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Argo 当前实时价格为 0 USD。跟踪 ARGO 对 USD 实时价格更新、实时图表、市场市值、24 小时交易量等更多信息。在 MEXC 轻松探索 ARGO 价格趋势。Argo 当前实时价格为 0 USD。跟踪 ARGO 对 USD 实时价格更新、实时图表、市场市值、24 小时交易量等更多信息。在 MEXC 轻松探索 ARGO 价格趋势。

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ARGO 价格信息

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  1. MEXC 交易所/
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  3. Argo (ARGO)/

Argo 图标

Argo 价格 (ARGO)

未上架

1 ARGO 兑换为 USD 的实时价格:

--
----
0.00%1D
mexc
此币种数据来自第三方,MEXC 仅作为信息聚合平台。探索 MEXC 现货查看已上线币种!
USD
Argo (ARGO) 实时价格图表
页面数据最近更新时间:2025-11-07 21:11:00 (UTC+8)
ARGO 价格洞察
什么是 ARGO
FAQ

Argo(ARGO)价格信息 (USD)

24 小时价格变化区间:
$ 0
$ 0$ 0
24H最低价
$ 0
$ 0$ 0
24H最高价

$ 0
$ 0$ 0

$ 0
$ 0$ 0

$ 0.01116459
$ 0.01116459$ 0.01116459

$ 0
$ 0$ 0

--

--

+0.50%

+0.50%

Argo(ARGO)当前实时价格为 --。过去 24 小时内,ARGO 的交易价格在 $ 0 至 $ 0 之间波动,市场活跃度显著。ARGO 的历史最高价为 $ 0.01116459,历史最低价为 $ 0。

从短期表现来看,ARGO 在过去 1 小时内的价格变动为 --,过去 24 小时内变动为 --,过去 7 天内累计变动为 +0.50%。这些数据为您快速呈现其在 MEXC 的最新价格走势和市场动态。

Argo(ARGO)市场信息

$ 6.54K
$ 6.54K$ 6.54K

--
----

$ 6.54K
$ 6.54K$ 6.54K

999.94M
999.94M 999.94M

999,940,409.446906
999,940,409.446906 999,940,409.446906

Argo 的当前市值为 $ 6.54K, 它过去 24 小时的交易量为 --。ARGO 的流通量为 999.94M,总供应量是 999940409.446906,它的完全稀释估值 (FDV) 是 $ 6.54K。

Argo(ARGO)价格历史 USD

今天内,Argo 兑换 USD 的价格涨跌幅为 $ 0。
在过去30天内,Argo 兑换 USD 的价格涨跌幅为 $ 0。
在过去60天内,Argo 兑换 USD 的价格涨跌幅为 $ 0。
在过去90天内,Argo 兑换 USD 的价格涨跌幅为 $ 0。

时间段涨跌幅 (USD)涨跌幅 (%)
今日$ 0--
30天$ 0-18.69%
60天$ 0-5.38%
90天$ 0--

什么是Argo (ARGO)

