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Related Concept Videos

Types Of Transformers01:16

Types Of Transformers

951
Transformers can provide desired voltages to a circuit by modifying the number of turns in the secondary windings.
If the ratio of the number of turns in the secondary winding to that of the primary winding is greater than one, then the transformer is said to be a step-up transformer. In a step-up transformer, the voltage at the secondary winding is greater than the voltage applied at the primary winding.
However, if this ratio is less than one, the transformer is said to be a step-down...
951
Transformers in Distribution System01:27

Transformers in Distribution System

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Transformers in distribution systems can be broadly categorized into distribution substation transformers and other distribution transformers. They are crucial for stepping down high transmission voltages to levels suitable for distribution and end-user applications.
Distribution substation transformers come in various ratings and typically use mineral oil for insulation and cooling. To prevent moisture and air from entering the oil, some transformers use an inert gas like nitrogen to fill the...
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Transformers with Off-Nominal Turns Ratios01:25

Transformers with Off-Nominal Turns Ratios

141
In scenarios involving parallel transformers with disparate ratings, developing per-unit models requires accommodating off-nominal turns ratios. This situation arises when the selected base voltages are not proportional to the transformer’s voltage ratings. Consider a transformer where the rated voltages are related by the term a. If the chosen voltage bases satisfy a relationship involving term b, term c is defined as the ratio of these bases. This ratio is then substituted into the...
141
Brain Waves01:23

Brain Waves

1.1K
Brain waves are electrical signals generated by the neurons in the brain, which are regularly monitored to measure mental activities. Brain waves and their frequency ranges can be measured using an electroencephalogram or EEG. There are four main types of brain waves, each with distinct characteristics:
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The Ideal Transformer01:26

The Ideal Transformer

359
In single-phase two-winding transformers, two windings are coiled around a magnetic core characterized by cross-sectional area A and magnetic permeability μ. A phasor current i1 enters the left winding while i2 exits the right winding, establishing the fundamental working of the transformer through electromagnetic principles.
Ampere's Law forms the basis of understanding the magnetic field within the transformer. It states that the integral of the magnetic field intensity's...
359

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Related Experiment Video

Updated: Jun 11, 2025

Mapping Cortical Dynamics Using Simultaneous MEG/EEG and Anatomically-constrained Minimum-norm Estimates: an Auditory Attention Example
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Transformers and cortical waves: encoders for pulling in context across time.

Lyle Muller1, Patricia S Churchland2, Terrence J Sejnowski3

  • 1Department of Mathematics, Western University, London, Ontario, Canada; Fields Laboratory for Network Science, Fields Institute, Toronto, Ontario, Canada.

Trends in Neurosciences
|September 28, 2024
PubMed
Summary

Cortical waves in the brain may function like transformer networks by encoding neural activity. This mechanism could enable the brain to process sequential information, similar to large language models (LLMs).

Keywords:
artificial intelligencebraincomputational neurosciencelarge language modelssensory processingvisual processing

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Area of Science:

  • Computational neuroscience
  • Artificial intelligence
  • Cognitive science

Background:

  • Large language models (LLMs) like ChatGPT excel at processing sequential data using transformer networks.
  • Transformers rely on self-attention mechanisms to capture long-range temporal dependencies within input sequences.
  • Understanding the neural basis of temporal information processing in the brain is a key challenge.

Purpose of the Study:

  • To propose a neurobiological mechanism for temporal sequence processing analogous to transformer networks.
  • To explore how cortical waves might implement a similar computational principle as self-attention in LLMs.

Main Methods:

  • Theoretical modeling comparing transformer computation with neural activity patterns.
  • Conceptual analysis of self-attention mechanisms and their potential neural correlates.
  • Hypothesizing the role of traveling waves in neural information encoding.

Main Results:

  • Transformer networks encode input sequences into vectors, enabling the capture of temporal dependencies.
  • Self-attention within transformers computes pairwise word associations to enhance context.
  • Cortical waves are proposed to encapsulate input history into spatial patterns, enabling temporal context extraction.

Conclusions:

  • Cortical waves may offer a biological implementation of the encoding principles used in transformer networks.
  • This neural mechanism could explain how the brain processes sequential sensory information.
  • The study provides a novel perspective linking artificial intelligence computation to brain function.