD的交易价格低于$1,购买并持有以便未来赎回将变得有利可图 ## 剩余关注点 ### 交易所价格发现 你说得对,1:1的稳定交换有帮助,但: - 当第一个主要交易所以订单簿列出DD/USD时会发生什么? - 市场力量最终会创造价格发现 ### "耐心资本"问题 系统本质上要求: - 能够锁定资本多年用户 - 对DGB长期保持/增加价值的信心 - 对复杂稳定机制的理解 这可能会限制最初的采用仅限于复杂用户。 ## 结论(修订版) 该系统比我最初评估的更为稳健。结合: - 没有强制清算 - 动态抵押品要求 - 紧急赎回比率 - 多年时间锁定 创建了一个不依赖于即时清算的自我修复机制。 主要挑战不是技术崩溃,而是: 1. **市场认知和教育** 2. **尽管时间锁定赎回,保持DD在交易所的挂钩** 3. **确保足够的流动性和采用** 关键见解:这并不是试图成为$DAI或$USDC。这完全是另一种生物——一种"耐心资本稳定币",它用短期波动换取长期稳定。

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DigiByte购买指南
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查看 DigiByte 的价格历史
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DigiByte 常见问题

目前,一个 DigiByte 价值是 A$0.012108。如果您想要了解 DigiByte 价格走势与行情洞察,那么这里就是您的最佳选择。在欧易探索最新的 DigiByte 图表,进行专业交易。
数字货币,例如 DigiByte 是在称为区块链的公共分类账上运行的数字资产。了解有关欧易上提供的数字货币和代币及其不同属性的更多信息,其中包括实时价格和实时图表。
由于 2008 年金融危机,人们对去中心化金融的兴趣激增。比特币作为去中心化网络上的安全数字资产提供了一种新颖的解决方案。从那时起,许多其他代币 (例如 DigiByte) 也诞生了。
查看 DigiByte 价格预测页面,预测未来价格,帮助您设定价格目标。