Origin Argo is previouly called AI3 Labs,focusing on the revolutionizing the intersection of artificial intelligence and Web3, breaking barriers to unlock unprecedented possibilities. As a world-class team of innovators, we excel in developing modular, scalable, and highly interoperable AI systems designed to tackle complex, real-world challenges. With unparalleled expertise in modern AI development and Web3 AI infrastructure, Argo Labs integrates cutting-edge technologies to deliver next-generation solutions that set new standards for AI workflows. --- At Argo, we are proud to be at the forefront of technological innovation, contributing to the foundational frameworks that power modern AI systems. As the creators of DeepFaceLab, one of the top 2 open-source AI projects of 2020, we revolutionized the field of face manipulation and established new standards for open-source AI development. Our contributions to the development of PyTorch and TensorFlow, the backbones of today’s AI research and applications, have directly shaped the way industries, researchers, and developers build intelligent systems globally. These platforms are instrumental in powering everything from computer vision to large-scale natural language models. Beyond our contributions to core AI infrastructure, we also played a key role in shaping the foundational vision of web3 AI agent frameworks. As the principal authors of the Eliza framework white paper, we provided in-depth technical insights and architectural designs that guided its development. Our work established a strong theoretical and practical foundation for decentralized AI agent systems, showcasing our ability to drive innovation at the forefront of AI research and implementation. Building on this legacy, Argo is our next-generation multi-agent framework, purpose-built to bridge the gap between decentralized AI systems and real-world applications. Argo is designed to be universally adaptable, offering seamless integration and usability across traditional and decentralized ecosystems. By prioritizing transparency, security, and user empowerment, it serves as a versatile tool for creators and organizations looking to harness the power of AI in any environment. With its intuitive, low-code interface, Argo empowers users to easily construct scalable workflows tailored to their unique needs—whether optimizing operations in conventional industries, enhancing digital ecosystems, or innovating within decentralized networks. By integrating state-of-the-art technologies, Argo ensures complete control over data integrity and execution processes, making it the ultimate solution for those seeking to navigate the intersection of AI and Web3 with confidence. Introducing Argo Framework Argo is the next-gen composable AI workflow infrastructure that offers enhanced modularity, scalability, and transparency compared to highly flexible web3 AI Agent frameworks, e.g. Eliza & Swarm. It enables both web2& web3 users to effortlessly construct workflow systems tailored to their specific requirements without the need of knowing how to code. Through Argo, creators can easily transform their ideas into reality using Link-Link's (connecting building blocks) intuitive GUI and high-school level configuration. By publishing their workflows, creators can share both ownership and benefits. We envision this catalyzing a new paradigm of open AI development - shifting from complex, uncontrollable autonomous agents to transparent, community-driven AI workflows. Workflow vs Autonomous Agent According to Anthropic's seminal paper "Building Effective Agents"(December, 2024), AI systems can be categorized into two primary architectures: workflows and agents. Workflows orchestrate LLMs and tools through predefined code paths, while agents enable LLMs to dynamically direct their own processes and tool usage, maintaining autonomous control over task execution. In the web3 ecosystem, security and privacy concerns are paramount, with the protection of mnemonic phrases and private keys being critical requirements. Furthermore, fully autonomous agents - particularly those relying heavily on LLM-based intent recognition - become increasingly opaque as functionality and data sources expand exponentially, making their execution paths and reasoning chains virtually impossible to audit. As the leading author of the technical report of Eliza (AI16Z), we've concluded that well-orchestrated workflow systems are better suited to current requirements than autonomous agents. This aligns with Ilya Sutskever's observation (former OpenAI Chief Scientist and co-creator of AlexNet, Seq2Seq, and GPT) that LLM scaling has reached certain limits, suggesting we should focus on maximizing the potential of existing LLM capabilities. For many applications, optimizing individual LLM calls with retrieval and in-context examples proves sufficient. Workflows offer predictability, transparency, and consistency for well-defined tasks, enabling web3 users to understand their agents' actions through detailed steps and diagrams while ensuring asset security remains tamper-proof. Protocol Argo Labs provides infrastructure and crypto-economic incentives for decentralized AI systems. It rewards proposal contributors, node operators, and workflow creators while enabling collective governance of these intellectual assets and their generated value: Decentralized Resource Marketplace - Rich pool of distributed nodes supporting large-scale deployment - Extensive library of reusable workflow templates - Active community discussion forums - Lower barriers to AI workflow construction Collectively Governed AI Workflow Ecosystem - Innovation Rewards: Compensate designers of original AI solutions - Deployment Rewards: Incentivize operators who integrate nodes into the system - Community Participation Rewards: Recognize active governance participants - Value Distribution: Merit-based allocation mechanism based on contributions Key Highlights - Comprehensive incentive mechanisms ensure sustainable ecosystem growth - Decentralized governance guarantees fairness and transparency - Transparent value distribution promotes healthy competition - Community-driven model catalyzes innovation Our Master Plan Nodes Drive Everything - Integration of mainstream on-chain&off-chain APIs into standardized nodes - Aggregation of diverse functional node pool - Users can freely combine nodes to build powerful workflows - Standardized interfaces ensure seamless node interoperability 1. Distributed Multi-Node Framework (In Development) - Open-source framework architecture - Support for global heterogeneous hardware integration - Ensures system scalability - Implements efficient resource orchestration mechanisms 2. Continuous Integration of Cutting-Edge Capabilities - Seamless integration of latest AI service nodes - HuggingFace ecosystem - High-performance inference services like Fal.ai - Integration of critical Web3 functional nodes - DeFi operation nodes - Cex Api nodes - NFT interaction nodes - On-chain data analysis nodes - Careful curation of high-quality nodes - Continuous expansion of node capabilities Zen of Argo Simple workflows are better than complex agents. Explicit is better than implicit. Composable is better than monolithic. Predictable is better than flexible. Security is a must, not a choice. Transparency beats black-box behavior. Nodes should do one thing and do it well. Reusability matters more than reinvention. Community-driven beats centrally planned. Value shared is value multiplied. In the face of ambiguity, refuse the temptation to guess. Now is better than never, but tested is better than untested. If a workflow is hard to explain, it might be a bad design. If a workflow is easy to explain, it might be a good design. Decentralized doesn't mean disorganized. Privacy and control go hand in hand. Let users own their workflows, literally.

