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LLMs

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Large language models are machine learning models trained to predict and generate text and other language-based outputs.

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Large language models are machine learning models trained to predict and generate text and other language-based outputs.

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r/LocalLLaMA · u/xenovatech · 

PrismML just released Binary and Ternary Bonsai Image 4B: 1-bit/ternary text-to-image diffusion transformers that can even run 100% locally in your browser on WebGPU.

The PrismML team really cooked with these models. They're only ~3GB in size (compared to FLUX.2 Klein 4B, which is ~16GB). Apache-2.0! Official collection on HF: https://huggingface.co/collections/prism-ml/bonsai-image L…

r/LocalLLaMA · u/LLMFan46 · 

Qwen3.5 35B A3B uncensored heretic Native MTP Preserved is Out Now With the Full 785 MTPs Preserved and Retained, Available in Safetensors, GGUFs. NVFP4, NVFP4 GGUFs and GPTQ-Int4 Formats

Safetensors, llmfan46/Qwen3.5-35B-A3B-uncensored-heretic-v2-Native-MTP-Preserved: https://huggingface.co/llmfan46/Qwen3.5-35B-A3B-uncensored-heretic-v2-Native-MTP-Preserved GGUFs, llmfan46/Qwen3.5-35B-A3B-uncensored-here…

Hacker News · u/lucaspauker · 

Chatbot Has a Long Memory. That Isn't Always a Good Thing

Chatbot Has a Long Memory. That Isn't Always a Good Thing

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r/LocalLLaMA · u/-p-e-w- · 

The Financial Times has published an article about Heretic

https://www.ft.com/content/5630ed79-a263-41ed-9a1a-321617ae310e “The FT was able to use Heretic, a tool available on the popular code repository GitHub, to remove the guardrails from Meta’s Llama 3.3 model in less than 1…

Hacker News · u/allenleee · 

Measuring LLMs' ability to develop exploits

Measuring LLMs' ability to develop exploits

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What the heck is MCP and why is everyone talking about it?

Everyone’s talking about MCP these days when it comes to large language models (LLMs)—here’s what you need to know.

LLMs Archives
Why are SLMs beneficial to agentic AI tasks?

SLMs are well-positioned for the agentic era because they use a narrow slice of LLM functionality for any single language model errand. LLMs are built to be powerful generalists, but most agents use only a very narrow subset of their capabilities.  They typically parse commands, generate structured outputs such as JSON for tool calls, or produce summaries and answer contextualized questions. These tasks are repetitive (up to the differences in prompt payloads), predictable, and highly specialized—well within the scope of specialized SLMs. An LLM trained to handle open-domain conversations is o

How Small Language Models Are Key to Scalable Agentic AI | NVIDIA Technical Blog
Why aren’t enterprises using SLMs more broadly?

If SLMs have clear advantages, why do most agents still rely so heavily on LLMs? We hypothesize that the barriers are perception-based or caused by organizational culture rather than technical limitations. Shifting to SLM-enabled architectures requires an intentional mindset change. SLM research uses generalist benchmarks, even though agentic workloads demand different evaluation metrics. Plus, LLMs often dominate the headlines. As the cost savings and reliability of SLM-enabled systems become undeniable, momentum will shift. The transition could mirror past shifts in computing, such as the mo

How Small Language Models Are Key to Scalable Agentic AI | NVIDIA Technical Blog
What are agents?

"Agent" can be defined in several ways. Some customers define agents as fully autonomous systems that operate independently over extended periods, using various tools to accomplish complex tasks. Others use the term to describe more prescriptive implementations that follow predefined workflows. At Anthropic, we categorize all these variations as agentic systems, but draw an important architectural distinction between workflows and agents: Workflows are systems where LLMs and tools are orchestrated through predefined code paths.Agents, on the other hand, are systems where LLMs dynamically direc

Building Effective AI Agents
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