🤖 Large language models like Chat GPT and Google Lambda have achieved a level of generality by training on a vast amount of web data.
🧠 Current large language models do not display significant general intelligence, but they contribute to progress in the field of AI.
🌐 The intersection between artificial general intelligence (AGI) and large language models is an area of interest.
🧠 Large Language Models (LLMs) have the ability to generalize but have severe limitations.
🤔 LLMs are not capable of representing knowledge deeply enough for human-level AGI.
💡 Hybrid systems that combine neural nets, symbolic logic, and evolutionary learning show promise for AGI development.
🤔 The limitations of large language models are being studied and measured by academics.
🎵 Language models have the capability to generate music, but the creativity of the output can be improved.
📰 Language models can generate articles, but they may lack the same level of quality as human-written articles.
🧠 Multiple paths to achieve AGI include non-linear dynamic simulations of the brain and deep mathematical fusion of methods.
🔬 There is interest in revolutionizing brain imaging to better understand the brain and develop AGI.
💡 The goal is to create a common math framework that combines different AI paradigms and deploy it at a large scale.
🔬 The previous system, OpenCog, was slow and impractical for complex AI tasks, so a new infrastructure called OpenCog Hyperion is being developed.
🌐 The new infrastructure includes a distributed knowledge metagraph to support large-scale graph manipulation and the use of neural, evolutionary, and logical AI algorithms.
⚛️ They are working on a hybrid AI approach that combines LLMS with distributed logical knowledge base and virtual world experiments with little agents.
🤖 The ultimate goal is to achieve fundamental breakthroughs in AGI, either through a real truth GPT or by creating little agents that collaborate and invent their own language.
🌐 Large language models can be deployed on a decentralized infrastructure, allowing for coordination without a central controller.
🤖 Sophia is a robot created by David Hansen with a hybrid dialogue engine that utilizes multiple AI systems for reasoning and response generation.
🤔 The ethics of AGI development are complex, with considerations of risk, happiness, and the unknown outcomes of creating superintelligent AI.
Humanoid robots learn different things depending on the context they are placed in.
The relationship between general intelligence and agency is closely tied in human-like cognitive architectures.
The development and deployment of AGI should aim for decentralization and wide distribution.
🔑 The development of large language models, such as Chat GPT, is considered a breakthrough in the AI field.
📈 Advancements in AI have historically taken several years to occur, due to research, conferences, and career transitions.
🌍 The emergence of AGI will lead to significant societal changes, such as the need for universal basic income and potential global conflicts.
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