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Langford, Z. D.

Publications and source records attributed to Langford, Z. D..

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The use of threshold methods to detect beta bursts may inadequately characterize the beta band

In neurophysiological research, the traditional view of beta band activity as sustained oscillations is being reinterpreted as transient bursts. Bursts are characterized by a distinct wavelet shape, high amplitude, and, most importantly, brief temporal occurrence. The primary method for their detection relies on a threshold-based analysis of spectral power, and this presents two fundamental issues. First, the threshold selection is effectively arbitrary, being influenced by both temporally proximal and distal factors in the signal. Second, the method necessarily detects temporal events, as such it is susceptible to misidentifying sustained signals as transient bursts. To address these issues, this study systematically explores burst detection through simulations, shedding light on the methods robustness across various scenarios. Although the method is effective in detecting transients in numerous cases, it can be overly sensitive, leading to spurious detections. Moreover, when applied to simulations featuring exclusively sustained events, the method frequently yields events exhibiting characteristics consistent with a transient burst interpretation. By simulating an average difference in power between experimental conditions, we illustrate how apparent burst rate differences between conditions can emerge even in the absence of actual burst rate disparities, and even in the absence of bursts. This capacity to produce misleading outcomes challenges the reinterpretation of sustained beta oscillations as transient bursts and prompts a critical reassessment of the existing literature. New and NoteworthyNeurophysiological research is experiencing a transformative shift in understanding beta band activity, moving away from the notion of sustained oscillations towards recognizing the significance of transient bursts. Here we show how the methods to detect such bursts are prone to spurious detections and can blur the distinction between sustained signals and transient bursts. Further, in realistic scenarios these methods can produce apparent behavioral associations where no such association exists.

neuroscience↗

Frontal oscillatory beta bursts have rhythmically distinct regimes with differing functional relevance

Beta band rhythms often appear as brief bursts, but how variations in burst properties impact neural function is unclear. We probed beta burst heterogeneity by developing two complementary detection algorithms. One isolates brief high amplitude events (bursts of power, BoP) and another that identifies consistent oscillations that span multiple cycles (bursts of consistency, BoC). Examining frontal LFP and ECoG recordings from mice and macaques, these two burst types occupied the same 15 to 30 Hz frequency band yet showed minimal temporal overlap, indicating independent phenomena probably with distinct neural generators. Crucially, when task demands shifted between high and low cognitive control states, BoC bursts were enriched during demanding phases, whereas BoP bursts dominated routine phases. These results demonstrate that frontal beta activity comprises at least two rhythmically distinct regimes linked to different levels of cognitive control. Our dual mode framework refines mechanistic models of transient oscillations and underscores the significance of burst waveform diversity for flexible brain function.

neuroscience↗