Cooray Gerald K, Cooray Vernon, Friston Karl J
Clinical Neuroscience, Karolinska Institutet, Eugeniav, 17177, Stockholm, Sweden.
Angstrom Laboratory, Uppsala University, Lägerhyddsv 1, 752 37, Uppsala, Sweden.
J Comput Neurosci. 2025 Apr 10. doi: 10.1007/s10827-025-00903-8.
Macroscopic studies of cortical tissue reveal a prevalence of oscillatory activity, that reflect a fine tuning of neural interactions. This research extends neural field theories by incorporating generalized oscillatory dynamics into previous work on conservative or semi-conservative neural field dynamics. Prior studies have largely assumed isotropic connections among neural units; however, this study demonstrates that a broad range of anisotropic and fluctuating connections can still sustain oscillations. Using Lagrangian field methods, we examine different types of connectivity, their dynamics, and potential interactions with neural fields. From this theoretical foundation, we derive a framework that incorporates Hebbian and non-Hebbian learning - i.e., plasticity - into the study of neural fields via the concept of a connectivity field.
对皮质组织的宏观研究揭示了振荡活动的普遍性,这反映了神经相互作用的精细调节。这项研究通过将广义振荡动力学纳入先前关于保守或半保守神经场动力学的工作,扩展了神经场理论。先前的研究大多假设神经单元之间存在各向同性连接;然而,本研究表明,广泛的各向异性和波动连接仍可维持振荡。我们使用拉格朗日场方法,研究了不同类型的连接性、它们的动力学以及与神经场的潜在相互作用。基于这一理论基础,我们通过连接性场的概念,推导出一个将赫布型和非赫布型学习(即可塑性)纳入神经场研究的框架。