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Language and Cognition01:27

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Language serves as a bridge between ideas and communication, influencing how individuals perceive and interact with the world. Psychologists have long debated whether language shapes thought or vice versa. This discussion gained grip with Edward Sapir and Benjamin Lee Whorf in the 1940s, who proposed that language determines thought, a concept known as linguistic determinism. They suggested that the vocabulary and structure of a language influence how its speakers think and perceive reality.
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The brain processes sensory information rapidly due to parallel processing, which involves sending data across multiple neural pathways at the same time. This method allows the brain to manage various sensory qualities, such as shapes, colors, movements, and locations, all concurrently. For instance, when observing a forest landscape, the brain simultaneously processes the movement of leaves, the shapes of trees, the depth between them, and the various shades of green. This enables a quick and...
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Multimachine stability analysis is crucial for understanding the dynamics and stability of power systems with multiple synchronous machines. The objective is to solve the swing equations for a network of M machines connected to an N-bus power system.
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DistMLLM: Enhancing Multimodal Large Language Model Serving in Heterogeneous Edge Computing.

Xingyu Yuan1, Hui Chen1, Lei Liu2

  • 1Department of Sciences and Informatics, Muroran Institute of Technology, Muroran 050-8585, Hokkaido, Japan.

Sensors (Basel, Switzerland)
|December 31, 2025
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Summary
This summary is machine-generated.

Deploying multimodal large language models (MLLMs) at the edge is challenging. DistMLLM efficiently allocates MLLM tasks across heterogeneous edge devices, maximizing profit and minimizing regret.

Keywords:
edge computinglarge language modelmulti-agent bandittask allocation

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Area of Science:

  • Artificial Intelligence
  • Edge Computing
  • Machine Learning

Background:

  • Multimodal Large Language Models (MLLMs) provide advanced capabilities for processing diverse data types like text, images, and audio.
  • Edge deployment of MLLM services offers reduced latency but faces challenges from high computational needs and device variability.

Purpose of the Study:

  • To introduce DistMLLM, a novel profit-driven framework for efficient MLLM service deployment in heterogeneous edge computing environments.
  • To address the complexities of task allocation and scheduling for MLLMs at the edge, considering device capabilities and competing interests.

Main Methods:

  • DistMLLM disaggregates MLLM tasks into encoding and inference stages, dynamically assigning them to edge devices based on their computational capacity.
  • A multi-agent bandit algorithm is utilized to optimize task allocation and scheduling, learning to manage uncertain device conditions and provider competition.

Main Results:

  • Simulations show DistMLLM significantly outperforms existing baselines in achieving higher long-term profit.
  • The framework demonstrates a notable reduction in regret, indicating efficient resource utilization and adaptive decision-making.
  • DistMLLM proves to be a scalable and adaptable solution for deploying MLLM services on the edge.

Conclusions:

  • DistMLLM offers an effective solution for the profitable and efficient deployment of MLLM services in heterogeneous edge environments.
  • The proposed framework addresses key challenges in edge AI by optimizing task allocation and resource management for demanding MLLM workloads.