Advanced Прототипирование Tools for Professionals

Discover cutting-edge Прототипирование tools built for intricate workflows. Perfect for experienced users and complex projects.

Прототипирование

  • A set of AWS code demos illustrating LLM Model Context Protocol, tool invocation, context management, and streaming responses.
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    What is AWS Sample Model Context Protocol Demos?
    The AWS Sample Model Context Protocol Demos is an open-source repository showcasing standardized patterns for Large Language Model (LLM) context management and tool invocation. It features two complete demos—one in JavaScript/TypeScript and one in Python—that implement the Model Context Protocol, enabling developers to build AI agents that call AWS Lambda functions, preserve conversation history, and stream responses. Sample code demonstrates message formatting, function argument serialization, error handling, and customizable tool integrations, accelerating prototyping of generative AI applications.
  • SwiftAgent is a Swift framework enabling developers to build customizable GPT-powered agents with actions, memory, and task automation.
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    What is SwiftAgent?
    SwiftAgent offers a robust toolkit for constructing intelligent agents by integrating OpenAI's models directly in Swift. Developers can declare custom actions and external tools, which agents invoke based on user queries. The framework maintains conversational memory, enabling agents to reference past interactions. It supports prompt templating and dynamic context injection, facilitating multi-turn dialogues and decision logic. SwiftAgent's async API works seamlessly with Swift concurrency, making it ideal for iOS, macOS, or server-side environments. By abstracting model calls, memory storage, and pipeline orchestration, SwiftAgent empowers teams to prototype and deploy conversational assistants, chatbots, or automation agents quickly within Swift projects.
  • Visily is an AI-powered UI design tool to create wireframes and prototypes effortlessly.
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    What is Visily?
    Visily is an AI-driven design tool that simplifies the process of creating high-fidelity wireframes and prototypes. This tool allows users to convert screenshots, templates, or text prompts into editable wireframes. It is ideal for design newbies and professional teams alike, aiming to expedite the product development process. Key features include AI-based design suggestions, a user-friendly interface, and collaboration capabilities, making it easy for anyone to create and fine-tune UI designs.
  • AI-powered prototyping tool transforming text into page designs.
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    What is wizard-proto?
    Wizard Proto is a sophisticated prototyping tool designed to simplify the creation of web page prototypes. By using artificial intelligence, it takes textual descriptions and instantly transforms them into functional page code that renders the design in real-time. This allows product teams to rapidly iterate on ideas and facilitates smoother communication between developers and designers. The tool is easy to use, making it suitable for both beginners and seasoned professionals aiming to enhance their workflow and efficiency in the prototyping process.
  • Low-code framework and UI toolkit for consistent, brand-compliant web frontends.
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    What is Design System?
    KickstartDS is an open-source starter kit and next-gen UI development toolkit tailored for creating digital design systems. It features a low-code framework, comprehensive component library, and pattern library, enabling web development teams to establish consistent, brand-compliant web frontends efficiently. With KickstartDS, teams can quickly kickstart their design system projects, ensuring they adhere to best practices in UI and UX design.
  • A Python framework using LLMs to autonomously evaluate, propose, and finalize negotiations in customizable domains.
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    What is negotiation_agent?
    negotiation_agent provides a modular toolkit for building autonomous negotiation bots powered by GPT-like models. Developers can specify negotiation scenarios by defining items, preferences, and utility functions to model agent objectives. The framework includes pre-defined agent templates and allows integration of custom strategies, enabling offer generation, counteroffer evaluation, acceptance decisions, and deal closure. It manages dialogue flows using standardized protocols, supports batch simulations for tournament-style experiments, and calculates performance metrics such as agreement rate, utility gains, and fairness scores. The open architecture facilitates swapping underlying LLM backends and extending agent logic through plugins. With negotiation_agent, teams can quickly prototype and evaluate automated bargaining solutions in e-commerce, research, and educational settings.
  • A comprehensive open-source platform presenting categorized AI agent frameworks and tools to discover and compare autonomous agent projects.
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    What is OSUniverse?
    OSUniverse aggregates open-source AI agent frameworks, libraries, and tools in a single browsable platform. Users can filter projects by language, license, tags, and categories, view detailed project cards with descriptions and GitHub links, and contribute new entries via GitHub pull requests. OSUniverse is regularly updated by the community, making it an essential resource for discovering, evaluating, and selecting the best AI agent technologies for research, prototyping, and production use.
  • pyafai is a Python modular framework to build, train, and run autonomous AI agents with plug-in memory and tool support.
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    What is pyafai?
