LM-Kit.NET
LM-Kit.NET is an enterprise-grade toolkit designed for seamlessly integrating generative AI into your .NET applications, fully supporting Windows, Linux, and macOS. Empower your C# and VB.NET projects with a flexible platform that simplifies the creation and orchestration of dynamic AI agents.
Leverage efficient Small Language Models for on‑device inference, reducing computational load, minimizing latency, and enhancing security by processing data locally. Experience the power of Retrieval‑Augmented Generation (RAG) to boost accuracy and relevance, while advanced AI agents simplify complex workflows and accelerate development.
Native SDKs ensure smooth integration and high performance across diverse platforms. With robust support for custom AI agent development and multi‑agent orchestration, LM‑Kit.NET streamlines prototyping, deployment, and scalability—enabling you to build smarter, faster, and more secure solutions trusted by professionals worldwide.
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Ango Hub
Ango Hub is an all-in-one, quality-oriented data annotation platform that AI teams can use. Ango Hub is available on-premise and in the cloud. It allows AI teams and their data annotation workforces to quickly and efficiently annotate their data without compromising quality.
Ango Hub is the only data annotation platform that focuses on quality. It features features that enhance the quality of your annotations. These include a centralized labeling system, a real time issue system, review workflows and sample label libraries. There is also consensus up to 30 on the same asset.
Ango Hub is versatile as well. It supports all data types that your team might require, including image, audio, text and native PDF. There are nearly twenty different labeling tools that you can use to annotate data. Some of these tools are unique to Ango hub, such as rotated bounding box, unlimited conditional questions, label relations and table-based labels for more complicated labeling tasks.
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Tasq.ai
Tasq.ai offers an innovative no-code platform designed for creating hybrid AI workflows that merge advanced machine learning techniques with the expertise of decentralized human contributors, which guarantees exceptional scalability, precision, and control. Teams can visually design AI pipelines by disaggregating tasks into smaller micro-workflows that integrate automated inference alongside verified human assessments. This modular approach accommodates a wide range of applications, including text analysis, computer vision, audio processing, video interpretation, and structured data management, all while incorporating features like rapid deployment, flexible sampling, and consensus-based validation. Essential features encompass the global engagement of meticulously vetted contributors, known as “Tasqers,” ensuring unbiased and highly accurate annotations; sophisticated task routing and judgment synthesis to align with predefined confidence levels; and smooth integration into machine learning operations pipelines through intuitive drag-and-drop functionality. Ultimately, Tasq.ai empowers organizations to harness the full potential of AI by facilitating efficient collaboration between technology and human insight.
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Viso Suite
Viso Suite stands out as the only comprehensive platform designed for end-to-end computer vision solutions. It empowers teams to swiftly train, develop, launch, and oversee computer vision applications without the necessity of starting from scratch with code. By utilizing Viso Suite, organizations can create top-tier computer vision and real-time deep learning systems through low-code solutions and automated software infrastructure. Traditional development practices, reliance on various disjointed software tools, and a shortage of skilled engineers can drain an organization's resources, leading to inefficient, underperforming, and costly computer vision systems. With Viso Suite, users can enhance and implement superior computer vision applications more quickly by streamlining and automating the entire lifecycle. Additionally, Viso Suite facilitates the collection of data for computer vision annotation, allowing for automated gathering of high-quality training datasets. It also ensures that data collection is managed securely, while enabling ongoing data collection to continually refine and enhance AI models for better performance.
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