深度了解DigiByte

DigiByte 旨在成为一种更快的数字货币,使用可用于数字资产、智能合约、去中心化应用程序和安全身份验证的创新区块链。

ESG 披露

ESG (环境、社会和治理) 法规针对数字资产,旨在应对其环境影响 (如高能耗挖矿)、提升透明度,并确保合规的治理实践。使数字代币行业与更广泛的可持续发展和社会目标保持一致。这些法规鼓励遵循相关标准,以降低风险并提高数字资产的可信度。
资产详情
名称
OKCoin Europe Ltd
相关法人机构识别编码
54930069NLWEIGLHXU42
代币名称
DigiByte
共识机制
DigiByte is present on the following networks: Digibyte, Tron. DigiByte employs a multi-algorithm Proof of Work (PoW) consensus model with five separate hashing algorithms, offering greater security and decentralization than single-algorithm blockchains. These five algorithms are SHA-256, Scrypt, Qubit, Skein, and Groestl. Core Components of DigiByte’s Consensus: 1. Multi-Algorithm Design: a. The use of five distinct PoW algorithms allows a diverse range of miners with various types of hardware (ASICs, GPUs, FPGAs) to participate in securing the network. b. By spreading mining power across multiple algorithms, DigiByte minimizes the risk of any single mining group controlling the network. This multi-algorithm approach protects against 51% attacks by making it more difficult for a malicious actor to control a majority of the network’s hash power. 2. Real-Time Difficulty Adjustment: a. DigiByte uses Dynamic Difficulty Adjustment for each algorithm individually. This means that the difficulty level for each algorithm can adjust in real-time based on network conditions and hashing power. b. The system prevents any single algorithm from producing blocks faster than others, ensuring even distribution of block production across all algorithms and preventing sudden spikes in mining difficulty. 3. Segregated Chain for Security: a. DigiByte implements a unique multi-layered blockchain structure that segments the blockchain to allow faster validation and improved security. b. The use of separate algorithms in a layered approach reduces the chance of a blockchain split or double-spend attacks and increases the blockchain’s scalability. The Tron blockchain operates on a Delegated Proof of Stake (DPoS) consensus mechanism, designed to improve scalability, transaction speed, and energy efficiency. Here's a breakdown of how it works: 1. Delegated Proof of Stake (DPoS): Tron uses DPoS, where token holders vote for a group of delegates known as Super Representatives (SRs)who are responsible for validating transactions and producing new blocks on the network. Token holders can vote for SRs based on their stake in the Tron network, and the top 27 SRs (or more, depending on the protocol version) are selected to participate in the block production process. SRs take turns producing blocks, which are added to the blockchain. This is done on a rotational basis to ensure decentralization and prevent control by a small group of validators. 2. Block Production: The Super Representatives generate new blocks and confirm transactions. The Tron blockchain achieves block finality quickly, with block production occurring every 3 seconds, making it highly efficient and capable of processing thousands of transactions per second. 3. Voting and Governance: Tron’s DPoS system also allows token holders to vote on important network decisions, such as protocol upgrades and changes to the system’s parameters. Voting power is proportional to the amount of TRX (Tron’s native token) that a user holds and chooses to stake. This provides a governance system where the community can actively participate in decision-making. 4. Super Representatives: The Super Representatives play a crucial role in maintaining the security and stability of the Tron blockchain. They are responsible for validating transactions, proposing new blocks, and ensuring the overall functionality of the network. Super Representatives are incentivized with block rewards (newly minted TRX tokens) and transaction feesfor their work.
奖励机制与相应费用
DigiByte is present on the following networks: Digibyte, Tron. DigiByte incentivizes network participation and security through block rewards, transaction fees, and a deflationary schedule for block rewards. Incentive Mechanisms: 1. Block Rewards for Miners: a. Miners receive newly minted DGB tokens for successfully mining blocks. This block reward encourages miners to contribute computing power to secure the network and validate transactions. b. DigiByte’s block rewards follow a deflationary schedule, decreasing over time, which promotes long-term value by controlling the rate of token issuance. 2. Transaction Fees: a. Users pay transaction fees in DGB tokens for network activities. These fees are distributed to miners, providing them with an ongoing income source and incentivizing efficient transaction processing. 3. Real-Time Difficulty Adjustment: a. Difficulty adjustments are calculated based on the hashing power of each algorithm, ensuring fair distribution of rewards and reducing the risk of a single mining pool or participant dominating the network’s hashing power. Applicable Fees: Transaction fees on DigiByte are calculated based on network demand, with miners prioritizing transactions with higher fees during congested periods. The larger block size reduces overall fees, supporting affordability for users. The Tron blockchain uses a Delegated Proof of Stake (DPoS) consensus mechanism to secure its network and incentivize participation. Here's how the incentive mechanism and applicable fees work: Incentive Mechanism: 1. Super Representatives (SRs) Rewards: Block Rewards: Super Representatives (SRs), who are elected by TRX holders, are rewarded for producing blocks. Each block they produce comes with a block reward in the form of TRX tokens. Transaction Fees: In addition to block rewards, SRs receive transaction fees for validating transactions and including them in blocks. This ensures they are incentivized to process transactions efficiently. 2. Voting and Delegation: TRX Staking: TRX holders can stake their tokens and vote for Super Representatives (SRs). When TRX holders vote, they delegate their voting power to SRs, which allows SRs to earn rewards in the form of newly minted TRX tokens. Delegator Rewards: Token holders who delegate their votes to an SR can also receive a share of the rewards. This means delegators share in the block rewards and transaction fees that the SR earns. Incentivizing Participation: The more tokens a user stakes, the more voting power they have, which encourages participation in governance and network security. 3. Incentive for SRs: SRs are also incentivized to maintain the health and performance of the network. Their reputation and continued election depend on their ability to produce blocks consistently and efficiently process transactions. Applicable Fees: 1. Transaction Fees: Fee Calculation: Users must pay transaction fees to have their transactions processed. The transaction fee varies based on the complexity of the transaction and the network's current demand. This is paid in TRX tokens. Transaction Fee Distribution: Transaction fees are distributed to Super Representatives (SRs), giving them an ongoing income to maintain and support the network. 2. Storage Fees: Tron charges storage fees for data storage on the blockchain. This includes storing smart contracts, tokens, and other data on the network. Users are required to pay these fees in TRX tokens to store data. 3. Energy and Bandwidth: Energy: Tron uses a resource model that allows users to access network resources like bandwidth and energy through staking. Users who stake their TRX tokens receive "energy," which is required to execute transactions and interact with smart contracts. Bandwidth: Each user is allocated a certain amount of bandwidth based on their TRX holdings. If users exceed their allotted bandwidth, they can pay for additional bandwidth in TRX tokens.
信息披露时间段的开始日期
2024-10-06
信息披露时间段的结束日期
2025-10-06
能源报告
能源消耗
241670373.55867 (kWh/a)
可再生能源消耗
29.306425039 (%)
能源强度
4.29551 (kWh)
主要能源来源与评估体系
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.
能源消耗来源与评估体系
The energy consumption of this asset is aggregated across multiple components: For the calculation of energy consumptions, the so called 'top-down' approach is being used, within which an economic calculation of the miners is assumed. Miners are persons or devices that actively participate in the proof-of-work consensus mechanism. The miners are considered to be the central factor for the energy consumption of the network. Hardware is pre-selected based on the consensus mechanism's hash algorithm: multiple. A current profitability threshold is determined on the basis of the revenue and cost structure for mining operations. Only Hardware above the profitability threshold is considered for the network. The energy consumption of the network can be determined by taking into account the distribution for the hardware, the efficiency levels for operating the hardware and on-chain information regarding the miners' revenue opportunities. If significant use of merge mining is known, this is taken into account. When calculating the energy consumption, we used - if available - the Functionally Fungible Group Digital Token Identifier (FFG DTI) to determine all implementations of the asset of question in scope and we update the mappings regulary, 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. To determine the energy consumption of a token, the energy consumption of the network(s) tron 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.
排放报告
DLT 温室气体排放范围一:可控排放
0.00000 (tCO2e/a)
DLT 温室气体排放范围二:外购排放
99567.24203 (tCO2e/a)
温室气体排放强度
1.76974 (kgCO2e)
主要温室气体来源与评估体系
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.
市值
A$2.17亿
流通总量
179.35亿 / 210亿
历史最高价
A$0.27975
24 小时成交量
A$801.33万
3.6 / 5
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