Bitget:全球日交易量排名前 4!
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BTC/USDT$82427.46 (+0.50%)恐懼與貪婪指數34(恐懼)
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盤前交易幣種PAWS,WCT比特幣現貨 ETF 總淨流量:-$93.2M(1 天);+$445.2M(7 天)。Bitget 新用戶立享 6,200 USDT 歡迎禮包!立即領取
到 Bitget App 隨時隨地輕鬆交易!立即下載
Bitget:全球日交易量排名前 4!
BTC 市占率61.36%
Bitget 新幣上架 : Pi Network
BTC/USDT$82427.46 (+0.50%)恐懼與貪婪指數34(恐懼)
山寨季指數:0(比特幣季)
盤前交易幣種PAWS,WCT比特幣現貨 ETF 總淨流量:-$93.2M(1 天);+$445.2M(7 天)。Bitget 新用戶立享 6,200 USDT 歡迎禮包!立即領取
到 Bitget App 隨時隨地輕鬆交易!立即下載
Bitget:全球日交易量排名前 4!
BTC 市占率61.36%
Bitget 新幣上架 : Pi Network
BTC/USDT$82427.46 (+0.50%)恐懼與貪婪指數34(恐懼)
山寨季指數:0(比特幣季)
盤前交易幣種PAWS,WCT比特幣現貨 ETF 總淨流量:-$93.2M(1 天);+$445.2M(7 天)。Bitget 新用戶立享 6,200 USDT 歡迎禮包!立即領取
到 Bitget App 隨時隨地輕鬆交易!立即下載

U2U Network 價格U2U
上架
報價幣種:
TWD
NT$0.1340-7.98%1D
價格走勢圖
TradingView
最近更新時間 2025-03-31 23:34:33(UTC+0)
市值:--
完全稀釋市值:--
24 小時交易額:NT$18,168,650.69
24 小時交易額/市值:0.00%
24 小時最高價:NT$0.1461
24 小時最低價:NT$0.1330
歷史最高價:NT$0.7362
歷史最低價:NT$0.1330
流通量:-- U2U
總發行量:
10,000,000,000U2U
流通率:0.00%
最大發行量:
--U2U
以 BTC 計價:0.{7}4893 BTC
以 ETH 計價:0.{5}2210 ETH
以 BTC 市值計價:
--
以 ETH 市值計價:
--
合約:
0x558e...43a66a6(Ethereum)
更多
您今天對 U2U Network 感覺如何?
注意:此資訊僅供參考。
U2U Network 今日價格
U2U Network 的即時價格是今天每 (U2U / TWD) NT$0.1340,目前市值為 NT$0.00 TWD。24 小時交易量為 NT$18.17M TWD。U2U 至 TWD 的價格為即時更新。U2U Network 在過去 24 小時內的變化為 -7.98%。其流通供應量為 0 。
U2U 的最高價格是多少?
U2U 的歷史最高價(ATH)為 NT$0.7362,於 2024-12-11 錄得。
U2U 的最低價格是多少?
U2U 的歷史最低價(ATL)為 NT$0.1330,於 2025-03-31 錄得。
U2U Network 價格預測
U2U 在 2026 的價格是多少?
根據 U2U 的歷史價格表現預測模型,預計 U2U 的價格將在 2026 達到 NT$0.1814。
U2U 在 2031 的價格是多少?
2031,U2U 的價格預計將上漲 +45.00%。 到 2031 底,預計 U2U 的價格將達到 NT$0.4820,累計投資報酬率為 +230.14%。
U2U Network 價格歷史(TWD)
過去一年,U2U Network 價格上漲了 -73.33%。在此期間,U2U 兌 TWD 的最高價格為 NT$0.7362,U2U 兌 TWD 的最低價格為 NT$0.1330。
時間漲跌幅(%)
最低價
最高價 
24h-7.98%NT$0.1330NT$0.1461
7d-17.76%NT$0.1330NT$0.1633
30d-34.05%NT$0.1330NT$0.2079
90d-48.33%NT$0.1330NT$0.3780
1y-73.33%NT$0.1330NT$0.7362
全部時間-75.35%NT$0.1330(2025-03-31, 今天 )NT$0.7362(2024-12-11, 111 天前 )
U2U Network 市場資訊
U2U Network 行情
U2U Network 持幣分布集中度
巨鯨
投資者
散戶
U2U Network 地址持有時長分布
長期持幣者
游資
交易者
coinInfo.name(12)即時價格表
U2U Network 評級
社群的平均評分
4.6
此內容僅供參考。
U2U 兌換當地法幣匯率表
1 U2U 兌換 MXN$0.081 U2U 兌換 GTQQ0.031 U2U 兌換 CLP$3.791 U2U 兌換 UGXSh14.751 U2U 兌換 HNLL0.11 U2U 兌換 ZARR0.071 U2U 兌換 TNDد.ت0.011 U2U 兌換 IQDع.د5.281 U2U 兌換 TWDNT$0.131 U2U 兌換 RSDдин.0.441 U2U 兌換 DOP$0.251 U2U 兌換 MYRRM0.021 U2U 兌換 GEL₾0.011 U2U 兌換 UYU$0.171 U2U 兌換 MADد.م.0.041 U2U 兌換 OMRر.ع.01 U2U 兌換 AZN₼0.011 U2U 兌換 KESSh0.521 U2U 兌換 SEKkr0.041 U2U 兌換 UAH₴0.17
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最近更新時間 2025-03-31 23:34:33(UTC+0)
如何購買 U2U Network(U2U)

