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I Just Presented CTNet: A New AI Architecture Where Computation Evolves Like a Living System

I Just Presented CTNet: A New AI Architecture Where Computation Evolves Like a Living System

我發表了 CTNet:一個讓計算像活系統一樣演化的新型 AI 架構

I just published a presentation on CTNet and wanted to share it here for serious feedback. CTNet proposes a fundamentally different way to think about how AI systems compute—instead of just rewriting representations over and over, it treats computation as the controlled evolution of a persistent state. This framework brings together reentrant memory, computational regimes, admissibility constraints, multi-scale coherence, local charts, and projective outputs. The core insight: the output doesn't capture everything that's happening; it emerges as just one facet of a deeper ongoing process. If you're interested in how neural networks could work more like dynamic systems than static transformations, this might be worth checking out.