Venta Pi Network(PI)

Venta Pi Network fácilmente con nuestra guía paso a paso.
Precio estimado
1 PI0,00 USD
Pi Network
PI
Pi Network
$0,1919
+6.3%
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¿Cómo vender Pi Network (PI) por dinero en efectivo?

Inicia sesión y completa la verificación
Inicia sesión en tu cuenta de Gate.com y asegúrate de haber completado la verificación KYC para proteger tus transacciones.
Selecciona el par de trading que deseas vender y introduce la cantidad.
Ve a la página de trading, elige el par de trading de venta, como PI/USD, e introduce la cantidad de PI que deseas vender.
Confirma el orden y realiza el retiro en efectivo.
Revisa los detalles de la transacción, incluyendo el precio y las tarifas, y luego confirma la orden de venta. Tras una venta satisfactoria, realiza un retiro de los fondos USD a tu cuenta bancaria u otros métodos de pago admitidos.

¿Qué puedes hacer con Pi Network (PI)?

Spot
Opera con PI cuando quieras mediante Gate.com. Amplia gama de pares de trading, aprovecha las oportunidades del mercado y haz crecer tus activos.
Simple Earn
Usa tus PI inactivos para suscribirte a los productos financieros a plazo flexible o fijo de la plataforma y gana ingresos adicionales fácilmente.
Convertir
Intercambia rápidamente PI por otras criptomonedas con facilidad.

Ventajas de vender Pi Network a través de Gate

Con 3500 criptomonedas entre las que elegir.
Consistentemente entre las 10 mejores CEX desde 2013.
Prueba de reservas del 100 % desde mayo de 2020
Trading eficiente con depósitos y retiros instantáneos

Otras criptomonedas disponibles en Gate

Más información sobre Pi Network(PI)

What is Pi Network (PI)?
Intermediate
PI Mining vs Bitcoin Mining: Fundamental Differences in Crypto Network Participation
Beginner
The Origins and Development of Pi Network
Beginner
Más artículos sobre PI
¿El auge de ARIA señala una nueva narrativa de IA + PI?
ARIA subió de 0,07 $ a más de 0,79 $ (más de 10x), impulsada por la narrativa IA + PI. Este análisis examina su rally desde el mercado, la comunicación y la competencia narrativa, y evalúa si IA + PI es un nuevo motor del mercado.
¿Sigue valiendo la pena mantener PI Coin? Análisis de los fundamentos de Pi Network y perspectivas de precio de PI Coin para 2026
Después de que BTC alcanzara los 74 000 $, el precio de PI retrocedió hasta los 0,18 $, situando los 0,30 $ como el nivel clave de ruptura. Este artículo ofrece un análisis en profundidad de los fundamentos de Pi Network y la perspectiva de su precio para 2026, examinando la evolución del ecosistema, la estructura de liberación de tokens y el sentimiento del mercado.
La batalla entre el aniversario del mainnet, los listados en CEX y el desbloqueo de billones de tokens
Pi Network celebra el primer aniversario del lanzamiento de su mainnet en medio de su inclusión en CEX y una marcada volatilidad de precios Este artículo ofrece un análisis detallado de las fuerzas impulsoras, las contradicciones estructurales y los posibles riesgos futuros detrás de estos acontecimientos.
Más en el blog de PI
What Is Pi Mining?
Mining crypto doesn’t always require expensive rigs and massive energy bills. With Pi Network, users can mine Pi (PI) tokens right from their smartphones. But how legit is Pi mining, and what’s the deal with the Pi Protocol? Here’s a clear breakdown of what it means to mine Pi and why mobile-first mining could shake up the future of crypto.
Will the Price of Pi Network Reach $1 in 2025?
This article combines the latest market trends, technical movements, and mainnet dynamics of the Pi network to analyze the possibility of reaching $1 by 2025, and provides practical investment advice.
Pi Coin Introduction: The Mobile Mining and Social Trust-Driven Cryptocurrency
Pi Coin is the native Crypto Assets launched by Pi Network, focusing on mobile Mining and social trust mechanisms, lowering the participation threshold for ordinary users.
Más en Wiki sobre PI

Las últimas noticias sobre Pi Network (PI)

