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arXiv preprints from January 1, 2026 through September 25, 2026 — 22:45:38 EST

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Posted in physics.optics · 2026-01-07 · Otto Cranwell Schaeper, Angus Gale, Nathan Coste, Dominic Scognamiglio, Jake Horder, Hugo Quard, Igor Aharonovich

Engineering and Tuning of high quality hexagonal boron nitride nanophotonic resonators

Van der Waals materials are offering intriguing opportunities as building blocks for advanced quantum information technologies and integrated quantum photonic systems. Critical to their development, is robust and high quality light-matter interactions which can be delivered through the fabrication of optical resonators. Here we...

💬 0 commentsarXiv:2601.03800v2PDF
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Posted in q-fin.MF · 2026-01-07 · Bastien Baude, Damien Challet, Ioane Muni Toke

Optimal execution on Uniswap v2/v3 under transient price impact

We study the optimal liquidation of a large position on Uniswap v2 and Uniswap v3 in discrete time. The instantaneous price impact is derived from the AMM pricing rule. Transient impact is modeled to capture either exponential or approximately power-law decay, together with a permanent component. In the Uniswap v2 setting, we obtain...

💬 0 commentsarXiv:2601.03799v1PDF
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Posted in cs.CL · 2026-01-07 · Taisiia Tikhomirova, Dirk U. Wulff

Where meaning lives: Layer-wise accessibility of psycholinguistic features in encoder and decoder language models

Understanding where transformer language models encode psychologically meaningful aspects of meaning is essential for both theory and practice. We conduct a systematic layer-wise probing study of 58 psycholinguistic features across 10 transformer models, spanning encoder-only and decoder-only architectures, and compare three embedding...

💬 0 commentsarXiv:2601.03798v1PDF
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Posted in physics.soc-ph · 2026-01-07 · Ritwick Mishra, Abhijin Adiga, Madhav Marathe, S. S. Ravi, Ravi Tandon, Anil Vullikanti

Information Theoretic Optimal Surveillance for Epidemic Prevalence in Networks

Estimating the true prevalence of an epidemic outbreak is a key public health problem. This is challenging because surveillance is usually resource intensive and biased. In the network setting, prior work on cost sensitive disease surveillance has focused on choosing a subset of individuals (or nodes) to minimize objectives such as...

💬 0 commentsarXiv:2601.04267v2PDF
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Posted in math.NT · 2026-01-07 · Sayan Goswami

On difference sets of dense subsets of $\mathbb{Z}^2$

In this article, we study the structure of the difference set $E - E$ for subsets $E \subseteq \mathbb{Z}^2$ of positive upper Banach density. Fish asked in [Proc. Amer. Math. Soc. 146 (2018), 3449-3453] whether, for every such set $E$, there exists a nonzero integer $k$ such that $k \cdot \mathbb{Z} \subseteq \{\, xy : (x,y) \in E -...

💬 0 commentsarXiv:2601.03797v2PDF
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Posted in q-bio.NC · 2026-01-07 · Christopher Gabaldon, Adria Mulero, Rong Wang, Daniel A. Martin, Sabrina Camargo, Qian-Yuan Tang, Ignacio Cifre, Changsong Zhou, Dante R. Chialvo

Data-driven inference of brain dynamical states from the r-spectrum of correlation matrices

We present a data-driven framework to characterize large-scale brain dynamical states directly from correlation matrices at the single-subject level. By treating correlation thresholding as a percolation-like probe of connectivity, the approach tracks multiple cluster- and network-level observables and identifies a characteristic...

💬 0 commentsarXiv:2601.03796v1PDF
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Posted in physics.optics · 2026-01-07 · Andrea Rossini, Fabio Marangi, Pietro Bertolotti, Francesco Scotognella, Guglielmo Lanzani, Giuseppe Maria Paterno

Tamm Plasmon Resonance Responsiveness to SARS-CoV-2 Virus-Like Particles

Bioresponsive optical materials that transduce nanoscale biointerface events into measurable spectral signals are of growing interest for sensing and antiviral technologies Here we show that a Tamm plasmon TP device consisting of a SiOTiO distributed Bragg reflector capped with a nanostructured silver layer exhibits a selective and...

💬 0 commentsarXiv:2601.03795v1PDF
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Posted in q-fin.GN · 2026-01-07 · Gabin Taibi, Joerg Osterrieder

An Algorithmic Framework for Systematic Literature Reviews: A Case Study for Financial Narratives

This paper introduces an algorithmic framework for conducting systematic literature reviews (SLRs), designed to improve efficiency, reproducibility, and selection quality assessment in the literature review process. The proposed method integrates Natural Language Processing (NLP) techniques, clustering algorithms, and interpretability...

