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arXiv preprints from January 1, 2026 through September 25, 2026 — 15:02:48 EST

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Posted in cs.CV · 2026-01-07 · Paraskevi Valergaki, Vassilis C. Nicodemou, Iason Oikonomidis, Antonis Argyros, Anastasios Roussos

Combining Facial Videos and Biosignals for Stress Estimation During Driving

Reliable stress recognition is critical in applications such as medical monitoring and safety-critical systems, including real-world driving. While stress is commonly detected using physiological signals such as perinasal perspiration and heart rate, facial activity provides complementary cues that can be captured unobtrusively from...

💬 0 commentsarXiv:2601.04376v3PDF
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Posted in q-bio.QM · 2026-01-07 · Mohsen Nakhaei, Alison Pouch, Silvani Amin, Matthew Daemer, Christian Herz, Natalie Yushkevich, Lourdes Al Ghofaily, Nimesh Desai, Joseph Bavaria, Matthew Jolley, Wensi Wu

Biomechanically Informed Image Registration for Patient-Specific Aortic Valve Strain Analysis

Aortic valve (AV) biomechanics play a critical role in maintaining normal cardiac function. Pathological variations, particularly in bicuspid aortic valves, alter leaflet loading, increase strain, and accelerate disease progression. Accurate patient-specific characterization of valve geometry and deformation is therefore essential for...

💬 0 commentsarXiv:2601.04375v2PDF
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Posted in math.GR · 2026-01-07 · Adrien DeLazzer Meunier

Arbitrary classes in >2-degree cohomology of a finite group with arbitrary coefficients may be trivialized in a finite extension

The purpose of this note is to provide exposition for a proof of the statement in the title. This idea, that arbitrary cohomology classes (of high enough degree) of a finite group $G$ can be trivialized in a finite group extension, has been known to experts for some time.

💬 0 commentsarXiv:2601.04374v1PDF
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Posted in cs.CL · 2026-01-07 · Akriti Dhasmana, Aarohi Srivastava, David Chiang

Dialect Matters: Cross-Lingual ASR Transfer for Low-Resource Indic Language Varieties

We conduct an empirical study of cross-lingual transfer using spontaneous, noisy, and code-mixed speech across a wide range of Indic dialects and language varieties. Our results indicate that although ASR performance is generally improved with reduced phylogenetic distance between languages, this factor alone does not fully explain...

💬 0 commentsarXiv:2601.04373v2PDF
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Posted in quant-ph · 2026-01-07 · Nikolaos Cheimarios

Solving nonlinear PDEs with Quantum Neural Networks: A variational approach to the Bratu Equation

We present a variational quantum algorithm (VQA) to solve the nonlinear one-dimensional Bratu equation. By formulating the boundary value problem within a variational framework and encoding the solution in a parameterized quantum neural network (QNN), the problem reduces to an optimization task over quantum circuit parameters. The...

💬 0 commentsarXiv:2601.04372v2PDF
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Posted in math.PR · 2026-01-07 · Alexander Gnedin

Optimal Stopping for the Uniform Distribution

Many discrete-time optimal stopping problems are known to have more tractable limit forms based on a planar Poisson process. Using this tool we find a solution to the optimal stopping problem for i.i.d. sequence of $n$ discrete uniform random variables, in the asymptotic regime where $n$ and the range of distribution are of the same...

💬 0 commentsarXiv:2601.04371v1PDF
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Posted in physics.optics · 2026-01-07 · Xinge Yang, Zhaocheng Liu, Zhaoyu Nie, Qingyuan Fan, Zhimin Shi, Jim Bonar, Wolfgang Heidrich

End-to-end differentiable design of geometric waveguide displays

Geometric waveguides are a promising architecture for optical see-through augmented reality displays, but their performance is severely bottlenecked by the difficulty of jointly optimizing non-sequential light transport and polarization-dependent multilayer thin-film coatings. Here we present the first end-to-end differentiable...

💬 0 commentsarXiv:2601.04370v1PDF
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Posted in physics.soc-ph · 2026-01-07 · Owen Terry

Generalization to Political Beliefs from Fine-Tuning on Sports Team Preferences

Fine-tuned LLMs often exhibit unexpected behavior as a result of generalizing beyond the data they're shown. We present results in which an LLM fine-tuned to prefer either coastal sports teams or Southern sports teams adopt political beliefs that diverge significantly from those of the base model. While we hypothesized that the...

💬 0 commentsarXiv:2601.04369v3PDF
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Posted in cs.SI · 2026-01-07 · Heba Zahran, M. Omair Shafiq

Graph Integrated Transformers for Community Detection in Social Networks

Community detection is crucial for applications like targeted marketing and recommendation systems. Traditional methods rely on network structure, and embedding-based models integrate semantic information. However, there is a challenge when a model leverages local and global information from complex structures like social networks....

