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Contents

Hugging Face
AI Model·2026
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Laguna S 2.1 GGUF

poolside

GGUF conversions of Laguna S 2.1 for llama.cpp, including quantized builds (Q4_K_M, Q8_0, F16) and a small DFlash drafter for speculative decoding; configured for a 256K default context window and intended for local inference and serving with Poolside's llama.cpp fork.

#llama.cpp#huggingface#foundation-model#llm#ai-inference+2
Hugging Face
AI Model·2026
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Qwen3.6-35B-A3B-Uncensored-Genesis-Hermes-V7-GGUF

LuffyTheFox·HauhauCS

A GGUF build of Qwen3.6 (35B) post-processed with the Genesis numerical repair to reduce training noise and restore weight distributions; provides a more stable, uncensored multimodal (image+text) MoE model with long-context support for local use.

#qwen#llm#multimodal#vision#huggingface+4
Hugging Face
AI Model·2026
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Qwythos-27B-v1

Empero AI, Alibaba (Qwen team)

27B multimodal reasoning model built on Qwen3.5-27B that preserves the base model's native multi-token-prediction head, full vision tower, and a 1,048,576-token YaRN context window. Designed for agentic tool use, long-context reasoning, and research deployments; released under Apache-2.0.

#qwen#multimodal#vision#reasoning#llm+8
Hugging Face
AI Model·2026
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OvisOCR2

Lu Shiyin, Li Yinglun +11

End-to-end 0.8B multimodal OCR and page-level document parser that converts page images into structured Markdown (text, LaTeX formulas, HTML tables, and image crops). Post-trained from Qwen3.5-0.8B using mixed real/synthetic data and SFT+RL+OPD; achieves 96.58 on OmniDocBench v1.6.

#qwen#vllm#huggingface#transformers#ocr+4
Computer Vision Papers·2026
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Read It Back: Pretrained MLLMs Are Zero-Shot Reward Models for Text-to-Image Generation

Runhui Huang, Qihui Zhang +4

Uses pretrained multimodal LLMs as zero-shot, training-free reward models for text-to-image RL by scoring how well the original text prompt can be recovered from a generated image via image-conditioned prompt log-likelihood; includes a Self-SpectraReward closed-loop variant.

#paper#multimodal#vision#RL#evaluation+4
AI Agent Papers·2026
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Know Before Fix: QA-Driven Repository Knowledge Acquisition for Software Issue Resolution

Haotian Lin, Silin Chen +9

Acquires repository knowledge via a targeted QA loop before generating patches, decoupling knowledge acquisition from repair. A Questioner and Answerer produce evidence-grounded QA pairs that a Resolver uses to generate fixes; improves Pass@1 on SWE-bench Verified with modest overhead.

#LLM#ai-coding#swe#paper#evaluation+4
Computer Vision Papers·2026
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LightMem-Ego: Your AI Memory for Everyday Life

Yijun Chen, Boyi Xiao +11

Continuously records egocentric visual and audio streams into a lightweight streaming memory that organizes experiences into current, short-term, and long-term tiers and retrieves multimodal evidence to answer queries about past events. Built for on-device use (smartphones/AI glasses) with dynamic retrieval routing.

#multimodal#vision#audio#mobile#code+1
Hugging Face
AI Model·2026
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LuffyTheFox/Qwen3.6-35B-A3B-Uncensored-Genesis-Hermes-V6-GGUF

LuffyTheFox

A GGUF-local variant of Qwen3.6-35B that applies a non-training 'Genesis' tensor-repair process and Hermes-agent fine-tuning to enable uncensored, multimodal (text+image) local inference. Highlights: MoE 35B spec, large native context, Hermes function-calling dataset transfer, and recommended quantization/runtime settings.

#qwen#llm#multimodal#vision#multilingual+5
Hugging Face
AI Model·2026
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MiniCPM5-1B-Claude-Opus-Fable5-V2-Thinking-GGUF

GnLOLot

GGUF-quantized builds of a 1B 'Thinking' MiniCPM5 model fine-tuned on Fable 5 (V2) for local runtimes; enhances tool/function-calling, coding and instruction-following, and supports long contexts (up to 128K tokens).

#huggingface#llm#nlp#llama.cpp#ai-coding+2
Hugging Face
AI Model·2026
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AngelSlim/Hy3-GGUF

AngelSlim, Tencent

Provides low-bit quantized Hy3 (hy_v3) GGUF model weights and mixed-precision quantization recipes for running Hy3 on llama.cpp, with optional MTP self-speculative decoding and imatrix-based calibration for improved quality/speed trade-offs.

#llm#huggingface#ai-deploy#ai-inference#ai-serving+2
Large Language Model Papers·2026
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RAGU: A Multi-Step GraphRAG Engine with a Compact Domain-Adapted LLM

Mikhail Komarov, Ivan Bondarenko +6

Builds structured knowledge graphs for retrieval-augmented generation via a multi-step GraphRAG pipeline that separates extraction from consolidation. Key features include typed two-stage extraction, DBSCAN-backed deduplication, LLM summarization, Leiden community detection, and a compact 7B extractor model (Meno-Lite-0.1).

#RAG#LLM#nlp#retrieval#benchmark+5
Hugging Face
AI Model·2026
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Laguna S 2.1

Poolside

Agentic coding and long-horizon text generation via a 118B-parameter Mixture-of-Experts LLM with a 1,048,576-token context window. Features 256 routed experts, native preserved-thinking (reasoning) control, speculative decoding draft models, and quantized checkpoints for lower-cost serving.

#llm#vllm#transformers#huggingface#ai-coding+2
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