Origin Argo is previouly called AI3 Labs,focusing on the revolutionizing the intersection of artificial intelligence and Web3, breaking barriers to unlock unprecedented possibilities. As a world-class team of innovators, we excel in developing modular, scalable, and highly interoperable AI systems designed to tackle complex, real-world challenges. With unparalleled expertise in modern AI development and Web3 AI infrastructure, Argo Labs integrates cutting-edge technologies to deliver next-generation solutions that set new standards for AI workflows.


At Argo, we are proud to be at the forefront of technological innovation, contributing to the foundational frameworks that power modern AI systems. As the creators of DeepFaceLab, one of the top 2 open-source AI projects of 2020, we revolutionized the field of face manipulation and established new standards for open-source AI development. Our contributions to the development of PyTorch and TensorFlow, the backbones of today’s AI research and applications, have directly shaped the way industries, researchers, and developers build intelligent systems globally. These platforms are instrumental in powering everything from computer vision to large-scale natural language models. Beyond our contributions to core AI infrastructure, we also played a key role in shaping the foundational vision of web3 AI agent frameworks. As the principal authors of the Eliza framework white paper, we provided in-depth technical insights and architectural designs that guided its development. Our work established a strong theoretical and practical foundation for decentralized AI agent systems, showcasing our ability to drive innovation at the forefront of AI research and implementation.

Building on this legacy, Argo is our next-generation multi-agent framework, purpose-built to bridge the gap between decentralized AI systems and real-world applications. Argo is designed to be universally adaptable, offering seamless integration and usability across traditional and decentralized ecosystems. By prioritizing transparency, security, and user empowerment, it serves as a versatile tool for creators and organizations looking to harness the power of AI in any environment. With its intuitive, low-code interface, Argo empowers users to easily construct scalable workflows tailored to their unique needs—whether optimizing operations in conventional industries, enhancing digital ecosystems, or innovating within decentralized networks. By integrating state-of-the-art technologies, Argo ensures complete control over data integrity and execution processes, making it the ultimate solution for those seeking to navigate the intersection of AI and Web3 with confidence.

Introducing Argo Framework

Argo is the next-gen composable AI workflow infrastructure that offers enhanced modularity, scalability, and transparency compared to highly flexible web3 AI Agent frameworks, e.g. Eliza & Swarm. It enables both web2& web3 users to effortlessly construct workflow systems tailored to their specific requirements without the need of knowing how to code.

