A multi-agent system (MAS) refers to a system composed of multiple autonomous agents that interact and cooperate with each other to achieve certain goals or solve complex problems. Each agent within the system has its own goals, knowledge, and capabilities, and can perceive its environment and take actions based on that perception.
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Tech Insights, Information, and InspirationDemystifying AI Agents: Understanding the Building Blocks of Artificial Intelligence
At the heart of AI’s capabilities are intelligent systems known as AI agents. These agents possess the ability to perceive their environment, make decisions, and take actions based on their objectives. In this blog post, we will demystify AI agents by exploring their fundamental building blocks and shedding light on how they operate.
AI Model Agents and the Future of Work: Augmenting Human Capabilities and Redefining Job Roles
AI model agents have the potential to augment human capabilities in numerous ways, providing enhanced support and efficiency across various industries. By leveraging machine learning algorithms and deep neural networks, these agents can analyze complex data sets and extract valuable insights, allowing humans to make more informed decisions.
AI Agents
AI agents are autonomous or semi-autonomous software programs that utilize artificial intelligence techniques to perform various tasks, make decisions, and interact with their environment or other agents.
Autonomous AI Agents
Both OODA and PDCA are used in autonomous AI decision-making. OODA is used to make decisions in dynamic environments, while PDCA is used to make decisions in stable environments. In autonomous AI decision-making, the OODA model is used to observe the environment, orient the AI system to the situation, decide on a course of action, and act on the decision.
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