Latest AI & Tech Research Papers: November 10, 2025

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Latest AI & Tech Research Papers: November 10, 2025

Hey guys! Check out the latest buzz in the research world! This is a compilation of the freshest papers from November 10, 2025, focusing on some seriously cool topics. Big thanks to the Raven-1027 and DailyArXiv communities for making this possible. For an even smoother reading experience and to explore more papers, make sure you swing by the Github page. Let's dive in!

Highly Relevant Papers

This section highlights papers with strong correlations to current research trends and interests. We're talking about everything from satellite networks to cancer research and the evaluation of AI agents. It's a mix of cutting-edge tech and vital scientific advancements.

Title Date Comment
Direct-to-Cell: A First Look into Starlink's Direct Satellite-to-Device Radio Access Network through Crowdsourced Measurements 2025-11-06 7 pages, 6 figures
CancerGUIDE: Cancer Guideline Understanding via Internal Disagreement Estimation 2025-11-06
RAGalyst: Automated Human-Aligned Agentic Evaluation for Domain-Specific RAG 2025-11-06
Action Deviation-Aware Inference for Low-Latency Wireless Robots 2025-11-06
FLOWR.root: A flow matching based foundation model for joint multi-purpose structure-aware 3D ligand generation and affinity prediction 2025-11-06
Constraint-Driven Small Language Models Based on Agent and OpenAlex Knowledge Graph: Mining Conceptual Pathways and Discovering Innovation Points in Academic Papers 2025-11-05 11 pages, 10 figures
Data-Efficient Adaptation and a Novel Evaluation Method for Aspect-based Sentiment Analysis 2025-11-04
Measuring AI Diffusion: A Population-Normalized Metric for Tracking Global AI Usage 2025-11-04
18 pa...

18 pages, 6 figures, 2 tables. Also available at https://aka.ms/AI_Diffusion_Technical_Report

Cosmos-Surg-dVRK: World Foundation Model-based Automated Online Evaluation of Surgical Robot Policy Learning 2025-11-03
minor...

minor metadata and notation fixes; +3 citations

ExplicitLM: Decoupling Knowledge from Parameters via Explicit Memory Banks 2025-11-03 12pages, 4figures
multiMentalRoBERTa: A Fine-tuned Multiclass Classifier for Mental Health Disorder 2025-11-01
Accep...

Accepted in IEEE Big Data, 8-11 December, 2025 @ Macau SAR, China

VeriFastScore: Speeding up long-form factuality evaluation 2025-10-30
RCScore: Quantifying Response Consistency in Large Language Models 2025-10-30
VC4VG: Optimizing Video Captions for Text-to-Video Generation 2025-10-29
Accep...

Accepted by EMNLP 2025

Development of a Digital Twin for an Electric Vehicle Emulator Modeling, Control, and Experimental Validation 2025-10-28
6 pag...

6 pages, Accepted at CODIT 2025 (Conference on Decision and Control in Intelligent Technology)

Diving into Strong Correlation Papers

Let's break down why these papers are creating a buzz. The Direct-to-Cell paper offers an initial peek into Starlink's innovative approach to direct satellite-to-device communication. Think about the implications for global connectivity! Then there's CancerGUIDE, which tackles the crucial issue of understanding cancer guidelines, a significant step in improving treatment and care.

RAGalyst introduces an automated method for evaluating Retrieval-Augmented Generation (RAG) systems, which is super important for ensuring AI agents are not just smart, but also aligned with human values. Action Deviation-Aware Inference focuses on low-latency wireless robots, essential for real-time applications in industries like manufacturing and healthcare. For the chemists out there, FLOWR.root presents a cool foundation model for 3D ligand generation, potentially revolutionizing drug discovery.

Constraint-Driven Small Language Models explores how to use language models and knowledge graphs to uncover innovation in academic research. Meanwhile, Data-Efficient Adaptation addresses the challenge of sentiment analysis with limited data, a common issue in many real-world scenarios. Measuring AI Diffusion offers a population-normalized metric to track AI usage globally, giving us a clearer picture of AI's impact on society.

In the realm of medical tech, Cosmos-Surg-dVRK presents an automated evaluation system for surgical robot policy learning, leveraging world foundation models. This could lead to more efficient and safer robotic surgeries. ExplicitLM proposes a method to decouple knowledge from parameters in language models, potentially making these models more flexible and scalable. On the mental health front, multiMentalRoBERTa introduces a fine-tuned classifier for mental health disorders, which could be a game-changer for early diagnosis and intervention.

