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Hugging Face
AI Model·2026
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bottlecapai/ThinkingCap-Qwen3.6-27B-GGUF

bottlecapai, Hugging Face

Provides GGUF/llama.cpp quantized variants of Qwen3.6-27B for local multimodal inference, tuned via online RL to cut average 'thinking' tokens by ≈50% while preserving answer quality; offers Q4_K_M/Q8_0/f16 builds and a separate mmproj for vision input.

#qwen#llm#multimodal#vision#huggingface+3
Hugging Face
AI Dataset·2026
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The Open Distillation Codex

Manusagents

Provides 16M+ instruction–response samples and ~81 GB (7,090 compressed GitHub repos) distilled from 68 open-source sources, organized into 8 categories for SFT, coding agents and reasoning research. Model-generated content; released as a curated MIT-licensed collection.

#code#github#json#llm#ai-coding+5
Hugging Face
AI Model·2026
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Agents-A1: Scaling the Horizon, Not the Parameters: Reaching Trillion-Parameter Performance with a 35B Agent

Lei Bai, Zongsheng Cao +48·InternScience

Provides quantized GGUF weights and configs for Agents‑A1 — a 35B Mixture-of-Experts agent trained for long-horizon, tool-enabled reasoning; supports 262K-context serving and runtimes like vLLM and SGLang.

#llm#vllm#huggingface#ai-agent#agent-skills+5
AI Agent Papers·2026
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MemSyco-Bench: Benchmarking Sycophancy in Agent Memory

Zhishang Xiang, Zerui Chen +6

Evaluates how long-term memory in LLM agents amplifies sycophantic behavior and when memory should or should not influence decisions. Provides five targeted tasks, 1,550 standardized samples, an evaluation pipeline, and baseline adapters to test memory use, conflicts, scope, updates, and personalization.

#evaluation#paper#LLM#NLP#ai-agent+2
Hugging Face
AI Dataset·2026
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Explorer_LLM_Rec_Competition

OpenOneRec

Provides anonymized multi-domain user behavior sequences and content metadata (short video, ads, e-commerce, live) for cross-domain recommendation, semantic-ID mapping, and content-understanding tasks. Key tables include per-user multi-domain behavior (~500k rows), pid→three-segment semantic IDs, captions, and level-3 tags; all item IDs are hashed for privacy.

#LLM#video#multimodal#huggingface#embeddings+1
Hugging Face
AI Model·2026
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Leanstral 1.5 119B A6B

Mistral AI

A code-agent model for Lean 4 that automates repository-level formal proofs and verification; a Mixture-of-Experts architecture (119B total, 6.5B active) with 256k context, multimodal input and an Apache-2.0 license.

#vllm#vibe-coding#mcp#ai-agent#multimodal+3
Large Language Model Papers·2026
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ELDR: Expert-Locality-Aware Decode Routing for PD-Disaggregated MoE Serving

Sangjin Choi, Sukmin Cho +4·KAISTDaejeonKorea, Microsoft ResearchBeijingChina +2

Predicts per-request MoE expert footprints from prefill activations and routes decode requests to workers that maximize expert-locality, lowering decode latency by combining offline K-means partitioning with online locality-band routing and a KV-block–coindexed signature cache.

#vllm#llm#ai-serving#ai-inference#paper+2
Large Language Model Papers·2026
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Program-as-Weights: A Programming Paradigm for Fuzzy Functions

Wentao Zhang, Liliana Hotsko +4·University of Waterloo, Cornell University +1

Compiles natural-language function specifications into compact, locally-executable neural programs (PAW) that run on a small frozen interpreter; a 4B compiler emits LoRA adapters for a 0.6B runtime to provide offline, low-memory fuzzy text functions.

#qwen#llm#nlp#paper#github+4
Hugging Face
AI Model·2026
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Hy3

Tencent Hy Team, Tencent

Provides a large Mixture-of-Experts instruct LLM (295B total parameters, 21B active, 256K context) optimized for reasoning, long-context retention and agent workflows; open-sourced under Apache-2.0.

#llm#transformers#huggingface#vllm#ai-inference+3
AI Video Papers·2026
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Parallelized Autoregressive Decoding for Omni-Modal Dense Video Captioning

Wenzheng Zeng, Siyi Jiao +3·National University of Singapore

Generates temporally grounded captions for dense multi-event videos by restructuring autoregressive token dependencies to enable lossless parallel decoding; introduces a latent global planning module and event-factorized parallel decoding to improve grounding accuracy and achieve large decoding speedups.

#video#multimodal#ai-video#LLM#paper+2
Hugging Face
AI Model·2026
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MiniCPM5-1B-Claude-Opus-Fable5-Thinking-GGUF

GnLOLot·GnLOLot, OpenBMB

Provides GGUF-quantized local-deploy weights for a 1B MiniCPM5-derived conversational LLM, embedding a 'thinking' chat template and supporting up to 128K-token context; ships Q4/Q5/Q8/F16 quant files (Q8_0 recommended) for llama.cpp, Ollama, and LM Studio.

#llm#huggingface#ai-coding#chatbot#transformers+1
Hugging Face
AI Model·2026
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MiniCPM5-1B-Claude-Opus-Fable5-Thinking

GnLOLot·OpenBMB, Hugging Face

A 1B-parameter 'Thinking' language model fine-tuned on Fable 5 to improve coding and instruction-following; supports chain-of-thought style outputs, XML tool-call format, and up to 128K-token context, with GGUF builds for single-GPU local deployment.

#huggingface#llm#transformers#ai-coding#nlp+1
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