💬 0 commentsarXiv:2601.04367v1PDF
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Posted in cs.LG · 2026-01-07 · Selcuk Koyuncu, Ronak Nouri, Stephen Providence

Machine Learning Model for Sparse PCM Completion

In this paper, we propose a machine learning model for sparse pairwise comparison matrices (PCMs), combining classical PCM approaches with graph-based learning techniques. Numerical results are provided to demonstrate the effectiveness and scalability of the proposed method.

💬 0 commentsarXiv:2601.04366v1PDF
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Posted in cs.LG · 2026-01-07 · Anton Roupassov-Ruiz, Yiyang Zuo

Survival Dynamics of Neural and Programmatic Policies in Evolutionary Reinforcement Learning

In evolutionary reinforcement learning tasks (ERL), agent policies are often encoded as small artificial neural networks (NERL). Such representations lack explicit modular structure, limiting behavioral interpretation. We investigate whether programmatic policies (PERL), implemented as soft, differentiable decision lists (SDDL), can...

💬 0 commentsarXiv:2601.04365v2PDF
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Posted in quant-ph · 2026-01-07 · Yinan Chen, Sara Murciano, Pablo Sala, Jason Alicea

Quantum sensing with critical systems: impact of symmetry, imperfections, and decoherence

Entangled many-body states enable high-precision quantum sensing beyond the standard quantum limit. We develop interferometric sensing protocols based on quantum critical wavefunctions and compare their performance with Greenberger-Horne-Zeilinger (GHZ) and spin-squeezed states. Building on the idea of symmetries as a metrological...

💬 0 commentsarXiv:2601.04364v2PDF
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Posted in cs.CL · 2026-01-06 · Guangxin Wu, Hao Zhang, Zhang Zhibin, Jiafeng Guo, Xueqi Cheng

Iterative Structured Pruning for Large Language Models with Multi-Domain Calibration

Large Language Models (LLMs) have achieved remarkable success across a wide spectrum of natural language processing tasks. However, their ever-growing scale introduces significant barriers to real-world deployment, including substantial computational overhead, memory footprint, and inference latency. While model pruning presents a...

💬 0 commentsarXiv:2601.02674v1PDF
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Posted in math.DG · 2026-01-06 · Shuliang Bai, Shuang Liu, Xin Lai

The weighted Forman and Lin-Lu-Yau Ricci flow on graphs

In this paper, we propose a type of Ricci flow on graphs where the probability distribution for the Lin-Lu-Yau curvature remains constant over time, and also study the related Forman curvature flow. These two curvature flows coincide on trees. We first prove the existence and uniqueness of solutions for both curvature flows in general...

💬 0 commentsarXiv:2601.02673v1PDF
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Posted in cond-mat.mes-hall · 2026-01-06 · Kang Yang, Fei Song, Piet W. Brouwer

Stable boundary modes for fragile topology from spontaneous PT-symmetry breaking

Two-dimensional topological insulators protected by nonlocal symmetries or with fragile topology usually do not admit robust in-gap edge modes due to the incompatibility between the symmetry and the boundary. Here, we show that in a parity-time (PT) symmetric system robust in-gap topological edge modes can be stably induced by...

💬 0 commentsarXiv:2601.02672v1PDF
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Posted in cs.CR · 2026-01-06 · Scott Thornton

TRYLOCK: Defense-in-Depth Against LLM Jailbreaks via Layered Preference and Representation Engineering

Large language models remain vulnerable to jailbreak attacks, and single-layer defenses often trade security for usability. We present TRYLOCK, the first defense-in-depth architecture that combines four heterogeneous mechanisms across the inference stack: weight-level safety alignment via DPO, activation-level control via...

💬 0 commentsarXiv:2601.03300v1PDF
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Posted in cs.CL · 2026-01-06 · Ahmed Ahmed, A. Feder Cooper, Sanmi Koyejo, Percy Liang

Extracting books from production language models

Many unresolved legal questions over LLMs and copyright center on memorization: whether specific training data have been encoded in the model's weights during training, and whether those memorized data can be extracted in the model's outputs. While many believe that LLMs do not memorize much of their training data, recent work shows...

💬 0 commentsarXiv:2601.02671v1PDF
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Posted in cs.CL · 2026-01-06 · Devang Kulshreshtha, Hang Su, Haibo Jin, Chinmay Hegde, Haohan Wang

Break Me If You Can: Self-Jailbreaking of Aligned LLMs via Lexical Insertion Prompting

We introduce \emph{self-jailbreaking}, a threat model in which an aligned LLM guides its own compromise. Unlike most jailbreak techniques, which often rely on handcrafted prompts or separate attacker models, self-jailbreaking requires no external red-team LLM: the target model's own internal knowledge suffices. We operationalize this...