💬 0 commentsarXiv:2601.03794v1PDF
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Posted in cs.LG · 2026-01-07 · Sethupathy Parameswaran, Suresh Sundaram, Yuan Fang

Prompt Tuning without Labeled Samples for Zero-Shot Node Classification in Text-Attributed Graphs

Node classification is a fundamental problem in information retrieval with many real-world applications, such as community detection in social networks, grouping articles published online and product categorization in e-commerce. Zero-shot node classification in text-attributed graphs (TAGs) presents a significant challenge,...

💬 0 commentsarXiv:2601.03793v1PDF
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Posted in cs.CL · 2026-01-07 · Huynh Trung Kiet, Dao Sy Duy Minh, Nguyen Dinh Ha Duong, Le Hoang Minh Huy, Long Nguyen, Dien Dinh

VietMed-MCQ: A Consistency-Filtered Data Synthesis Framework for Vietnamese Traditional Medicine Evaluation

Large Language Models (LLMs) have demonstrated remarkable proficiency in general medical domains. However, their performance significantly degrades in specialized, culturally specific domains such as Vietnamese Traditional Medicine (VTM), primarily due to the scarcity of high-quality, structured benchmarks. In this paper, we introduce...

💬 0 commentsarXiv:2601.03792v2PDF
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Posted in cs.CL · 2026-01-07 · Xiaoyu Luo, Yiyi Chen, Qiongxiu Li, Johannes Bjerva

Do LLMs Really Memorize Personally Identifiable Information? Revisiting PII Leakage with a Cue-Controlled Memorization Framework

Large Language Models (LLMs) have been reported to "leak" Personally Identifiable Information (PII), with successful PII reconstruction often interpreted as evidence of memorization. We propose a principled revision of memorization evaluation for LLMs, arguing that PII leakage should be evaluated under low lexical cue conditions,...

💬 0 commentsarXiv:2601.03791v1PDF
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Posted in cs.CL · 2026-01-07 · Zhongtao Miao, Kaiyan Zhao, Masaaki Nagata, Yoshimasa Tsuruoka

NeoAMT: Neologism-Aware Agentic Machine Translation with Reinforcement Learning

Neologism-aware machine translation aims to translate source sentences containing neologisms into target languages. This field remains underexplored compared with general machine translation (MT). In this paper, we propose an agentic framework, NeoAMT, for neologism-aware machine translation equipped with a Wiktionary-based search...

💬 0 commentsarXiv:2601.03790v4PDF
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Posted in eess.SP · 2026-01-07 · Jun Jiang, Xiaolong Ruan, Shugong Xu

CSI-MAE: A Masked Autoencoder-based Channel Foundation Model

Self-Supervised Learning (SSL) has emerged as a key technique in machine learning, tackling challenges such as limited labeled data, high annotation costs, and variable wireless channel conditions. It is essential for developing Channel Foundation Models (CFMs), which extract latent features from channel state information (CSI) and...

💬 0 commentsarXiv:2601.03789v1PDF
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Posted in cs.CY · 2026-01-07 · Anamaria Mojica-Hanke, Thomas Goger, Svenja Wölfel, Brian Valerius, Steffen Herbold

Criminal Liability of Generative Artificial Intelligence Providers for User-Generated Child Sexual Abuse Material

The development of more powerful Generative Artificial Intelligence (GenAI) has expanded its capabilities and the variety of outputs. This has introduced significant legal challenges, including gray areas in various legal systems, such as the assessment of criminal liability for those responsible for these models. Therefore, we...

💬 0 commentsarXiv:2601.03788v1PDF
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Posted in physics.comp-ph · 2026-01-07 · Sara Najem, Amer E. Mouawad

Finding Graph Isomorphisms in Heated Spaces in Almost No Time

Determining whether two graphs are structurally identical is a fundamental problem with applications spanning mathematics, computer science, chemistry, and network science. Despite decades of study, graph isomorphism remains a challenging algorithmic task, particularly for highly regular structures. Here we introduce a new algorithmic...

💬 0 commentsarXiv:2601.03787v5PDF
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Posted in math.OA · 2026-01-07 · Yong Jiao, Sijie Luo, Dejian Zhou

Large Deviation Inequalities for Noncommutative Martingales

We establish noncommutative analogs of some well-known large deviation inequalities for noncommutative random variables. Firstly, for the noncommutative independent case, we characterize the uniformly exponential integrability of random variables in terms of large deviation inequalities. Secondly, for noncommutative martingale...

💬 0 commentsarXiv:2604.04935v1PDF
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Posted in cs.CL · 2026-01-07 · Loris Schoenegger, Benjamin Roth

Compact Example-Based Explanations for Language Models

Training data influence estimation methods quantify the contribution of training documents to a model's output, making them a promising source of information for example-based explanations. As humans cannot interpret thousands of documents, only a small subset of the training data can be presented as an explanation. Although the...

