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Computer Vision Papers·2026
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Learning from Failures: Retrieval-Centric CoT via Hard Negatives for Unified Multimodal Retrieval

Zelong Sun, Jun Wang +4

Generates retrieval-centric Chain-of-Thought (RC-CoT) over initially retrieved candidates to improve unified multimodal retrieval via reranking or full-corpus re-retrieval with a dual-mode embedder. Trains an embedder–adviser framework (UniME-R1) using mined hard negatives, supervised learning, and retrieval-oriented reinforcement learning.

#multimodal#retrieval#embeddings#reasoning#RL+2
Hugging Face
AI Dataset·2026
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Türk İçtihat Korpusu (Turkish Court Decisions)

Hamza Bağırsakçı

Provides a CC0-licensed corpus of 11,045,085 Turkish court decisions (1962–2026) in Parquet: 31.5 billion characters, 5.5 GB—designed for retrieval, summarization, classification and RAG workflows.

#huggingface#parquet#nlp#retrieval#RAG+1
Hugging Face
AI Dataset·2026
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Qdrant-FineWeb-10B

Qdrant, Vultr +5

A 10‑billion‑document retrieval benchmark with per‑document 768‑dim unit‑norm dense embeddings and mGTE sparse embeddings, FineWeb text/metadata, and exact top‑1000 MS MARCO ground truth for ~120k queries. Built for large‑scale evaluation of dense/sparse/hybrid retrieval, filtered search, indexing, ANNS algorithms, and embedding compression.

#embeddings#benchmark#huggingface#common-crawl#retrieval+5
Hugging Face
AI Dataset·2026
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Q-CARE Benchmark

Jeonghwan Choi, Taewon Yun +4·Korea Advanced Institute of Science and Technology (KAIST), Cluvion

Evaluates retrieval-augmented generation by decomposing user queries into sub-queries and answers into atomic claims, scoring retrieval by query coverage and generation by claim verifiability. Reference-free benchmark with 800 queries, inlined retrieved chunks, and answers from multiple RAG systems; runs locally without API keys.

#RAG#retrieval#benchmark#evaluation#huggingface+5
Speech Technology Papers·2026
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VoiceMem: Streaming Dual-Brain Memory for Real-Time Interaction

Zhifei Xie, Jiaqi Lang +8·Nanyang Technological University, National University of Singapore +3

Provides a streaming dual-brain memory for real-time speech agents: an informational left brain for factual retrieval and an affective right brain for persona/emotion, achieving high top-5 accuracy while keeping retrieval latency within VAD budgets (~134 ms).

#voice#speech#audio#ASR#multimodal+4
AI Agent Papers·2026
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ContextPilot: Teaching Agents for Proactive Context Management via Fine-grained RL

Zhuoshi Pan, Qizhi Pei +5·Tsinghua University, Tencent Youtu Lab +1

Trains LLM agents to proactively edit and manage their working context for long-horizon tasks using an expanded toolset (planning, long-term memory, soft offloading) and a fine-grained RL algorithm that identifies critical edits and assigns action-level credit. Improves accuracy while keeping contexts compact on long-context QA and deep search.

#long-horizon#ai-agent#RL#rl#agent-skills+5
Natural Language Processing Papers·2026
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It Takes Two to Match: Co-Evolving Generative Retriever with Reinforcement Learning

Runpeng Dai, Kaili Huang +2·University of North Carolina at Chapel Hill, Apple

Generates compact keyword sets for both queries and items with LLMs and matches them directly via an inverted index. Uses supervised fine-tuning to align keyword spaces, then alternates GRPO-based reinforcement learning on query- and item-side generators to co-evolve representations and maximize retrieval F1 while staying compatible with keyword-based infrastructure.

#retrieval#LLM#RL#sft#benchmark+2
AI Agent Papers·2026
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Grounded Skill Synthesis from Code at Scale for Agentic Intelligence

Yongqi Tong, Pan Wang +5

Transforms source code into verifiable, reusable agent skills by extracting atomic operations, workflows, and recurring patterns and validating them via source-body-blind reconstruction. Produces CodeSkillBank (1,006,822 accepted records from 19,769 GitHub repos) and yields ~11.7% average downstream improvement.

#agent-skills#code#github#paper#research+5
Hugging Face
AI Model·2026
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EmbeddingGemma 2

Google DeepMind

Generates unified 768‑dimensional embeddings for text (including code), images, video and audio to enable cross‑modal semantic search and retrieval. Supports task instruction prefixes, Matryoshka truncation to 128/256/512/768 dims, and modular encoders for on‑device use under an Apache‑2.0 license.

#embeddings#multimodal#gemma#google#huggingface+10
AI Agent Papers·2026
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EvoOntology: A Self-Evolving Ontology Layer for Data Agents

Meiduo Chong, Shaolei Zhang +2

Provides a self-evolving ontology layer that enables LLM-based data agents to query and interact with heterogeneous data via an MCP server; it auto-builds and iteratively refines schema, content, and tool layers based on agent interactions.

#mcp-server#mcp#ai-agent#agent-skills#llm+5
Hugging Face
AI Model·2026
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LensVLM-9B

Roy Xie, Dan Friedman +8·Apple Inc., Duke University +1

Scans long documents rendered as compressed page-images, locates relevant pages, and selectively expands only those pages to full text for question answering; built on Qwen3.5-9B, supports 5x/10x/15x compression and is released under Apple’s research-only model license.

#qwen#vision#multimodal#transformers#safetensors+6
AI Video Papers·2026
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WorldCrafter: Consistent Video World Model with Implicit 3D-aware Memory

Wangbo Yu, Kunhao Liu +9·Affiliation: Peking Universityhttps://drexubery.github.io/WorldCrafter, Affiliation: ARC Lab, Tencent IEG

Learns a camera-queryable implicit 3D-aware memory that compresses multi-view history into target-view tokens to enable long-horizon, camera-controllable video generation. Improves revisit consistency and camera-control accuracy and supports streaming exploration from a single image or text prompt.

#video#vision#world-model#long-horizon#distillation+5
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