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Large language models (LLMs) are now used in multi-turn workflows, but we still lack a clear way to measure when iteration helps and when it hurts. We present an evaluation framework for iterative refinement that spans ideation, code, and…

Artificial Intelligence · Computer Science 2025-09-16 Shashidhar Reddy Javaji , Bhavul Gauri , Zining Zhu

Large language models (LLMs) are increasingly deployed on complex reasoning tasks, yet little is known about their ability to internally evaluate problem difficulty, which is an essential capability for adaptive reasoning and efficient…

Computation and Language · Computer Science 2025-10-14 Sunbowen Lee , Qingyu Yin , Chak Tou Leong , Jialiang Zhang , Yicheng Gong , Shiwen Ni , Min Yang , Xiaoyu Shen

Embedding models are crucial for various natural language processing tasks but can be limited by factors such as limited vocabulary, lack of context, and grammatical errors. This paper proposes a novel approach to improve embedding…

Computation and Language · Computer Science 2024-04-19 Nicholas Harris , Anand Butani , Syed Hashmy

This study investigates how Large Language Models (LLMs) leverage source and reference data in machine translation evaluation task, aiming to better understand the mechanisms behind their remarkable performance in this task. We design the…

Computation and Language · Computer Science 2024-06-07 Xu Huang , Zhirui Zhang , Xiang Geng , Yichao Du , Jiajun Chen , Shujian Huang

Large Language Models (LLMs) have been achieving competent performance on a wide range of downstream tasks, yet existing work shows that inference on structured data is challenging for LLMs. This is because LLMs need to either understand…

Computation and Language · Computer Science 2024-07-04 Younghun Lee , Sungchul Kim , Ryan A. Rossi , Tong Yu , Xiang Chen

Large language models (LLMs) demonstrate strong performance as text embedding models when finetuned with supervised contrastive training. However, their large size balloons inference time and memory requirements. In this paper, we show that…

Computation and Language · Computer Science 2024-10-21 Thennal D K , Tim Fischer , Chris Biemann

Continual learning (CL) in large language models (LLMs) is an evolving domain that focuses on developing efficient and sustainable training strategies to adapt models to emerging knowledge and achieve robustness in dynamic environments. Our…

Computation and Language · Computer Science 2025-02-13 Çağatay Yıldız , Nishaanth Kanna Ravichandran , Nitin Sharma , Matthias Bethge , Beyza Ermis

Prompt optimization algorithms for Large Language Models (LLMs) excel in multi-step reasoning but still lack effective uncertainty estimation. This paper introduces a benchmark dataset to evaluate uncertainty metrics, focusing on Answer,…

Machine Learning · Computer Science 2024-12-30 Pei-Fu Guo , Yun-Da Tsai , Shou-De Lin

Large Language Models (LLMs) have demonstrated remarkable performance across various Natural Language Processing (NLP) tasks, largely due to their generalisability and ability to perform tasks without additional training. However, their…

Computation and Language · Computer Science 2025-08-15 Kurt Micallef , Claudia Borg

The interactive nature of Large Language Models (LLMs) theoretically allows models to refine and improve their answers, yet systematic analysis of the multi-turn behavior of LLMs remains limited. In this paper, we propose the FlipFlop…

Computation and Language · Computer Science 2024-02-22 Philippe Laban , Lidiya Murakhovs'ka , Caiming Xiong , Chien-Sheng Wu

Large language models (LLMs) are rapidly changing how researchers in materials science and chemistry discover, organize, and act on scientific knowledge. This paper analyzes a broad set of community-developed LLM applications in an effort…

