Scaling Graph Learning for the Enterprise: Production-Ready Graph Learning and Inference
暫譯: 企業級圖形學習的擴展:生產就緒的圖形學習與推斷

Menshawy, Ahmed, Mohamed, Sameh, Masoud, Maraim Rizk

  • 出版商: O'Reilly
  • 出版日期: 2025-09-16
  • 售價: $2,780
  • 貴賓價: 9.5$2,641
  • 語言: 英文
  • 頁數: 356
  • 裝訂: Quality Paper - also called trade paper
  • ISBN: 1098146069
  • ISBN-13: 9781098146061
  • 相關分類: Machine Learning
  • 海外代購書籍(需單獨結帳)

商品描述

Tackle the core challenges related to enterprise-ready graph representation and learning. With this hands-on guide, applied data scientists, machine learning engineers, and practitioners will learn how to build an E2E graph learning pipeline. You'll explore core challenges at each pipeline stage, from data acquisition and representation to real-time inference and feedback loop retraining.

Drawing on their experience building scalable and production-ready graph learning pipelines, the authors take you through the process of building the E2E graph learning pipeline in a world of dynamic and evolving graphs.

  • Understand the importance of graph learning for boosting enterprise-grade applications
  • Navigate the challenges surrounding the development and deployment of enterprise-ready graph learning and inference pipelines
  • Use traditional and advanced graph learning techniques to tackle graph use cases
  • Use and contribute to PyGraf, an open source graph learning library, to help embed best practices while building graph applications
  • Design and implement a graph learning algorithm using publicly available and syntactic data
  • Apply privacy-preserved techniques to the graph learning process

商品描述(中文翻譯)

處理與企業級圖形表示和學習相關的核心挑戰。通過這本實用指南,應用數據科學家、機器學習工程師和實務工作者將學習如何構建端到端(E2E)圖形學習管道。您將探索每個管道階段的核心挑戰,從數據獲取和表示到實時推斷和反饋循環再訓練。

作者基於他們在構建可擴展和生產就緒的圖形學習管道方面的經驗,帶您了解在動態和不斷演變的圖形世界中構建E2E圖形學習管道的過程。

- 了解圖形學習對提升企業級應用的重要性
- 瀏覽圍繞企業級圖形學習和推斷管道的開發與部署挑戰
- 使用傳統和先進的圖形學習技術來解決圖形使用案例
- 使用並貢獻於PyGraf,一個開源圖形學習庫,以幫助在構建圖形應用時嵌入最佳實踐
- 設計和實現一個使用公開可用和語法數據的圖形學習算法
- 將隱私保護技術應用於圖形學習過程

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