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Multimodal Large Language Models (MLLMs) have shown remarkable performance in high-resource languages. However, their effectiveness diminishes significantly in the contexts of low-resource languages. Current multilingual enhancement methods…

计算机视觉与模式识别 · 计算机科学 2025-12-10 Yufei Gao , Jiaying Fei , Nuo Chen , Ruirui Chen , Guohang Yan , Yunshi Lan , Botian Shi

Numerous recent studies have shown that Large Language Models (LLMs) are biased towards a Western and Anglo-centric worldview, which compromises their usefulness in non-Western cultural settings. However, "culture" is a complex,…

计算机与社会 · 计算机科学 2025-02-17 Sougata Saha , Saurabh Kumar Pandey , Monojit Choudhury

We introduce VULCA-Bench, a multicultural art-critique benchmark for evaluating Vision-Language Models' (VLMs) cultural understanding beyond surface-level visual perception. Existing VLM benchmarks predominantly measure L1-L2 capabilities…

计算与语言 · 计算机科学 2026-02-26 Haorui Yu , Diji Yang , Hang He , Fengrui Zhang , Qiufeng Yi

The ability to organically reason over and with both text and images is a pillar of human intelligence, yet the ability of Multimodal Large Language Models (MLLMs) to perform such multimodal reasoning remains under-explored. Existing…

计算机视觉与模式识别 · 计算机科学 2025-01-10 Yunzhuo Hao , Jiawei Gu , Huichen Will Wang , Linjie Li , Zhengyuan Yang , Lijuan Wang , Yu Cheng

Large language models (LLMs) provide detailed and impressive responses to queries in English. However, are they really consistent at responding to the same query in other languages? The popular way of evaluating for multilingual performance…

计算与语言 · 计算机科学 2025-05-29 Ashim Gupta , Maitrey Mehta , Zhichao Xu , Vivek Srikumar

Large language models (LLMs) are increasingly deployed in culturally sensitive real-world tasks. However, existing cultural alignment approaches fail to align LLMs' broad cultural values with the specific goals of downstream tasks and…

计算与语言 · 计算机科学 2026-02-27 Binchi Zhang , Xujiang Zhao , Jundong Li , Haifeng Chen , Zhengzhang Chen

Large language models (LLMs) have demonstrated substantial commonsense understanding through numerous benchmark evaluations. However, their understanding of cultural commonsense remains largely unexamined. In this paper, we conduct a…

计算与语言 · 计算机科学 2024-05-09 Siqi Shen , Lajanugen Logeswaran , Moontae Lee , Honglak Lee , Soujanya Poria , Rada Mihalcea

Although Large Language Models (LLMs) demonstrate strong capabilities across various tasks, they exhibit significant performance discrepancies across languages. While prompting LLMs in English typically yields the highest general…

计算与语言 · 计算机科学 2026-05-26 Andrew Ivan Soegeng , Patrick Sutanto , Tan Sang Nguyen

The rapid integration of Large Vision-Language Models (LVLMs) into critical domains necessitates comprehensive moral evaluation to ensure their alignment with human values. While extensive research has addressed moral evaluation in LLMs,…

计算机视觉与模式识别 · 计算机科学 2026-04-10 Bei Yan , Jie Zhang , Zhiyuan Chen , Shiguang Shan , Xilin Chen

Multimodal Large Language Models (MLLMs) mimic human perception and reasoning system by integrating powerful Large Language Models (LLMs) with various modality encoders (e.g., vision, audio), positioning LLMs as the "brain" and various…

计算机视觉与模式识别 · 计算机科学 2024-08-29 Jiaxing Huang , Jingyi Zhang

Ensuring that Large Language Models (LLMs) align with the diverse and evolving human values across different regions and cultures remains a critical challenge in AI ethics. Current alignment approaches often yield superficial conformity…

