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Изворен канал @pythonmathaug22 · Post #7 · 18 авг.

Добрый день, дорогой студент интенсива! 🎲 Это дружеское напоминание о втором занятии с Анной Чувилиной “Решение задач по программированию на блок-схемах” сегодня 18 августа в 19:00 (мск). ❗️ ВНИМАНИЕ ССЫЛКА: встреча пройдет по ссылке на трансляцию Ждем в 19:00 (мск)! 📝По просьбе преподавателя Анны просим подготовить к занятию бумагу с ручкой или редактор на ноутбуке. Не забудьте подписаться на: — Наш Youtube-канал — Канал в Discord#python-и-математика-интенсив, там будут обсуждения и объявления Если есть вопросы, писать в Discord/Telegram или на [email protected]

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Repositorio data science

@repo_science · Post #3205 · 19.05.2023 г., 22:18

#database#Neo4j#Spring 💾 Graph Database : Neo4j with Spring Boot NoSQL : Neo4j with Java and Spring Framework. Node, Relationship with CRUD Operations & AND, OR, IN Cypher Queries 🔗Link ----- Main channel: @repo_science Coupons: @freecoupons_reposcience -----

GitHub Trends

@githubtrending · Post #15360 · 23.12.2025 г., 14:30

#python#docker#fastapi#kbqa#kgqa#llms#neo4j#rag#vue Yuxi-Know (语析) is a free, open-source platform built with LangGraph, Vue.js, FastAPI, and LightRAG to create smart agents using RAG knowledge bases and knowledge graphs. The latest v0.4.0-beta (Dec 2025) adds file uploads, multimodal image support, mind maps from files, evaluation tools, dark mode, and better graph visuals. It helps you quickly build and deploy custom AI agents for Q&A, analysis, and searches without starting from scratch, saving time and effort on development. https://github.com/xerrors/Yuxi-Know

GitHub Trends

@githubtrending · Post #15518 · 24.02.2026 г., 11:30

#rust#ai#ai_ocr#attention_mechanism#gnn#gnn_model#gnns#graph#graph_neural_networks#llm_inference#low_latency#mincut#neo4j#ocr#onnx#rust#vector#wasm RuVector is a free, open-source vector database that gets smarter with every query. Unlike static databases, it learns from usage via GNN layers, runs LLMs locally with no cloud costs, supports graph queries like Neo4j, scales freely across nodes, and deploys as a single self-booting file (125ms startup). Run with `npx ruvector`. You benefit from faster, more accurate AI search that improves automatically, zero operating costs, full offline/privacy control, and easy scaling—perfect for RAG, agents, or edge apps without vendor lock-in. https://github.com/ruvnet/ruvector

GitHub Trends

@githubtrending · Post #14791 · 05.06.2025 г., 12:30

#python#ai#ai_agents#ai_memory#cognitive_architecture#cognitive_memory#contributions_welcome#good_first_issue#good_first_pr#graph_database#graph_rag#graphrag#help_wanted#knowledge#knowledge_graph#neo4j#open_source#openai#rag#vector_database Cognee is an open-source AI memory engine that helps improve how AI systems understand and process data. It mimics human cognitive processes, creating "memories" from various data types like text and images. This enhances the accuracy of large language models (LLMs) and allows them to recall past interactions and documents. Cognee is scalable, cost-effective, and integrates easily with existing systems, making it a valuable tool for developers seeking to boost AI performance without relying on expensive APIs. https://github.com/topoteretes/cognee