💬 0 commentsarXiv:2601.03786v2PDF
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Posted in cs.CL · 2026-01-07 · Dehao Tao, Guoliang Ma, Yongfeng Huang, Minghu Jiang

Membox: Weaving Topic Continuity into Long-Range Memory for LLM Agents

Long-term human-agent dialogues are organized by topic continuity: adjacent turns often develop the same goal, plan, problem, or event, while related activities may recur across distant sessions. Yet many LLM agent memory systems first decompose histories into isolated turns or fixed-size chunks, then compensate through enrichment,...

💬 0 commentsarXiv:2601.03785v3PDF
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Posted in cs.CV · 2026-01-07 · Steven Moonen, Rob Salaets, Kenneth Batstone, Abdellatif Bey-Temsamani, Nick Michiels

A Comparative Study of 3D Model Acquisition Methods for Synthetic Data Generation of Agricultural Products

In the manufacturing industry, computer vision systems based on artificial intelligence (AI) are widely used to reduce costs and increase production. Training these AI models requires a large amount of training data that is costly to acquire and annotate, especially in high-variance, low-volume manufacturing environments. A popular...

💬 0 commentsarXiv:2601.03784v1PDF
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Posted in cs.CL · 2026-01-07 · Jin Wang, Liang Lin, Kaiwen Luo, Weiliu Wang, Yitian Chen, Moayad Aloqaily, Xuehai Tang, Zhenhong Zhou, Kun Wang, Li Sun, Qingsong Wen

HearSay Benchmark: Do Audio LLMs Leak What They Hear?

While Audio Large Language Models (ALLMs) have achieved remarkable progress in understanding and generation, their potential privacy implications remain largely unexplored. This paper takes the first step to investigate whether ALLMs inadvertently leak user privacy solely through acoustic voiceprints and introduces $\textit{HearSay}$,...

💬 0 commentsarXiv:2601.03783v1PDF
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Posted in cs.RO · 2026-01-07 · Wenlong Huang, Yu-Wei Chao, Arsalan Mousavian, Ming-Yu Liu, Dieter Fox, Kaichun Mo, Li Fei-Fei

PointWorld: Scaling 3D World Models for In-The-Wild Robotic Manipulation

Humans anticipate, from a glance and a contemplated action of their bodies, how the 3D world will respond, a capability that is equally vital for robotic manipulation. We introduce PointWorld, a large pre-trained 3D world model that unifies state and action in a shared 3D space as 3D point flows: given one or few RGB-D images and a...

💬 0 commentsarXiv:2601.03782v1PDF
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Posted in cs.CV · 2026-01-07 · Xiaokun Sun, Zezhong Wu, Zewen Ding, Linli Xu

MVP: Enhancing Video Large Language Models via Self-supervised Masked Video Prediction

Reinforcement learning based post-training paradigms for Video Large Language Models (VideoLLMs) have achieved significant success by optimizing for visual-semantic tasks such as captioning or VideoQA. However, while these approaches effectively enhance perception abilities, they primarily target holistic content understanding, often...

💬 0 commentsarXiv:2601.03781v1PDF
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Posted in cs.SE · 2026-01-07 · Md Ahasanuzzaman, Bram Adams, Emad Fallahzadeh, Gustavo A. Oliva, Ahmed E. Hassan

Assessing and Improving the Representativeness of Code Generation Benchmarks Using Knowledge Units (KUs) of Programming Languages -- An Empirical Study

Large Language Models (LLMs) such as GPT-4, Claude and LLaMA have shown impressive performance in code generation, typically evaluated using benchmarks (e.g., HumanEval). However, effective code generation requires models to understand and apply a wide range of language concepts. If the concepts exercised in benchmarks are not...

💬 0 commentsarXiv:2601.03780v1PDF
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Posted in cs.CL · 2026-01-07 · Marco Baroni, Emily Cheng, Iria de-Dios-Flores, Francesca Franzon

Tracing the complexity profiles of different linguistic phenomena through the intrinsic dimension of LLM representations

We explore intrinsic dimension (ID) of LLM representations as a marker of linguistic complexity. Specifically, we test whether ID differences across model layers reflect well-known complexity contrasts established in (psycho)linguistics: coordination vs. subordination, right-branching vs. center-embedding, and unambiguous vs....

💬 0 commentsarXiv:2601.03779v2PDF
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Posted in math.CO · 2026-01-07 · Willem H. Haemers

On perfect matchings, edge-colourings and eigenvalues of cubic graphs

We discuss the question whether the existence of perfect matchings in a cubic graph can be seen from the spectrum of its adjacency matrix. For regular graphs in general and for three edge-disjoint perfect matchings in a cubic graph (that is, an edge colouring with three colors) the answer is known to be negative. In the latter case, a...

💬 0 commentsarXiv:2601.03778v2PDF