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August 3, 2025
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Uncertainty Quantification: A Leap Towards Trustworthy AI — Aug. 3, 2025

Uncertainty Quantification: A Leap Towards Trustworthy AI

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Kareem Darwish
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Bayesian Optimization: Accelerating Innovation Across Industries

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Semi-Supervised Learning: Navigating the Data Scarcity Frontier — Aug. 3, 2025

Explore the latest breakthroughs in semi-supervised learning, focusing on innovations in pseudo-labeling, consistency regularization, and…

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Bayesian Inference: Powering the Next Wave of Intelligent Systems — Aug. 3, 2025

Bayesian Inference: Powering the Next Wave of Intelligent Systems

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July 27, 2025
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Uncertainty Quantification: Navigating the Frontier of Trustworthy AI

Uncertainty Quantification: Navigating the Frontier of Trustworthy AI

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Summary:

  • 🚀 New paper: A-SEA3L-QA introduces a self-evolving adversarial workflow for Arabic long-context QA generation. It leverages multiple LVLMs in an end-to-end, automated pipeline to improve performance without human intervention. https://arxiv.org/pdf/2509.02864″
  • 💡 Key insight: The system enables continuous learning by iteratively refining outputs and enhancing question difficulty. This approach significantly boosts long-context comprehension capabilities of Arabic LVLMs.
  • 🤖 A-SEA3L-QA also provides a large-scale benchmark (AraLongBench) to evaluate Arabic QA models, exposing weaknesses in current systems. This is a major step forward for low-resource language NLP.

Resources:

AraLongBench (benchmark dataset)

Code:

https://github.com/wangk0b/Self_Improving_ARA_LONG_Doc.git

Link:

https://arxiv.org/pdf/2509.02864