BGE M3-Embedding: Multi-Lingual, Multi-Functionality, Multi-Granularity Text Embeddings Through Self-Knowledge Distillation
Adaptive Chameleon or Stubborn Sloth: Revealing the Behavior of Large Language Models in Knowledge Conflicts
A Comprehensive Survey of Hallucination Mitigation Techniques in Large Language Models
Chronos: Learning the Language of Time Series
Linear Transformers with Learnable Kernel Functions are Better In-Context Models
SplattingAvatar: Realistic Real-Time Human Avatars with Mesh-Embedded Gaussian Splatting
Formal-LLM: Integrating Formal Language and Natural Language for Controllable LLM-based Agents
GaLore: Memory-Efficient LLM Training by Gradient Low-Rank Projection
TripoSR: Fast 3D Object Reconstruction from a Single Image
Diffusion Model-Based Image Editing: A Survey
The Era of 1-bit LLMs: All Large Language Models are in 1.58 Bits
Learning to Generate Instruction Tuning Datasets for Zero-Shot Task Adaptation
Intent-based Prompt Calibration: Enhancing prompt optimization with synthetic boundary cases
Sora: A Review on Background, Technology, Limitations, and Opportunities of Large Vision Models
BitDelta: Your Fine-Tune May Only Be Worth One Bit
Ring Attention with Blockwise Transformers for Near-Infinite Context
Premise Order Matters in Reasoning with Large Language Models
Generative Representational Instruction Tuning
DoRA: Weight-Decomposed Low-Rank Adaptation
Model soups: averaging weights of multiple fine-tuned models improves accuracy without increasing inference time
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