    pyafai is an open-source Python library designed to help developers architect, configure, and execute autonomous AI agents. It offers pluggable modules for memory management to retain context, tool integration for external API calls, observers for environment monitoring, planners for decision making, and an orchestrator to run agent loops. Logging and monitoring features provide visibility into agent performance and behavior. pyafai supports major LLM providers out of the box, enables custom module creation, and reduces boilerplate so teams can rapidly prototype virtual assistants, research bots, and automation workflows with full control over each component.
  • Dead-simple self-learning is a Python library providing simple APIs for building, training, and evaluating reinforcement learning agents.
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    What is dead-simple-self-learning?
    Dead-simple self-learning offers developers a dead-simple approach to create and train reinforcement learning agents in Python. The framework abstracts core RL components, such as environment wrappers, policy modules, and experience buffers, into concise interfaces. Users can quickly initialize environments, define custom policies using familiar PyTorch or TensorFlow backends, and execute training loops with built-in logging and checkpointing. The library supports on-policy and off-policy algorithms, enabling flexible experimentation with Q-learning, policy gradients, and actor-critic methods. By reducing boilerplate code, dead-simple self-learning allows practitioners, educators, and researchers to prototype algorithms, test hypotheses, and visualize agent performance with minimal configuration. Its modular design also facilitates integration with existing ML stacks and custom environments.
  • A Go SDK enabling developers to build autonomous AI agents with LLMs, tool integrations, memory, and planning pipelines.
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    What is Agent-Go?
    Agent-Go provides a modular framework for building autonomous AI agents in Go. It integrates LLM providers (such as OpenAI), vector-based memory stores for long-term context retention, and a flexible planning engine that breaks down user requests into executable steps. Developers define and register custom tools (APIs, databases, or shell commands) that agents can invoke. A conversation manager tracks dialog history, while a configurable planner orchestrates tool calls and LLM interactions. This allows teams to rapidly prototype AI-driven assistants, automated workflows, and task-oriented bots in a production-ready Go environment.
  • Production-ready FastAPI template using LangGraph for building scalable LLM agents with customizable pipelines and memory integration.
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    What is FastAPI LangGraph Agent Template?
    FastAPI LangGraph Agent Template offers a comprehensive foundation for developing LLM-driven agents within a FastAPI application. It includes predefined LangGraph nodes for common tasks like text completion, embedding, and vector similarity search while allowing developers to create custom nodes and pipelines. The template manages conversation history via memory modules that persist context across sessions and supports environment-based configuration for different deployment stages. Built-in Docker files and CI/CD-friendly structure ensure seamless containerization and deployment. Logging and error-handling middleware enhance observability, while the modular codebase simplifies extending functionality. By combining FastAPI's high-performance web framework with LangGraph's orchestration capabilities, this template streamlines the agent development lifecycle from prototyping to production.
  • Transform your UI design process effortlessly with CraftUI.
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    What is CraftUI?
    CraftUI is a cutting-edge web application designed for seamless UI creation. It enables users to generate polished user interfaces from image and text prompts effortlessly. With its user-friendly interface, CraftUI integrates powerful features that accelerate design workflows, support collaboration, and enhance productivity. Ideal for creating prototypes, web applications, and mobile interfaces, it helps streamline the design process by offering pre-built components and customizable templates, ensuring that both speed and quality are prioritized in every project.
  • Graph-centric AI agent framework orchestrating LLM calls and structured knowledge through customizable language graphs.
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    What is Geers AI Lang Graph?
    Geers AI Lang Graph provides a graph-based abstraction layer for building AI agents that coordinate multiple LLM calls and manage structured knowledge. By defining nodes and edges representing prompts, data, and memory, developers can create dynamic workflows, track context across interactions, and visualize execution flows. The framework supports plugin integrations for various LLM providers, custom prompt templating, and exportable graphs. It simplifies iterative agent design, improves context retention, and accelerates prototyping of conversational assistants, decision-support bots, and research pipelines.
  • Redesign your interior in seconds with Indesignify's AI-powered platform.
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    What is Indesignify?
    Indesignify leverages advanced artificial intelligence to streamline the interior design process. Users can effortlessly redesign rooms, create prototypes instantly, and customize various elements to transform their spaces in seconds. The platform is designed for convenience and efficiency, providing powerful tools for both homeowners looking to visualize their dream homes and professionals in the interior design industry. With its user-friendly interface and potent AI capabilities, Indesignify revolutionizes the way spaces are redesigned.
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