人工智能 · 计算机科学 2025-11-04 Jiahao Wang , Songkai Xue , Jinghui Li , Xiaozhen Wang

Despite the significant improvements achieved by large language models (LLMs) in English reasoning tasks, these models continue to struggle with multilingual reasoning. Recent studies leverage a full-parameter and two-stage training…

计算与语言 · 计算机科学 2025-01-08 Yuchun Fan , Yongyu Mu , Yilin Wang , Lei Huang , Junhao Ruan , Bei Li , Tong Xiao , Shujian Huang , Xiaocheng Feng , Jingbo Zhu

Although mathematics is often considered culturally neutral, the way mathematical problems are presented can carry implicit cultural context. Existing benchmarks like GSM8K are predominantly rooted in Western norms, including names,…

计算与语言 · 计算机科学 2025-11-03 Aditya Tomar , Nihar Ranjan Sahoo , Ashish Mittal , Rudra Murthy , Pushpak Bhattacharyya

Are AI systems truly representing human values, or merely averaging across them? Our study suggests a concerning reality: Large Language Models (LLMs) fail to represent diverse cultural moral frameworks despite their linguistic…

计算与语言 · 计算机科学 2025-08-01 Simon Münker

Since the release of ChatGPT, the field of Natural Language Processing has experienced rapid advancements, particularly in Large Language Models (LLMs) and their multimodal counterparts, Large Multimodal Models (LMMs). Despite their…

计算与语言 · 计算机科学 2024-08-27 Florian Schneider , Sunayana Sitaram

Large Language Models (LLMs) demonstrate impressive general knowledge and reasoning abilities, yet their evaluation has predominantly focused on global or anglocentric subjects, often neglecting low-resource languages and culturally…

Multimodal Large Language Models (MLLMs) have demonstrated significant advances in visual understanding tasks. However, their capacity to comprehend human-centric scenes has rarely been explored, primarily due to the absence of…

To date, there exist almost no culturally-specific evaluation benchmarks for large language models (LLMs) that cover a large number of languages and cultures. In this paper, we present Global PIQA, a participatory commonsense reasoning…

