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Szmidt, F.

Publications and source records attributed to Szmidt, F..

2 recordsLinked to original sources

Speed-dependent place- and time-field shifts do not require explicit temporal coding

Place and time cells are widely thought to provide complementary representations of spatial location and elapsed time in the hippocampus. Recent experiments reported CA1 neurons whose place and time fields shift systematically with running speed, suggesting that representations of space and time are integrated and compete within a common neural code. Here we show that speed-dependent place- and time-field shifts can arise without explicit temporal coding. Using a hierarchy of computational models, we demonstrate that these phenomena emerge when the velocity of the internal estimate of position becomes progressively less sensitive to increases in the animals speed. Recurrent neural networks trained exclusively for path integration spontaneously developed this behavior. Their analysis revealed a circuit mechanism in which weakly direction-selective neurons stabilize the activity bump at low speeds and progressively release this brake as speed increases. Finally, recurrent networks trained to jointly encode position and elapsed time distinguished genuine spatiotemporal representations from apparent temporal tuning generated by the task-induced correlation between space and time. Together, our results provide an alternative interpretation of speed-dependent place- and time-field shifts, identify a computational mechanism that extends continuous bump attractor models, and generate experimentally testable predictions.

neuroscience↗

An alternative explanation for reported integration and competition between space and time in the hippocampus

Hippocampal place and time cells are thought to be part of the brains spatial and temporal representation. In the article "Integration and competition between space and time in the hippocampus", Chen et al. showed that hippocampal neurons with mixed selectivity for space and time shift their firing fields depending on the animals speed. Here, we reproduce this phenomenon with a simple continuous line attractor that only integrates the animals velocity. Since our model has no genuine time-encoding capabilities, it constitutes an alternative explanation for Chen et al. findings and challenges the claim that the observed firing field shifts are sufficient evidence for a competitive and integrated representation of space-time, as the authors suggested.

neuroscience↗