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Learning to solve the credit assignment problem

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arxiv 1906.00889 v4 pith:4YXUII3W submitted 2019-06-03 q-bio.NC cs.NE

Learning to solve the credit assignment problem

classification q-bio.NC cs.NE
keywords learningapproachapproximategradientnetworksbackpropagationfeedbackhowever
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Backpropagation is driving today's artificial neural networks (ANNs). However, despite extensive research, it remains unclear if the brain implements this algorithm. Among neuroscientists, reinforcement learning (RL) algorithms are often seen as a realistic alternative: neurons can randomly introduce change, and use unspecific feedback signals to observe their effect on the cost and thus approximate their gradient. However, the convergence rate of such learning scales poorly with the number of involved neurons. Here we propose a hybrid learning approach. Each neuron uses an RL-type strategy to learn how to approximate the gradients that backpropagation would provide. We provide proof that our approach converges to the true gradient for certain classes of networks. In both feedforward and convolutional networks, we empirically show that our approach learns to approximate the gradient, and can match or the performance of exact gradient-based learning. Learning feedback weights provides a biologically plausible mechanism of achieving good performance, without the need for precise, pre-specified learning rules.

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Cited by 2 Pith papers

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  1. LC-ERD: Mining Latent Logic for Self-Evolving Reasoning via Consistency-Regulated Reward Decomposition

    cs.AI 2026-05 unverdicted novelty 6.0

    LC-ERD frames LLM self-alignment as latent structure mining via a Variational Logic Potential and Multi-Agent Value Decomposition to provide granular, logic-consistent supervision.

  2. Spike-based alignment learning solves the weight transport problem

    q-bio.NC 2025-03 unverdicted novelty 6.0

    SAL is a spike-timing-based local learning rule that aligns feedback weights to forward weights in spiking networks by exploiting noise and Hebbian/anti-Hebbian plasticity to recover the true gradient.