Materials Science · Physics 2026-05-06 Aritra Roy , Kevin Shen , Andrew MacBride , Awwal Oladipupo , Mudassra Taskeen , Wojtek Treyde , Ruaa A. E. A. Abakar , Ahmad D. Abbas , Elsayed Abdelfatah , Abbas A. Abdullahi , Seham S. Abyah , Chahd Rahyl Adjmi , Fariha Agbere , Savyasanchi Aggarwal , Muhammad Ahmed , Tasnim Ahmed , Motasem Ajlouni , Mattias Akke , Hussein AlAdwan , Anwaar S. Alazani , Zahra A. Alharbi , Wajd A. Aljulyhi , Mohammed A. AlKubaish , Fatima A. Almahri , Sayed A. Almohri , David Obeh Alobo , Mohammed Alouni , Azizah S. Alqahtani , Omar Alsaigh , Husain Althagafi , Md. Aqib Aman , Lena Ara , Arifin , Ignacio Arretche , Abdulaziz Ashy , Syeda A. Asim , Amro Aswad , Adeel Atta , Sören Auer , Abdullah al Azmi , Toheeb Balogun , Suvo Banik , Viktoriia Baibakova , Shakira A. Baksh , Neus G. Bastús , Christina J. Bayard , Adib Bazgir , Louis Beal , Lejla Biberić , Wahid Billah , Ankita Biswas , Joshua Bocarsly , Montassar T. Bouzidi , Esma B. Boydas , Youssef Briki , Cailin Buchanan , Mauricio Cafiero , Damien Caliste , Yi Cao , Rafael E. Castañeda , Sruthy K. Chandy , Benjamin Charmes , Shayantan Chaudhuri , Yiming Chen , Alexander Chen , Jieneng Chen , Min-Hsueh Chiu , Defne Circi , Cinthya H. Contreras , Yoann Cure , Nathan Daelman , Roshini Dantuluri , Thomas Davy , William Dawson , Leonid Didukh , Rui Ding , Aminu R. Doguwa , Claudia Draxl , Sathya Edamadaka , Oulaya Elargab , Christina Ertural , Matthew L. Evans , Edvin Fako , Hossam Farag , Nur A. Fathurrahman , Merve Fedai , Rodrigo P. Ferreira , Giuseppe Fisicaro , Thomas Frank , Sasi K. Gaddipati , Abhijeet Gangan , Jennifer Garland , James Garrick , Luigi Genovese , Maryam Ghadrdran , Sandip Giri , Maxime Goulet , Jeremy Goumaz , Sara U. Gracia , Jacob Graham , Gabriel Graves , Kevin P. Greenman , Tim Greitemeier , Cameron Gruich , Sophie Gu , Salomé Guilbert , Hans Gundlach , Muriel F. Gusta , Mourad El Haddaoui , Alexander J. Haibel , Anubhab Haldar , Vehaan Handa , Hassan Harb , Nathan D. Harms , Abdullah Al Hasan , Abir Hassan , Qiyao He , Andrés Henao-Aristizábal , Bram Hoex , Sungil Hong , Alexander J. Horvath , Md. Shaib Hossain , Yanqi Huang , Yuqing Huang , Kostiantyn Hubaiev , Donald Intal , Katherine Inzani , Kevin Ishimwe , Tugba Isik , Gopal R. Iyer , Katharina Jager , Jan Janssen , Hyewon Jeong , Michael Jirasek , Tyler R. Josephson , Nisarg Joshi , Yassir Ben Kacem , Remya A. M. Kalapurakal , Rakesh R. Kamath , Sugan Kanagasenthinathan , Dohun Kang , Jason Kantorow , Kübra Kaygisiz , Murat Keceli , Farhana Keya , Muhammad U. Khan , Sartaaj Takrim Khan , Hyungjun Kim , Alexander Kister , Sascha Klawohn , Collin Kovacs , Pranav Krishnan , Maurycy Kryzanowski , Ritesh Kumar , Suman Kumari , Gourav Kumbhojkar , Ryo Kuroki , Shashank Kushwaha , Magdalena Lederbauer , Jaejun Lee , Seunghan Lee , Jeonghwan Lee , Bingcan Li , Calvin Li , Zhanzhao Li , Shi Li , Shicheng Li , Chengyan Liu , Hao Liu , Tung Yan Liu , Yutong Liu , Lucia Vina-Lopez , Chayaphol Lortaraparsert , Andre K. Y. Low , Saffron Luxford , Carlos Madariaga , Rishikesh Magar , Piyush R. Maharana , Rahul Mallela , Shoaib Mahmud , Natesan Mani , Umair Mansoor , Omar B. Mansour , Cassandra Masschelein , Kinga O. Mastej , Ankit Mathanker , Jeffrey Meng , Omran Mezghani , Yidong Ming , Rishav Mitra , Michail Mitsakis , Matthew Miyagishima , Ravikumar Mohan , Naveen R. Mohanraj , Trupti Mohanty , Bernadette Mohr , Francisco A. Molina-Bakhos , Jeremy Monat , Seyed Mohamad Moosavi , Shayan Mousavi , Arman Moussavi , Rubel Mozumber , Muhammad J. Mufti , Diyana Muhammed , Ram Munde , Mrigi Munjal , José A. Márquez , Shankha Nag , Giacomo Nagaro , Juno Nam , Jose M. Napoles-Duarte , Ry Nduma , Xuan-Vu Nguyen , Ebrahim Norouzi , Oluwatosin Ohiro , Ryotaro Okabe , Viejay Ordillo , Shuichiro Ozawa , Sebastian Pagel , Daniel Palmer , Angela Pan , Akash Pandey , Vivek Pandit , Prakul Pandit , Chiku Parida , Jaehee Park , Hyunsoo Park , Hemangi Patel , Shakul Pathak , Taradutt Pattnaik , Elena Patyukova , Noah Paulson , Deepak S. Pendyala , Erick S. Pepek , Martin H. Petersen , Thang D. Pham , Aniket Phutane , Sabila K. Pinky , Étienne Polack , Alison Polasik , Maria Politi , Tim Pongratz , Akhila Ponugoti , Fabio Priante , Thomas Michael Pruyn , Sai S. Puppala , Mohammad A. Qazi , Heike Quosdorf , Gollam Rabby , Mohammad J. Raei , Md. Habibur Rahman , A. B. M. Ashikur Rahman , Subhashree Rajasekaran , Tawfiqur Rakib , Hemanth N. Ramesh , Vrushali Ranadive , Karnamohit Ranka , Bojana Rankovic , Adwaith Ravichandran , Ilija Rašović , Sergei Rigin , Tatem Rios , Varun Rishi , Victor Naden Robinson , Lucas S. Rodrigues , Oswaldo Rodriguez , Mahule Roy , Diptendu Roy , Subhas Roy , Arokia Anto Royan M , Joseph F. Rudzinski , Muhammad Sabih , Subramanyam Sahoo , Srusti Bheem Sain , Thahira Saliya , Vignesh Sampath , Jesus Diaz Sanchez , Arthur S. S. Santos , Muliady Satria , Hasan M. Sayeed , Jörg Schaarschmidt , Philippe Schwaller , Nofit Segal , Abhishec Senthilvel , Sherjeel Shabih , Devanshu Shah , Faezeh Shahmoradi , Samiha Sharlin , Killian Sheriff , Qiuyu Shi , Abubakar D. Shuaibu , Ayesha Siddiqua , M. A. Shadab Siddiqui , Darian Smalley , Benjamin Smith , Taylor D. Sparks , Daniel T. Speckhard , Elena Stojanovska , Akshay Subramanian , Jiwon Sun , Yunkai Sun , Abdul W. Syed , Souvik Ta , Izumi Takahara , Kelly Tallau , Guannan Tang , Ans B. Tariq , Sui X. Tay , Nurlybek Temirbay , Surya P. Tiwari , Febin Tom , Tajah Trapier , Kasidet J. Trerayapiwat , Samanvya Tripathi , Hawra H. Tuhaifa , Mustafa Unal , Mohammad Uzair , Vallabh Vasudevan , Estefania Vazquez , Victor Venturi , Rahul Verma , Ashwini Verma , Alvaro Vazquez-Mayagoitia , Nicholas Wagner , Araki Wakiuchi , Hao Wan , Liaoyaqi Wang , Wolfgang Wenzel , Alexander Wieczorek , Sze H. Wong , Yue Wu , Tong Xie , Andrew Yi , Ziqi Yin , Jodie A. Yuwono , Nahed A. Zaid , Mohd Zaki , Shehtab Zaman , Maimuna U. Zarewa , Mahtab Zehtab , Baosen Zhang , Wenyu Zhang , Melody Zhang , Yangfan Zhang , Yuwen Zhang , Runze Zhang , Zongmin Zhang , Huanhuan Zhao , Yuanlong Bill Zheng , Ramzi Zidani , Xue Zong , Ian Foster , Ben Blaiszik

