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Source channel @githubtrending · Post #15039 · Aug 8

#python#adk#agent_samples#agents The Agent Development Kit (ADK) offers ready-made sample agents in Python and Java to help you quickly build AI-powered agents for various tasks, from simple chatbots to complex multi-agent workflows. It supports flexible design, letting you combine multiple specialized agents, use diverse tools, and create adaptable workflows. ADK also includes developer tools for easy testing, debugging, and deployment, and works well with Google’s AI models and other large language models. Using these samples can save you time and effort by providing practical examples and a strong foundation to develop your own intelligent agents efficiently. This helps you focus on your agent’s logic while ADK handles orchestration and scaling. https://github.com/google/adk-samples

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Machinelearning

@ai_machinelearning_big_data · Post #8255 · 08/12/2025, 02:32 PM

🚀Jan-v1: локальная 4B-модель для веба — опенсорсная альтернатива Perplexity Pro 📌Что умеет - SimpleQA: 91% точности, чуть выше Perplexity Pro — и всё это полностью локально. - Сценарии: быстрый веб-поиск и глубокое исследование (Deep Research). Из чего сделана - Базируется на Qwen3-4B-Thinking (контекст до 256k), дообучена в Jan на рассуждение и работу с инструментами. Где запускать - Jan, llama.cpp или vLLM. Как включить поиск в Jan - Settings → Experimental Features → On - Settings → MCP Servers → включите поисковый MCP (например, Serper) Модели - Jan-v1-4B: https://huggingface.co/janhq/Jan-v1-4B - Jan-v1-4B-GGUF: https://huggingface.co/janhq/Jan-v1-4B-GGUF @ai_machinelearning_big_data #ai#ml#local#Qwen#Jan