Identifying Connectivity Distributions from Neural Dynamics Using Flows

Fuente: arXiv
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Main Authors: Kim, Timothy Doyeon, Pereira-Obilinovic, Ulises, Wang, Yiliu, Shea-Brown, Eric, Sümbül, Uygar
Format: Preprint
Published: 2026
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author Kim, Timothy Doyeon
Pereira-Obilinovic, Ulises
Wang, Yiliu
Shea-Brown, Eric
Sümbül, Uygar
author_facet Kim, Timothy Doyeon
Pereira-Obilinovic, Ulises
Wang, Yiliu
Shea-Brown, Eric
Sümbül, Uygar
contents Connectivity structure shapes neural computation, but inferring this structure from population recordings is degenerate: multiple connectivity structures can generate identical dynamics. Recent work uses low-rank recurrent neural networks (lrRNNs) to infer low-dimensional latent dynamics and connectivity from observed activity, enabling a mechanistic interpretation of the dynamics. However, standard approaches for training lrRNNs can recover spurious structures irrelevant to the underlying dynamics. We first characterize the identifiability of connectivity structures in lrRNNs and determine conditions under which a unique solution exists. To find such solutions, we develop an inference framework based on maximum entropy and continuous normalizing flows (CNFs), trained via flow matching. Instead of estimating a single connectivity matrix, our method learns a distribution over connection weights that is maximally unbiased over unidentifiable components while matching the observed dynamics. This approach captures complex yet necessary distributions such as heavy-tailed connectivity found in empirical data. We validate our method on synthetic datasets with connectivity structures that generate multistable attractors, limit cycles, and ring attractors, and demonstrate its applicability in recordings from rat frontal cortex during decision-making. Our framework shifts circuit inference from recovering connectivity to identifying which connectivity structures are computationally required, and which are artifacts of underconstrained inference.
format Preprint
id arxiv_https___arxiv_org_abs_2603_26506
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Identifying Connectivity Distributions from Neural Dynamics Using Flows
Kim, Timothy Doyeon
Pereira-Obilinovic, Ulises
Wang, Yiliu
Shea-Brown, Eric
Sümbül, Uygar
Neurons and Cognition
Machine Learning
Connectivity structure shapes neural computation, but inferring this structure from population recordings is degenerate: multiple connectivity structures can generate identical dynamics. Recent work uses low-rank recurrent neural networks (lrRNNs) to infer low-dimensional latent dynamics and connectivity from observed activity, enabling a mechanistic interpretation of the dynamics. However, standard approaches for training lrRNNs can recover spurious structures irrelevant to the underlying dynamics. We first characterize the identifiability of connectivity structures in lrRNNs and determine conditions under which a unique solution exists. To find such solutions, we develop an inference framework based on maximum entropy and continuous normalizing flows (CNFs), trained via flow matching. Instead of estimating a single connectivity matrix, our method learns a distribution over connection weights that is maximally unbiased over unidentifiable components while matching the observed dynamics. This approach captures complex yet necessary distributions such as heavy-tailed connectivity found in empirical data. We validate our method on synthetic datasets with connectivity structures that generate multistable attractors, limit cycles, and ring attractors, and demonstrate its applicability in recordings from rat frontal cortex during decision-making. Our framework shifts circuit inference from recovering connectivity to identifying which connectivity structures are computationally required, and which are artifacts of underconstrained inference.
title Identifying Connectivity Distributions from Neural Dynamics Using Flows
topic Neurons and Cognition
Machine Learning
url https://arxiv.org/abs/2603.26506