建立您的免費 Bitget 帳戶
使用您的電子郵件地址/手機號碼在 Bitget 註冊,並建立強大的密碼以確保您的帳戶安全

認證您的帳戶
輸入您的個人資訊並上傳有效的身份照片進行身份認證

將 U2U Network 兌換為 U2U
我們將為您示範使用多種支付方式在 Bitget 上購買 U2U Network
了解更多U2U Network 動態
U2U Network推出新質押功能,年化收益率高達55%
西格玛学长•2025-01-10 08:11
Bitget PoolX 將上架 U2U Network(U2U):鎖倉 BTC,即可領取 U2U 空投
Bitget Announcement•2025-01-09 08:00

U2Staking現已正式開放,$U2U持有者可以質押U2U原生代幣
X•2025-01-08 07:13
模組化 L1 網絡 U2U Network 將推出 DePIN 產品 UPhone
Bitget•2025-01-08 07:06
Bitget 將在創新區、Layer 1 區和 DePIN 區上架 U2U Network(U2U)!
Bitget Announcement•2025-01-07 08:10
購買其他幣種
用戶還在查詢 U2U Network 的價格。
U2U Network 的目前價格是多少?
U2U Network 的即時價格為 NT$0.13(U2U/TWD),目前市值為 NT$0 TWD。由於加密貨幣市場全天候不間斷交易,U2U Network 的價格經常波動。您可以在 Bitget 上查看 U2U Network 的市場價格及其歷史數據。
U2U Network 的 24 小時交易量是多少?
在最近 24 小時內,U2U Network 的交易量為 NT$18.17M。
U2U Network 的歷史最高價是多少?
U2U Network 的歷史最高價是 NT$0.7362。這個歷史最高價是 U2U Network 自推出以來的最高價。
我可以在 Bitget 上購買 U2U Network 嗎?
可以,U2U Network 目前在 Bitget 的中心化交易平台上可用。如需更詳細的說明,請查看我們很有幫助的 如何購買 u2u-network 指南。
我可以透過投資 U2U Network 獲得穩定的收入嗎?
當然,Bitget 推出了一個 策略交易平台,其提供智能交易策略,可以自動執行您的交易,幫您賺取收益。
我在哪裡能以最低的費用購買 U2U Network?
Bitget提供行業領先的交易費用和市場深度,以確保交易者能够從投資中獲利。 您可通過 Bitget 交易所交易。
您可以在哪裡購買 U2U Network(U2U)?
影片部分 - 快速認證、快速交易

如何在 Bitget 完成身分認證以防範詐騙
1. 登入您的 Bitget 帳戶。
2. 如果您是 Bitget 的新用戶,請觀看我們的教學,以了解如何建立帳戶。
3. 將滑鼠移到您的個人頭像上,點擊「未認證」,然後點擊「認證」。
4. 選擇您簽發的國家或地區和證件類型,然後根據指示進行操作。
5. 根據您的偏好,選擇「手機認證」或「電腦認證」。
6. 填寫您的詳細資訊,提交身分證影本,並拍攝一張自拍照。
7. 提交申請後,身分認證就完成了!
加密貨幣投資(包括透過 Bitget 線上購買 U2U Network)具有市場風險。Bitget 為您提供購買 U2U Network 的簡便方式,並且盡最大努力讓用戶充分了解我們在交易所提供的每種加密貨幣。但是,我們不對您購買 U2U Network 可能產生的結果負責。此頁面和其包含的任何資訊均不代表對任何特定加密貨幣的背書認可,任何價格數據均採集自公開互聯網,不被視為來自Bitget的買賣要約。
Bitget 觀點
sj05666
4小時前
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Crypto_inside
5小時前
Price action ❌ Technical analysis. 🧐😵💫
Price action and technical analysis are two related but distinct concepts in trading and investing.
Price Action:
1. Focuses on raw price data: Price action involves analyzing the price movement of a security over time.
2. No indicators or overlays: Price action traders rely solely on the price chart, without using technical indicators or overlays.
3. Emphasis on market structure: Price action traders study the structure of the market, including trends, reversals, and breakouts.
Technical Analysis:
1. Uses indicators and overlays: Technical analysis involves using various indicators and overlays, such as moving averages, RSI, and Bollinger Bands, to analyze price data.
2. *Focuses on patterns and trends*: Technical analysis identifies patterns and trends in price data, using indicators and overlays to confirm or contradict the analysis.
3. *Includes various methods*: Technical analysis encompasses various methods, including chart patterns, trend analysis, and momentum analysis.
Key Differences:
1. Use of indicators: Price action traders do not use indicators, while technical analysts rely heavily on them.
2. Focus: Price action focuses on raw price data and market structure, while technical analysis focuses on patterns, trends, and indicators.
3. Approach: Price action trading is often more discretionary and subjective, while technical analysis can be more systematic and rule-based.
Similarities:
1. Both analyze price data: Both price action and technical analysis involve analyzing price data to make trading decisions.
2. Both aim to identify trends and patterns: Both approaches aim to identify trends, patterns, and other market structures to inform trading decisions.
3. Both require skill and experience: Both price action and technical analysis require skill, experience, and continuous learning to master.
In summary, while price action and technical analysis share some similarities, they differ in their approach, focus, and use of indicators. Price action traders rely solely on raw price data and market structure, while technical analysts use indicators and overlays to identify patterns and trends.
Thank you...🙂
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Abdulbasithx
7小時前
$U2U
U2U-7.63%

