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Updated: Aug 5, 2026

Automated Visual Cognitive Tasks for Recording Neural Activity Using a Floor Projection Maze
Published on: February 20, 2014
Neural sampling from cognitive maps enables goal-directed imagination and planning
Hui Lin1,2, Yukun Yang2, Rong Zhao1
1Department of Precision Instruments, Center for Brain-Inspired Computing Research (CBICR), Tsinghua University, Beijing, China.
Abstract:
Artificial intelligence systems are becoming more intelligent, but at a very high cost in terms of energy consumption and training requirements. By contrast, our brains only require 20 W of energy, they learn online and they can instantly adjust to changing contingencies. This begs the question what data structures, algorithms and learning methods enable brains to achieve that, and whether these can be ported into artificial devices. We are addressing this question for a core feature of intelligence: the capacity to plan and solve problems, including new problems that involve states that were never encountered before. Here we examine three tools that brains are likely to use for achieving that: cognitive maps, stochastic computing and compositional coding. We integrate these tools into a transparent neural network model, and demonstrate its power for flexible planning and problem-solving. Importantly, this approach is suitable for implementation by in-memory computing and other energy-efficient neuromorphic hardware. In particular, it only requires self-supervised local synaptic plasticity that is suited for on-chip learning. Hence, a core feature of brain intelligence-the capacity to generate solutions to problems that were never encountered before-does not require deep neural networks or large language models, and can be implemented in energy-efficient edge devices.
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