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20242026
most citedA Survey on Large Language Model-Based Game Agents

6 citations · 6 across the 8 of their papers we have counts for

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8 papers · 1 filter

cs.DB2025

B+ANN: A Fast Billion-Scale Disk-based Nearest-Neighbor Index

Selim Furkan Tekin, Rajesh Bordawekar

Storing and processing of embedding vectors by specialized Vector databases (VDBs) has become the linchpin in building modern AI pipelines. Most current VDBs employ variants of a g…

cs.LG2025

FedHFT: Efficient Federated Finetuning with Heterogeneous Edge Clients

Fatih Ilhan, Selim Furkan Tekin, Tiansheng Huang +6

Fine-tuning pre-trained large language models (LLMs) has become a common practice for personalized natural language understanding (NLU) applications on downstream tasks and domain-…

cs.CL2025

Dynamic Optimizations of LLM Ensembles with Two-Stage Reinforcement Learning Agents

Selim Furkan Tekin, Fatih Ilhan, Gaowen Liu +2

The advancement of LLMs and their accessibility have triggered renewed interest in multi-agent reinforcement learning as robust and adaptive frameworks for dynamically changing env…

cs.CV2025

A Neurosymbolic Agent System for Compositional Visual Reasoning

Yichang Xu, Gaowen Liu, Ramana Rao Kompella +5

The advancement in large language models (LLMs) and large vision models has fueled the rapid progress in multi-modal vision-language reasoning capabilities. However, existing visio…

cs.CV2025

Adversarial Attention Perturbations for Large Object Detection Transformers

Zachary Yahn, Selim Furkan Tekin, Fatih Ilhan +5

Adversarial perturbations are useful tools for exposing vulnerabilities in neural networks. Existing adversarial perturbation methods for object detection are either limited to att…

cs.CR2025

Safety Tax: Safety Alignment Makes Your Large Reasoning Models Less Reasonable

Tiansheng Huang, Sihao Hu, Fatih Ilhan +4

Safety alignment is an important procedure before the official deployment of a Large Language Model (LLM). While safety alignment has been extensively studied for LLM, there is sti…