Through Argo, creators can easily transform their ideas into reality using Link-Link's (connecting building blocks) intuitive GUI and high-school level configuration. By publishing their workflows, creators can share both ownership and benefits. We envision this catalyzing a new paradigm of open AI development - shifting from complex, uncontrollable autonomous agents to transparent, community-driven AI workflows. Workflow vs Autonomous Agent

According to Anthropic's seminal paper "Building Effective Agents"(December, 2024), AI systems can be categorized into two primary architectures: workflows and agents. Workflows orchestrate LLMs and tools through predefined code paths, while agents enable LLMs to dynamically direct their own processes and tool usage, maintaining autonomous control over task execution. In the web3 ecosystem, security and privacy concerns are paramount, with the protection of mnemonic phrases and private keys being critical requirements. Furthermore, fully autonomous agents - particularly those relying heavily on LLM-based intent recognition - become increasingly opaque as functionality and data sources expand exponentially, making their execution paths and reasoning chains virtually impossible to audit. As the leading author of the technical report of Eliza (AI16Z), we've concluded that well-orchestrated workflow systems are better suited to current requirements than autonomous agents. This aligns with Ilya Sutskever's observation (former OpenAI Chief Scientist and co-creator of AlexNet, Seq2Seq, and GPT) that LLM scaling has reached certain limits, suggesting we should focus on maximizing the potential of existing LLM capabilities. For many applications, optimizing individual LLM calls with retrieval and in-context examples proves sufficient. Workflows offer predictability, transparency, and consistency for well-defined tasks, enabling web3 users to understand their agents' actions through detailed steps and diagrams while ensuring asset security remains tamper-proof.

Protocol

Argo Labs provides infrastructure and crypto-economic incentives for decentralized AI systems. It rewards proposal contributors, node operators, and workflow creators while enabling collective governance of these intellectual assets and their generated value: Decentralized Resource Marketplace

  • Rich pool of distributed nodes supporting large-scale deployment
  • Extensive library of reusable workflow templates
  • Active community discussion forums
  • Lower barriers to AI workflow construction Collectively Governed AI Workflow Ecosystem
  • Innovation Rewards: Compensate designers of original AI solutions
  • Deployment Rewards: Incentivize operators who integrate nodes into the system
  • Community Participation Rewards: Recognize active governance participants
  • Value Distribution: Merit-based allocation mechanism based on contributions Key Highlights
  • Comprehensive incentive mechanisms ensure sustainable ecosystem growth
  • Decentralized governance guarantees fairness and transparency
  • Transparent value distribution promotes healthy competition
  • Community-driven model catalyzes innovation Our Master Plan Nodes Drive Everything
  • Integration of mainstream on-chain&off-chain APIs into standardized nodes
  • Aggregation of diverse functional node pool
  • Users can freely combine nodes to build powerful workflows
  • Standardized interfaces ensure seamless node interoperability
  1. Distributed Multi-Node Framework (In Development)
  • Open-source framework architecture
  • Support for global heterogeneous hardware integration
  • Ensures system scalability
  • Implements efficient resource orchestration mechanisms
  1. Continuous Integration of Cutting-Edge Capabilities
  • Seamless integration of latest AI service nodes
    • HuggingFace ecosystem
    • High-performance inference services like Fal.ai
  • Integration of critical Web3 functional nodes
    • DeFi operation nodes
    • Cex Api nodes
    • NFT interaction nodes
    • On-chain data analysis nodes
  • Careful curation of high-quality nodes
  • Continuous expansion of node capabilities

Zen of Argo

Simple workflows are better than complex agents. Explicit is better than implicit. Composable is better than monolithic. Predictable is better than flexible. Security is a must, not a choice. Transparency beats black-box behavior. Nodes should do one thing and do it well. Reusability matters more than reinvention. Community-driven beats centrally planned. Value shared is value multiplied. In the face of ambiguity, refuse the temptation to guess. Now is better than never, but tested is better than untested. If a workflow is hard to explain, it might be a bad design. If a workflow is easy to explain, it might be a good design. Decentralized doesn't mean disorganized. Privacy and control go hand in hand. Let users own their workflows, literally.

