SOTAVerified

Instruction Following

Instruction following is the basic task of the model. This task is dedicated to evaluating the ability of the large model to follow human instructions. It is hoped that the model can generate controllable and safe answers.

Papers

Showing 851875 of 1135 papers

TitleStatusHype
OmniJARVIS: Unified Vision-Language-Action Tokenization Enables Open-World Instruction Following Agents0
On Instruction-Finetuning Neural Machine Translation Models0
Two Experts Are All You Need for Steering Thinking: Reinforcing Cognitive Effort in MoE Reasoning Models Without Additional Training0
TypeScore: A Text Fidelity Metric for Text-to-Image Generative Models0
UAV-VLN: End-to-End Vision Language guided Navigation for UAVs0
UFT: Unifying Fine-Tuning of SFT and RLHF/DPO/UNA through a Generalized Implicit Reward Function0
On the Mechanism of Reasoning Pattern Selection in Reinforcement Learning for Language Models0
UGIF: UI Grounded Instruction Following0
BioMistral-NLU: Towards More Generalizable Medical Language Understanding through Instruction Tuning0
XIFBench: Evaluating Large Language Models on Multilingual Instruction Following0
OpenSearch-SQL: Enhancing Text-to-SQL with Dynamic Few-shot and Consistency Alignment0
Open-World Skill Discovery from Unsegmented Demonstrations0
OPEx: A Component-Wise Analysis of LLM-Centric Agents in Embodied Instruction Following0
Enhancing and Assessing Instruction-Following with Fine-Grained Instruction Variants0
Optimizing Instruction Synthesis: Effective Exploration of Evolutionary Space with Tree Search0
Optimizing Latent Goal by Learning from Trajectory Preference0
OPTune: Efficient Online Preference Tuning0
Beyond Instruction Following: Evaluating Inferential Rule Following of Large Language Models0
Better Instruction-Following Through Minimum Bayes Risk0
PanGEA: The Panoramic Graph Environment Annotation Toolkit0
ParamΔ for Direct Weight Mixing: Post-Train Large Language Model at Zero Cost0
Efficient Prompt Optimization Through the Lens of Best Arm Identification0
Parameter-Efficient Quantized Mixture-of-Experts Meets Vision-Language Instruction Tuning for Semiconductor Electron Micrograph Analysis0
Parrot: Enhancing Multi-Turn Instruction Following for Large Language Models0
Unbounded: A Generative Infinite Game of Character Life Simulation0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1AutoIF (Llama3 70B)Inst-level loose-accuracy90.4Unverified
2AutoIF (Qwen2 72B)Inst-level loose-accuracy88Unverified
3GPT-4Inst-level loose-accuracy85.37Unverified
4PaLM 2 SInst-level loose-accuracy59.11Unverified