💬 0 commentsarXiv:2601.02670v2PDF
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Posted in cs.CL · 2026-01-06 · Hongzhan Lin, Zixin Chen, Zhiqi Shen, Ziyang Luo, Zhen Ye, Jing Ma, Tat-Seng Chua, Guandong Xu

Towards Comprehensive Stage-wise Benchmarking of Large Language Models in Fact-Checking

Large Language Models (LLMs) are increasingly deployed in real-world fact-checking systems, yet existing evaluations focus predominantly on claim verification and overlook the broader fact-checking workflow, including claim extraction and evidence retrieval. This narrow focus prevents current benchmarks from revealing systematic...

💬 0 commentsarXiv:2601.02669v1PDF
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Posted in cs.LG · 2026-01-06 · Xiaoyan Sun, Qingyu Meng, Yalu Wen

MAFS: Multi-head Attention Feature Selection for High-Dimensional Data via Deep Fusion of Filter Methods

Feature selection is essential for high-dimensional biomedical data, enabling stronger predictive performance, reduced computational cost, and improved interpretability in precision medicine applications. Existing approaches face notable challenges. Filter methods are highly scalable but cannot capture complex relationships or...

💬 0 commentsarXiv:2601.02668v1PDF
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Posted in physics.optics · 2026-01-06 · Wenqian Xu, Dangli Gao, Xiangyu Zhang, Wenna Gao, Dingjun Jia, Yuhua Wang

Modulating anomalous thermal quenching behavior of stimulation luminescence via high-orbit electronic satellite-stabilized Trap state in germanate-based phosphors for 5D optical data storage

Persistent luminescence (PersL) materials, widely used in emergency lighting and information storage, are primarily employed at room temperature. However, their luminescent performance deteriorates sharply at high temperatures. Herein, a serials of Mg2GeO4:Ti4+,Ln3+ (Ln = Tb, Eu) phosphors demonstrated anomalous thermal quenching...

💬 0 commentsarXiv:2601.02667v1PDF
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Posted in cs.AI · 2026-01-06 · Hadi Partovi Aria, Zhe Xu

Inferring Causal Graph Temporal Logic Formulas to Expedite Reinforcement Learning in Temporally Extended Tasks

Decision-making tasks often unfold on graphs with spatial-temporal dynamics. Black-box reinforcement learning often overlooks how local changes spread through network structure, limiting sample efficiency and interpretability. We present GTL-CIRL, a closed-loop framework that simultaneously learns policies and mines Causal Graph...

💬 0 commentsarXiv:2601.02666v1PDF
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Posted in astro-ph.EP · 2026-01-06 · Mu-Tian Wang, Fei Dai, Hui-Gen Liu, Kento Masuda, Andrew W. Howard, Samuel Halverson, Howard Isaacson, Elina Y. Zhang, Max Goldberg, Huan-Yu Teng, Ryan A. Rubenzahl, Benjamin Fulton, Erik A. Petigura, Steven Giacalone, Luke Handley, David W. Latham, Allyson Bieryla, Ashley Baker, Jerry Edelstein, Steven R. Gibson, Kodi Rider, Arpita Roy, Chris Smith, Josh Walawender, David Rapetti, Jon M. Jenkins, Joshua N. Winn

TOI-4495: A Pair of Aligned, Near-Resonant Sub-Neptunes that Likely Experienced Overstable Migration

We report the discovery of a sub-Neptune and a Neptune-like planet ($R_b = 2.48^{+0.14}_{-0.10}\,R_\oplus$, $R_c = 4.03^{+0.23}_{-0.15}\,R_\oplus$) orbiting the F-type star TOI-4495. The planets have orbital periods of 2.567 days and 5.185 days, lying close to a 2:1 mean-motion resonance (MMR). Our photodynamical analysis of the TESS...

💬 0 commentsarXiv:2601.02665v1PDF
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Posted in math.NT · 2026-01-06 · Graeme Bates, Ryan Jesubalan, Seewoo Lee, Jane Lu, Hyewon Shim

Powerful Fibonacci polynomials over finite fields

Bugeaud, Mignotte, and Siksek proved that the only perfect powers in Fibonacci sequence are 0, 1, 8, and 144. In this paper, we study the polynomial analogue of the problem. Especially, we give a complete characterization of the Fibonacci polynomials that are perfect powers or powerful over finite fields, where there are infinitely...

💬 0 commentsarXiv:2601.02664v1PDF
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Posted in cs.CL · 2026-01-06 · Subha Ghoshal, Ali Al-Bustami

When Do Tools and Planning Help Large Language Models Think? A Cost- and Latency-Aware Benchmark

Modern large language models (LLMs) increasingly rely on inference-time planning and external tools to improve reasoning. We benchmark this behavior on two real-world settings: event-centric question answering over graph-structured knowledge (Event-QA) and persuasive response generation in Reddit ChangeMyView (CMV). Using LangChain...

💬 0 commentsarXiv:2601.02663v2PDF