For those interested in the reliability of AI responses, VeriFastScore speeds up the evaluation of long-form factuality, and RCScore quantifies response consistency in large language models. These papers are crucial for building trust in AI systems. Shifting gears to video generation, VC4VG optimizes video captions to improve text-to-video generation, making AI-generated content more accurate and engaging. Lastly, Development of a Digital Twin focuses on electric vehicle emulators, a key area for advancing sustainable transportation.

Computational Chemistry Papers

This section is all about the intersection of computation and chemistry. From novel methods in quantum computing to machine learning applications in molecular modeling, these papers are pushing the boundaries of what's possible in the field.

Title Date Comment
Analysis of a Schwarz-Fourier domain decomposition method 2025-11-03 25 pages, 10 figures
An Analytic Theory of Quantum Imaginary Time Evolution 2025-10-26 35 pages, 8 figures
The dark side of the forces: assessing non-conservative force models for atomistic machine learning 2025-10-25 ICML 2025 (Oral)
Fast Non-Log-Concave Sampling under Nonconvex Equality and Inequality Constraints with Landing 2025-10-24 62 pages
Revisiting Orbital Minimization Method for Neural Operator Decomposition 2025-10-24
25 pa...

25 pages, 8 figures. To appear at NeurIPS 2025

Generalised Flow Maps for Few-Step Generative Modelling on Riemannian Manifolds 2025-10-24 Under review
Superior Molecular Representations from Intermediate Encoder Layers 2025-10-15
Adapting Quantum Machine Learning for Energy Dissociation of Bonds 2025-10-08
QCBench: Evaluating Large Language Models on Domain-Specific Quantitative Chemistry 2025-10-04
Revis...

Revision at Journal of Chemical Information and Modeling

Machine learning for accuracy in density functional approximations 2025-10-02
Round-trip Reinforcement Learning: Self-Consistent Training for Better Chemical LLMs 2025-10-01 19 pages
A general optimization framework for mapping local transition-state networks 2025-09-30
Euclidean Fast Attention -- Machine Learning Global Atomic Representations at Linear Cost 2025-09-29
Shoot from the HIP: Hessian Interatomic Potentials without derivatives 2025-09-25
https...

https://github.com/BurgerAndreas/hip

A Transformer Model for Predicting Chemical Products from Generic SMARTS Templates with Data Augmentation 2025-09-24 ICTAI 2025

Unpacking Computational Chemistry Research

Computational chemistry is where the magic of computer simulations meets the complexity of molecular interactions. It's a field that's supercharging drug discovery, materials science, and our fundamental understanding of chemical processes. Let's peek into some highlights from these papers.

Analysis of a Schwarz-Fourier domain decomposition method dives into numerical techniques for solving complex problems, crucial for accurate simulations. An Analytic Theory of Quantum Imaginary Time Evolution explores the fascinating world of quantum mechanics, potentially leading to breakthroughs in quantum computing and materials design. The dark side of the forces: assessing non-conservative force models for atomistic machine learning is a critical look at the challenges of building accurate machine-learning models for atomic systems, ensuring we're not overlooking important physics.

Fast Non-Log-Concave Sampling offers new methods for handling complex probability distributions, essential for many computational chemistry applications. Revisiting Orbital Minimization Method refines techniques for electronic structure calculations, the backbone of many chemistry simulations. Generalised Flow Maps introduces a fresh approach to generative modeling on Riemannian manifolds, opening doors to designing novel molecules and materials.

Superior Molecular Representations explores how to extract the most informative features from molecules, boosting the performance of machine learning models in chemistry. Adapting Quantum Machine Learning looks at how quantum computers can tackle the challenge of simulating bond dissociation, a fundamental process in chemistry. QCBench is a valuable resource for evaluating large language models in the context of quantitative chemistry, ensuring these models are reliable for chemical applications. Machine learning for accuracy in density functional approximations tackles a long-standing challenge in quantum chemistry, making calculations more accurate and efficient.

Round-trip Reinforcement Learning presents a novel approach to training chemical language models, potentially leading to more creative and effective AI-driven chemistry. A general optimization framework for mapping local transition-state networks is about understanding the pathways of chemical reactions, crucial for designing new catalysts and chemical processes. Euclidean Fast Attention offers a computationally efficient way to represent molecules, paving the way for large-scale simulations. Shoot from the HIP introduces a new method for calculating interatomic potentials, a key component in molecular dynamics simulations. Lastly, A Transformer Model for Predicting Chemical Products explores how AI can predict the outcomes of chemical reactions, a game-changer for chemical synthesis.

Final Thoughts

So, there you have it – a whirlwind tour of some of the latest research papers from November 10, 2025! Whether you're into AI, robotics, computational chemistry, or just curious about the future of technology, there's something here for everyone. Don't forget to check out the Github page for even more. Keep exploring, keep learning, and stay awesome!