Large Language Models (LLMs) show promise for automated grading, but their outputs can be unreliable. Rather than improving grading accuracy directly, we address a complementary problem: \textit{predicting when an LLM grader is likely to be…

Computation and Language · Computer Science 2026-04-01 Robinson Ferrer , Damla Turgut , Zhongzhou Chen , Shashank Sonkar

Large language models (LLMs) are increasingly considered as tutoring aids in science education. Yet their readiness for unsupervised use in undergraduate instruction remains uncertain, as reliable teaching requires more than fluent recall:…

Physics Education · Physics 2025-09-01 Anna Geißler , Luca-Sophie Bien , Friedrich Schöppler , Tobias Hertel

As large language models (LLMs) are increasingly deployed in high-stakes and operational settings, evaluation strategies based solely on aggregate accuracy are often insucient to characterize system reliability. This study proposes a…

Artificial Intelligence · Computer Science 2026-05-06 Hikmat Karimov , Rahid Zahid Alekberli

With the growing adoption of Large Language Models (LLMs) for open-ended tasks, accurately assessing epistemic uncertainty, which reflects a model's lack of knowledge, has become crucial to ensuring reliable outcomes. However, quantifying…

Computation and Language · Computer Science 2025-10-10 Xinyi Liu , Weiguang Wang , Hangfeng He

Modern large language models (LLMs) excel at tasks that require storing and retrieving knowledge, such as factual recall and question answering. Transformers are central to this capability because they can encode information during training…

Machine Learning · Statistics 2026-03-18 Nuri Mert Vural , Alberto Bietti , Mahdi Soltanolkotabi , Denny Wu

Context: In the fast-paced evolution of software development, Large Language Models (LLMs) have become indispensable tools for tasks such as code generation, completion, analysis, and bug fixing. Ensuring the robustness of these models…

Software Engineering · Computer Science 2026-02-13 Yang Liu , Armstrong Foundjem , Xingfang Wu , Heng Li , Foutse Khomh

Large Language Models have taken the cognitive science world by storm. It is perhaps timely now to take stock of the various research paradigms that have been used to make scientific inferences about ``cognition" in these models or about…

Artificial Intelligence · Computer Science 2024-06-17 Desmond C. Ong

Large Language Models are traditionally finetuned on large instruction datasets. However recent studies suggest that small, high-quality datasets can suffice for general purpose instruction following. This lack of consensus surrounding…

Machine Learning · Computer Science 2023-12-29 Aditi Jha , Sam Havens , Jeremy Dohmann , Alex Trott , Jacob Portes