2026-04-28 07:41GateNews
Pi Network 突破为期一年的阻力,分析师绘制 1,400% 反弹路径,目标价 $2.80
2026-04-28 03:55Market Whisper
Pi Network 协议 22.1 确认截止,v21.2 节点将自动断网
2026-04-27 03:53GateNews
新加坡外交部长在使用 Claude Code 的 Raspberry Pi 上部署定制 AI 助手
2026-04-25 23:31Crypto News Land
7天AI币表现爆炸——这5个代币现在值得买吗?
2026-04-24 03:27Market Whisper
Pi Network 推出 PiRC1 代币框架,禁止无真实应用的项目发行代币
Más noticias de PI
Pi’s Human Infrastructure for AI: 526 Million Tasks Completed by Distributed Workforce of 1 Million Humans  $PI #pinetwork
djmlj
2026-04-28 16:12
Pi’s Human Infrastructure for AI: 526 Million Tasks Completed by Distributed Workforce of 1 Million Humans $PI #pinetwork
Pi Network has increased by over 15% in the past week, with the price rising from $0.166 to $0.189, and its market capitalization approaching $2 billion, ranking in the top 50. Protocol 22.1 enhances scalability, Protocol 23 will introduce full smart contracts, boosting investor sentiment. Official sponsorship of the 2026 Consensus Conference will increase exposure. Unlocks at the end of April decrease, reducing selling pressure, and the price is attempting to break through the $0.19–$0.20 range. If the breakout continues, the target is $0.2045.
CoinNetwork
2026-04-28 16:02
Pi Network price rises by 15%, protocol 23 upgrade coming soon
Pi Network has increased by over 15% in the past week, with the price rising from $0.166 to $0.189, and its market capitalization approaching $2 billion, ranking in the top 50. Protocol 22.1 enhances scalability, Protocol 23 will introduce full smart contracts, boosting investor sentiment. Official sponsorship of the 2026 Consensus Conference will increase exposure. Unlocks at the end of April decrease, reducing selling pressure, and the price is attempting to break through the $0.19–$0.20 range. If the breakout continues, the target is $0.2045.
PI
+6.15%
$PI  Pi's Artificial Intelligence Infrastructure: A distributed team of one million humans has completed 526 million tasks  
AI development is rapid, but the difficulty in building reliable systems still lies in human factors. For companies dedicated to improving models, optimizing inference quality, or expanding data annotation and evaluation scales, human participation remains indispensable.  
Creating excellent models is not solely dependent on more powerful computing power: AI requires human involvement to optimize outputs, define quality standards, verify accuracy, and eliminate ambiguities, ensuring these systems are truly useful to people.  
In scenarios with clear conditions and limited scope, non-human-assisted optimization methods and automated training techniques can indeed play a significant role in improving efficiency. However, they also have many limitations: they often only optimize certain surrogate metrics and cannot truly reflect human preferences; additionally, these methods are vulnerable to manipulation of reward mechanisms, and they struggle to grasp subtle differences, rationality of various behaviors, evolving norms, and human judgment standards in the real world.  
For this reason, regardless of how automation technology develops, human participation remains essential for the continuous improvement of AI.  
Practical Challenges of Human Input in Artificial Intelligence  
Dependence on human intervention presents significant operational challenges for AI companies.  
Scale/Extent  
AI companies require large amounts of human input data. This is especially important in emerging fields like robotics and physical AI, as future breakthroughs are likely to depend on models trained on vast amounts of human-generated data—data involving physical environments and human interactions in the real world. Just as internet-scale data has been key to developing large language models like ChatGPT, large amounts of human data about the physical world could be crucial for breakthroughs in robotics. Real humans can provide such data, for example, by recording actions, movement patterns, object interactions, navigation processes, and task completion in digital or virtual environments.  
Authenticity  
Only human inputs from real individuals that meet reliable quality standards are valuable. AI companies need to find ways to verify user identities, eliminate malicious actors, and ensure that feedback is accurate, trustworthy, and useful. Without these safeguards, systems requiring human participation are vulnerable to fraud, low-quality input data, and unreliable training data.  
Cost  
Systems that truly enable human participation incur very high construction, operation, and maintenance costs. Companies need infrastructure to handle tasks, attract participants, verify contributor identities, assign work, and ensure large-scale, flexible participation mechanisms. Not to mention, they also need to pay human labor costs in fiat currency. Overall, operational costs include not only labor expenses but also the costs of maintaining platform infrastructure, coordinating tasks, verification processes, and payment systems.  
Large-Scale Application Verification: Real Human Workforce Support in the Pi Network  
The Pi Network has found a solution: leveraging a large number of globally distributed, verified participants active within the Pi ecosystem.  
This data alone demonstrates the scale and capability of this team: over one million verified users have completed more than 526 million verification tasks. These tasks are part of Pi’s built-in KYC system, and the rewards for KYC verifiers are directly paid in Pi tokens. Unlike many other KYC tools, Pi’s system combines AI automation with a large human team, enabling accurate and efficient identity verification for over 1M people across more than 200 countries and regions. Those who complete verification can further participate in this talent marketplace.  
  