MEXC是领先的加密货币交易所,受到全球超过 1,000 万用户的信赖。它被誉为市场上代币选择最广泛、上币速度最快、交易费用最低的交易所。立即加入MEXC,体验市场顶级流动性和最具竞争力的费用!

Argo (ARGO) 资源

官网

Argo 价格预测 (USD)

Argo(ARGO)在明天、下周、下个月将到达多少 USD 呢?您的 Argo(ARGO)资产在 2025、2026、2027、2028,甚至 10 年后、20 年后价值多少呢?您可以使用我们的价格预测工具来进行 Argo 的长期和短期价格预测。

现在就查看 Argo 价格预测!

ARGO 兑换为当地货币

Argo(ARGO)代币经济

了解 Argo(ARGO)的代币经济,有助于深入洞察其长期价值与增长潜力。从代币的分配方式到供应机制,代币经济揭示了项目经济体系的核心结构。立即了解 ARGO 代币的完整经济学!

大家还在问:关于 Argo (ARGO) 的其他问题

Argo(ARGO)今日价格是多少?
ARGO 实时价格为 0 USD(以 USD 计),根据最新市场数据实时更新。
当前 ARGO 兑 USD 的价格是多少?
当前 ARGO 兑 USD 的价格为 $ 0。查看 MEXC 转换器 获取准确的币种兑换信息。
Argo 的市值是多少?
ARGO 的市值为 $ 6.54K USD。市值=当前价格 × 流通供应量。市值反映该币种的总市场价值及其排名。
ARGO 的流通供应量是多少?
ARGO 的流通供应量为 999.94M USD。
ARGO 的历史最高价(ATH)是多少?
ARGO 的历史最高价是 0.01116459 USD。
ARGO 的历史最低价(ATL)是多少?
ARGO 的历史最低价是 0 USD。
ARGO 的交易量是多少?
ARGO 的 24 小时实时交易量为 -- USD。
ARGO 今年会涨吗?
ARGO 是否会上涨取决于市场行情及项目发展。查看 ARGO 价格预测 获取更深入的分析。
页面数据最近更新时间:2025-11-07 21:11:00 (UTC+8)

Argo(ARGO)重要行业更新

时间 (UTC+8)类型资讯
11-07 01:12:41行业动态
加密恐慌指数回升至27,市场由「极度恐慌」转为「恐慌」
11-06 14:15:13行业动态
BNB Chain生态代币大幅反弹,GIGGLE与币安人生市值居前
11-06 11:42:30行业动态
加密市场回暖比特币突破10.4万美元,美股加密概念股普涨
11-05 17:18:00行业动态
以太坊回升突破3300美元,24小时跌幅收窄至8.98%
11-05 10:42:00链上数据
过去24小时全网爆仓超20亿美元,超47万人被爆仓
11-04 17:22:15行业动态
加密恐慌与贪婪指数跌至21,市场陷入「极度恐慌」

免责声明

加密货币的价格会受到高市场风险和价格波动的影响。您应该投资于您熟悉的项目和产品,并了解其中的风险。您应该仔细考虑你的投资经验、财务状况、投资目标和风险承受能力,并在进行任何投资之前咨询独立财务顾问。本材料不应被理解为财务建议。过往的表现并不是未来表现的可靠指标。您的投资价值可能下降,也可能上升,而且您可能无法收回您的投资金额。您要对您的投资决定负全责。MEXC不对您的任何可能产生的损失负责。欲了解更多信息,请参考我们的使用条款和风险警告。 另请注意,这里介绍的与上述加密货币有关的数据(如其当前的实时价格)是基于第三方来源的。它们以 "原样 "的的方式呈现给您,仅用于提供信息,不作任何形式的陈述或保证。所提供的第三方网站的链接也不在MEXC的控制之下。MEXC不对此类第三方网站及其内容的可靠性和准确性负责。

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Capybobo 图标

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PYBOBO

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