计算与语言 · 计算机科学 2025-10-29 Tyler A. Chang , Catherine Arnett , Abdelrahman Eldesokey , Abdelrahman Sadallah , Abeer Kashar , Abolade Daud , Abosede Grace Olanihun , Adamu Labaran Mohammed , Adeyemi Praise , Adhikarinayum Meerajita Sharma , Aditi Gupta , Afitab Iyigun , Afonso Simplício , Ahmed Essouaied , Aicha Chorana , Akhil Eppa , Akintunde Oladipo , Akshay Ramesh , Aleksei Dorkin , Alfred Malengo Kondoro , Alham Fikri Aji , Ali Eren Çetintaş , Allan Hanbury , Alou Dembele , Alp Niksarli , Álvaro Arroyo , Amin Bajand , Amol Khanna , Ana Chkhaidze , Ana Condez , Andiswa Mkhonto , Andrew Hoblitzell , Andrew Tran , Angelos Poulis , Anirban Majumder , Anna Vacalopoulou , Annette Kuuipolani Kanahele Wong , Annika Simonsen , Anton Kovalev , Ashvanth. S , Ayodeji Joseph Lana , Barkin Kinay , Bashar Alhafni , Benedict Cibalinda Busole , Bernard Ghanem , Bharti Nathani , Biljana Stojanovska Đurić , Bola Agbonile , Bragi Bergsson , Bruce Torres Fischer , Burak Tutar , Burcu Alakuş Çınar , Cade J. Kanoniakapueo Kane , Can Udomcharoenchaikit , Catherine Arnett , Chadi Helwe , Chaithra Reddy Nerella , Chen Cecilia Liu , Chiamaka Glory Nwokolo , Cristina España-Bonet , Cynthia Amol , DaeYeop Lee , Dana Arad , Daniil Dzenhaliou , Daria Pugacheva , Dasol Choi , Daud Abolade , David Liu , David Semedo , Deborah Popoola , Deividas Mataciunas , Delphine Nyaboke , Dhyuthy Krishna Kumar , Diogo Glória-Silva , Diogo Tavares , Divyanshu Goyal , DongGeon Lee , Ebele Nwamaka Anajemba , Egonu Ngozi Grace , Elena Mickel , Elena Tutubalina , Elias Herranen , Emile Anand , Emmanuel Habumuremyi , Emuobonuvie Maria Ajiboye , Eryawan Presma Yulianrifat , Esther Adenuga , Ewa Rudnicka , Faith Olabisi Itiola , Faran Taimoor Butt , Fathima Thekkekara , Fatima Haouari , Filbert Aurelian Tjiaranata , Firas Laakom , Francesca Grasso , Francesco Orabona , Francesco Periti , Gbenga Kayode Solomon , Gia Nghia Ngo , Gloria Udhehdhe-oze , Gonçalo Martins , Gopi Naga Sai Ram Challagolla , Guijin Son , Gulnaz Abdykadyrova , Hafsteinn Einarsson , Hai Hu , Hamidreza Saffari , Hamza Zaidi , Haopeng Zhang , Harethah Abu Shairah , Harry Vuong , Hele-Andra Kuulmets , Houda Bouamor , Hwanjo Yu , Iben Nyholm Debess , İbrahim Ethem Deveci , Ikhlasul Akmal Hanif , Ikhyun Cho , Inês Calvo , Inês Vieira , Isaac Manzi , Ismail Daud , Itay Itzhak , Iuliia , Alekseenko , Ivan Belashkin , Ivan Spada , Ivan Zhelyazkov , Jacob Brinton , Jafar Isbarov , Jaka Čibej , Jan Čuhel , Jan Kocoń , Jauza Akbar Krito , Jebish Purbey , Jennifer Mickel , Jennifer Za , Jenny Kunz , Jihae Jeong , Jimena Tena Dávalos , Jinu Lee , João Magalhães , John Yi , Jongin Kim , Joseph Chataignon , Joseph Marvin Imperial , Jubeerathan Thevakumar , Judith Land , Junchen Jiang , Jungwhan Kim , Kairit Sirts , Kamesh R , Kamesh V , Kanda Patrick Tshinu , Kätriin Kukk , Kaustubh Ponkshe , Kavsar Huseynova , Ke He , Kelly Buchanan , Kengatharaiyer Sarveswaran , Kerem Zaman , Khalil Mrini , Kian Kyars , Krister Kruusmaa , Kusum Chouhan , Lainitha Krishnakumar , Laura Castro Sánchez , Laura Porrino Moscoso , Leshem Choshen , Levent Sencan , Lilja Øvrelid , Lisa Alazraki , Lovina Ehimen-Ugbede , Luheerathan Thevakumar , Luxshan Thavarasa , Mahnoor Malik , Mamadou K. Keita , Mansi Jangid , Marco De Santis , Marcos García , Marek Suppa , Mariam D'Ciofalo , Marii Ojastu , Maryam Sikander , Mausami Narayan , Maximos Skandalis , Mehak Mehak , Mehmet İlteriş Bozkurt , Melaku