
LM-Kit.NET serves as a comprehensive toolkit tailored for the seamless incorporation of generative AI into .NET applications, fully compatible with Windows, Linux, and macOS systems. This versatile platform empowers your C# and VB.NET projects, facilitating the development and management of dynamic AI agents with ease.
Utilize efficient Small Language Models for on-device inference, which effectively lowers computational demands, minimizes latency, and enhances security by processing information locally. Discover the advantages of Retrieval-Augmented Generation (RAG) that improve both accuracy and relevance, while sophisticated AI agents streamline complex tasks and expedite the development process.
With native SDKs that guarantee smooth integration and optimal performance across various platforms, LM-Kit.NET also offers extensive support for custom AI agent creation and multi-agent orchestration. This toolkit simplifies the stages of prototyping, deployment, and scaling, enabling you to create intelligent, rapid, and secure solutions that are relied upon by industry professionals globally, fostering innovation and efficiency in every project.
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Stop letting RFPs, audits, and compliance questionnaires become a costly administrative burden that ties up your best experts. Optivalue.ai is designed to turn this process from a chore into a competitive advantage. Our intelligent platform automates information discovery and response drafting, slashing response times by up to 90%. This frees your most qualified team members to focus on the high-impact personalization that wins bids and ensures compliance.
Optivalue.ai acts as an expert librarian for your entire knowledge base. It securely connects to your systems, reading and understanding every document to know precisely where the best information is. Submit any questionnaire and receive a complete, source-verified draft in minutes. But we go beyond simple automation to deliver proven answers. For perfect traceability and absolute confidence, every statement is backed by a precise citation—source document, page, and date. You don’t just answer correctly; you prove it.
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Inkling
Inkling is an open-weights multimodal AI model from Thinking Machines built to support customization, agentic workflows, coding, reasoning, vision, audio, and enterprise AI use cases. The model is a Mixture-of-Experts transformer with 975 billion total parameters, 41 billion active parameters, 256 routed experts per MoE layer, and six routed experts active per token. It supports context windows up to 1 million tokens and was pretrained on 45 trillion tokens across text, images, audio, and video. Inkling is designed as a broad foundation model rather than a narrowly optimized benchmark model, giving it balanced capabilities across reasoning, coding, factuality, instruction following, vision, audio, tool use, and safety. Its controllable thinking effort lets developers adjust how much computation and generated reasoning the model uses, helping teams balance quality, latency, and cost for different production needs. The model can run agentic coding tasks, use tools, create web apps, generate polished multi-page artifacts, reason over long contexts, and work through iterative refinement loops. For multimodal tasks, Inkling can process images, answer questions about visual content, transcribe and reason over audio, follow spoken instructions, and combine visual reasoning with code-based tools such as Python. Thinking Machines trained Inkling for calibration, instruction following, factual reliability, refusal behavior, and safety across multiple modalities, including evaluations for dangerous capabilities and human-AI threat vectors. Inkling is available on Tinker for fine-tuning, with 64K and 256K context options, an Inkling Playground for testing, cookbook recipes, and support for multimodal post-training workflows. Its full weights are available on Hugging Face, and deployment support is available through APIs and infrastructure partners such as TogetherAI, Fireworks, Modal, Databricks, Baseten, SGLang, vLLM, llama.cpp, and transformers.
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OpenRouter Model Fusion
OpenRouter Fusion revolutionizes the way prompts are processed by engaging multiple models in a streamlined deliberation process, making it easy for users to retrieve integrated results as if they were derived from a single model. A group of specialized models concurrently analyzes the prompt while leveraging both web search and web fetch functionalities, and subsequently, a judge model assesses their outputs to deliver a detailed analysis that highlights consensus, contradictions, partial coverage, unique insights, and blind spots. This thorough examination leads to the final answer, allowing users to draw from diverse perspectives rather than relying on a singular model. Fusion proves especially beneficial in instances where a standalone model may not suffice, including areas like research, expert assessments, comparative inquiries, multi-domain questions, or situations where inaccuracies might lead to significant repercussions. Users can conveniently engage with Fusion through the openrouter/fusion model alias, utilize it as a fusion server tool, or implement it via the Fusion plugin, with all approaches utilizing the same foundational framework. By offering these adaptable access points, Fusion effectively meets a broad spectrum of user requirements and preferences, ultimately enhancing the decision-making process across various fields. Furthermore, this innovative approach ensures that users can confidently navigate complex queries, making informed decisions backed by comprehensive analyses.
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