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 826850 of 1135 papers

TitleStatusHype
Visual Instruction Tuning towards General-Purpose Multimodal Model: A Survey0
SFR-RAG: Towards Contextually Faithful LLMs0
SFTMix: Elevating Language Model Instruction Tuning with Mixup Recipe0
A New Path: Scaling Vision-and-Language Navigation with Synthetic Instructions and Imitation Learning0
Analyzing Multilingual Competency of LLMs in Multi-Turn Instruction Following: A Case Study of Arabic0
SIFT-50M: A Large-Scale Multilingual Dataset for Speech Instruction Fine-Tuning0
SIFToM: Robust Spoken Instruction Following through Theory of Mind0
A Monte Carlo Language Model Pipeline for Zero-Shot Sociopolitical Event Extraction0
SimRAG: Self-Improving Retrieval-Augmented Generation for Adapting Large Language Models to Specialized Domains0
Situated Instruction Following0
Sketch-Plan-Generalize: Learning and Planning with Neuro-Symbolic Programmatic Representations for Inductive Spatial Concepts0
Skill Induction and Planning with Latent Language0
Alzheimer's Dementia Detection Using Perplexity from Paired Large Language Models0
SLADE: Shielding against Dual Exploits in Large Vision-Language Models0
SlideChat: A Large Vision-Language Assistant for Whole-Slide Pathology Image Understanding0
SLM: Bridge the thin gap between speech and text foundation models0
Small Language Models Learn Enhanced Reasoning Skills from Medical Textbooks0
SmolLM2: When Smol Goes Big -- Data-Centric Training of a Small Language Model0
SmolTulu: Higher Learning Rate to Batch Size Ratios Can Lead to Better Reasoning in SLMs0
Socratic Planner: Self-QA-Based Zero-Shot Planning for Embodied Instruction Following0
Aligning Text, Images, and 3D Structure Token-by-Token0
Sorted LLaMA: Unlocking the Potential of Intermediate Layers of Large Language Models for Dynamic Inference0
VLR-Bench: Multilingual Benchmark Dataset for Vision-Language Retrieval Augmented Generation0
EAGLE: Towards Efficient Arbitrary Referring Visual Prompts Comprehension for Multimodal Large Language Models0
E2LVLM:Evidence-Enhanced Large Vision-Language Model for Multimodal Out-of-Context Misinformation Detection0
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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