Kanyalal
8小時前
AI agents and AI are related but distinct concepts in the field of artificial intelligence.
AI (Artificial Intelligence)
1. Definition: AI refers to the broad field of study focused on creating intelligent machines that can perform tasks that typically require human intelligence.
2. Characteristics: AI systems can process and analyze large amounts of data, learn from experiences, and make decisions based on that data.
3. Examples: AI-powered chatbots, image recognition systems, and natural language processing tools.
AI Agents
1. Definition: AI agents are a specific type of AI system that can autonomously perform tasks on behalf of a user or another system.
2. Characteristics: AI agents have the ability to design their own workflow, utilize available tools, and interact with external environments to achieve complex goals.
3. Examples: AI-powered trading bots, autonomous vehicles, and smart home systems.
Key Differences
1. Autonomy: AI agents have a higher level of autonomy compared to traditional AI systems, allowing them to make decisions and take actions independently.
2. Interactivity: AI agents can interact with their environment and other systems, whereas traditional AI systems may only process data internally.
3. Proactivity: AI agents can anticipate and prevent problems, whereas traditional AI systems may only react to problems after they occur.
4. Complexity: AI agents often require more complex decision-making and problem-solving capabilities compared to traditional AI systems.
In summary, while AI refers to the broader field of artificial intelligence, AI agents are a specific type of AI system that can autonomously perform tasks, interact with their environment, and make decisions independently.
Thank you...🙂
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Crypto_inside
8小時前
What are AI agent applications..🤔🤔??
AI agent applications are numerous and diverse, spanning various industries and domains. Here are some examples:
1. Virtual Assistants
1. Personalized support: AI-powered virtual assistants, like Amazon's Alexa or Google Assistant, provide personalized support and answer queries.
2. Task automation: Virtual assistants can automate tasks, such as scheduling appointments or sending messages.
2. Customer Service
1. Chatbots: AI-powered chatbots provide 24/7 customer support, answering frequent queries and helping with transactions.
2. Sentiment analysis: AI agents can analyze customer sentiment, enabling companies to improve their services and products.
3. Healthcare
1. Medical diagnosis: AI agents can analyze medical data, helping doctors diagnose diseases more accurately.
2. Personalized medicine: AI agents can provide personalized treatment recommendations based on individual patient profiles.
4. Finance
1. Automated trading: AI agents can execute trades automatically, optimizing investment strategies and minimizing risks.
2. Risk management: AI agents can analyze market trends and identify potential risks, enabling investors to make informed decisions.
5. Cybersecurity
1. Threat detection: AI agents can detect and respond to cyber threats in real-time, protecting networks and systems
2. Incident response: AI agents can automate incident response, minimizing the impact of cyber attacks.
6. Education
1. Personalized learning: AI agents can provide personalized learning experiences, tailoring content to individual students' needs.
2. Intelligent tutoring systems: AI agents can offer one-on-one support, helping students with complex topics and concepts.
7. Autonomous Vehicles
1. Self-driving cars: AI agents can navigate roads, traffic, and pedestrians, enabling autonomous vehicles to operate safely.
2. Route optimization: AI agents can optimize routes, reducing travel time and improving fuel efficiency.
8. Smart Homes
1. Home automation: AI agents can control lighting, temperature, and security systems, making homes more comfortable and secure.
2. Energy efficiency: AI agents can optimize energy consumption, reducing waste and lowering utility bills.
9. Supply Chain Management
1. Predictive maintenance: AI agents can predict equipment failures, enabling proactive maintenance and reducing downtime.
2. Inventory optimization: AI agents can optimize inventory levels, ensuring that products are available when needed.
10. Gaming
1. Game development: AI agents can generate game content, such as levels, characters, and stories.
2. Gameplay optimization: AI agents can optimize gameplay, providing personalized experiences and improving player engagement.
These examples illustrate the diverse range of applications for AI agents, from virtual assistants to autonomous vehicles. As AI technology continues to evolve, we can expect to see even more innovative applications in the future.
Thank you...🙂
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