Bayu Workie , Menan Velayuthan , Michael Leventhal , Michał Marcińczuk , Mirna Potočnjak , Mohammadamin Shafiei , Mridul Sharma , Mrityunjaya Indoria , Muhammad Ravi Shulthan Habibi , Murat Kolić , Nada Galant , Naphat Permpredanun , Narada Maugin , Nicholas Kluge Corrêa , Nikola Ljubešić , Nirmal Thomas , Nisansa de Silva , Nisheeth Joshi , Nitish Ponkshe , Nizar Habash , Nneoma C. Udeze , Noel Thomas , Noémi Ligeti-Nagy , Nouhoum Coulibaly , Nsengiyumva Faustin , Odunayo Kareemat Buliaminu , Odunayo Ogundepo , Oghojafor Godswill Fejiro , Ogundipe Blessing Funmilola , Okechukwu God'spraise , Olanrewaju Samuel , Olaoye Deborah Oluwaseun , Olasoji Akindejoye , Olga Popova , Olga Snissarenko , Onyinye Anulika Chiemezie , Orkun Kinay , Osman Tursun , Owoeye Tobiloba Moses , Oyelade Oluwafemi Joshua , Oyesanmi Fiyinfoluwa , Pablo Gamallo , Pablo Rodríguez Fernández , Palak Arora , Pedro Valente , Peter Rupnik , Philip Oghenesuowho Ekiugbo , Pramit Sahoo , Prokopis Prokopidis , Pua Niau-Puhipau , Quadri Yahya , Rachele Mignone , Raghav Singhal , Ram Mohan Rao Kadiyala , Raphael Merx , Rapheal Afolayan , Ratnavel Rajalakshmi , Rishav Ghosh , Romina Oji , Ron Kekeha Solis , Rui Guerra , Rushikesh Zawar , Sa'ad Nasir Bashir , Saeed Alzaabi , Sahil Sandeep , Sai Pavan Batchu , SaiSandeep Kantareddy , Salsabila Zahirah Pranida , Sam Buchanan , Samuel Rutunda , Sander Land , Sarah Sulollari , Sardar Ali , Saroj Sapkota , Saulius Tautvaisas , Sayambhu Sen , Sayantani Banerjee , Sebastien Diarra , SenthilNathan. M , Sewoong Lee , Shaan Shah , Shankar Venkitachalam , Sharifa Djurabaeva , Sharon Ibejih , Shivanya Shomir Dutta , Siddhant Gupta , Silvia Paniagua Suárez , Sina Ahmadi , Sivasuthan Sukumar , Siyuan Song , Snegha A. , Sokratis Sofianopoulos , Sona Elza Simon , Sonja Benčina , Sophie Gvasalia , Sphurti Kirit More , Spyros Dragazis , Stephan P. Kaufhold , Suba. S , Sultan AlRashed , Surangika Ranathunga , Taiga Someya , Taja Kuzman Pungeršek , Tal Haklay , Tasi'u Jibril , Tatsuya Aoyama , Tea Abashidze , Terenz Jomar Dela Cruz , Terra Blevins , Themistoklis Nikas , Theresa Dora Idoko , Thu Mai Do , Tilek Chubakov , Tommaso Gargiani , Uma Rathore , Uni Johannesen , Uwuma Doris Ugwu , Vallerie Alexandra Putra , Vanya Bannihatti Kumar , Varsha Jeyarajalingam , Varvara Arzt , Vasudevan Nedumpozhimana , Viktoria Ondrejova , Viktoryia Horbik , Vishnu Vardhan Reddy Kummitha , Vuk Dinić , Walelign Tewabe Sewunetie , Winston Wu , Xiaojing Zhao , Yacouba Diarra , Yaniv Nikankin , Yash Mathur , Yixi Chen , Yiyuan Li , Yolanda Xavier , Yonatan Belinkov , Yusuf Ismail Abayomi , Zaid Alyafeai , Zhengyang Shan , Zhi Rui Tam , Zilu Tang , Zuzana Nadova , Baber Abbasi , Stella Biderman , David Stap , Duygu Ataman , Fabian Schmidt , Hila Gonen , Jiayi Wang , David Ifeoluwa Adelani

Large Language Models (LLMs) attempt to imitate human behavior by responding to humans in a way that pleases them, including by adhering to their values. However, humans come from diverse cultures with different values. It is critical to…

计算与语言 · 计算机科学 2025-08-07 Julia Kharchenko , Tanya Roosta , Aman Chadha , Chirag Shah

Correct answers do not necessarily reflect cultural understanding. We introduce CRaFT, an explanation-based multilingual evaluation framework designed to assess how large language models (LLMs) reason across cultural contexts. Rather than…

计算与语言 · 计算机科学 2025-10-17 Shehenaz Hossain , Haithem Afli