Pi’s solution lays a new foundation for AI and digital platforms that require human participation, where contributions are genuine, motivated, and capable of handling tasks from simple to moderately complex. Since participants are verified, companies using Pi’s decentralized human resources can avoid threats from bots, fraud, and unreliable labor, while meeting various trust and compliance requirements from the outset.  
Its significance goes far beyond that. A global workforce can facilitate cross-language, regional, and cultural localization, helping to provide more accurate data, more valuable analysis, and more useful feedback for practical applications. This is something many other methods cannot achieve.
PiPioneerBlueRainCommunity
2026-04-28 16:01
$PI Pi's Artificial Intelligence Infrastructure: A distributed team of one million humans has completed 526 million tasks AI development is rapid, but the difficulty in building reliable systems still lies in human factors. For companies dedicated to improving models, optimizing inference quality, or expanding data annotation and evaluation scales, human participation remains indispensable. Creating excellent models is not solely dependent on more powerful computing power: AI requires human involvement to optimize outputs, define quality standards, verify accuracy, and eliminate ambiguities, ensuring these systems are truly useful to people. In scenarios with clear conditions and limited scope, non-human-assisted optimization methods and automated training techniques can indeed play a significant role in improving efficiency. However, they also have many limitations: they often only optimize certain surrogate metrics and cannot truly reflect human preferences; additionally, these methods are vulnerable to manipulation of reward mechanisms, and they struggle to grasp subtle differences, rationality of various behaviors, evolving norms, and human judgment standards in the real world. For this reason, regardless of how automation technology develops, human participation remains essential for the continuous improvement of AI. Practical Challenges of Human Input in Artificial Intelligence Dependence on human intervention presents significant operational challenges for AI companies. Scale/Extent AI companies require large amounts of human input data. This is especially important in emerging fields like robotics and physical AI, as future breakthroughs are likely to depend on models trained on vast amounts of human-generated data—data involving physical environments and human interactions in the real world. Just as internet-scale data has been key to developing large language models like ChatGPT, large amounts of human data about the physical world could be crucial for breakthroughs in robotics. Real humans can provide such data, for example, by recording actions, movement patterns, object interactions, navigation processes, and task completion in digital or virtual environments. Authenticity Only human inputs from real individuals that meet reliable quality standards are valuable. AI companies need to find ways to verify user identities, eliminate malicious actors, and ensure that feedback is accurate, trustworthy, and useful. Without these safeguards, systems requiring human participation are vulnerable to fraud, low-quality input data, and unreliable training data. Cost Systems that truly enable human participation incur very high construction, operation, and maintenance costs. Companies need infrastructure to handle tasks, attract participants, verify contributor identities, assign work, and ensure large-scale, flexible participation mechanisms. Not to mention, they also need to pay human labor costs in fiat currency. Overall, operational costs include not only labor expenses but also the costs of maintaining platform infrastructure, coordinating tasks, verification processes, and payment systems. Large-Scale Application Verification: Real Human Workforce Support in the Pi Network The Pi Network has found a solution: leveraging a large number of globally distributed, verified participants active within the Pi ecosystem. This data alone demonstrates the scale and capability of this team: over one million verified users have completed more than 526 million verification tasks. These tasks are part of Pi’s built-in KYC system, and the rewards for KYC verifiers are directly paid in Pi tokens. Unlike many other KYC tools, Pi’s system combines AI automation with a large human team, enabling accurate and efficient identity verification for over 1M people across more than 200 countries and regions. Those who complete verification can further participate in this talent marketplace.  Pi’s solution lays a new foundation for AI and digital platforms that require human participation, where contributions are genuine, motivated, and capable of handling tasks from simple to moderately complex. Since participants are verified, companies using Pi’s decentralized human resources can avoid threats from bots, fraud, and unreliable labor, while meeting various trust and compliance requirements from the outset. Its significance goes far beyond that. A global workforce can facilitate cross-language, regional, and cultural localization, helping to provide more accurate data, more valuable analysis, and more useful feedback for practical applications. This is something many other methods cannot achieve.
PI
+6.15%
Más publicaciones de PI

Preguntas frecuentes sobre la venta de Pi Network (PI)

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¿Cómo puedo vender mis PI en Gate.com?
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¿Por qué la gente vende sus PI?
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¿Cuáles son las tarifas por vender PI en los mercados P2P de Gate?
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¿Es ilegal vender monedas Pi?
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¿Tiene buen futuro la moneda Pi?
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