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M SREE KAMESWARI SNEHA

成为会员时间:2024

青铜联赛

15267 积分
图像生成简介 Earned Mar 22, 2026 EDT
面向开发者的 Responsible AI:公平性与偏见 Earned Feb 27, 2026 EST
Arcade Trail: Application Development Earned Feb 26, 2026 EST
From Foundations To Wonders Earned Feb 25, 2026 EST
生成式 AI:全面了解生成式 AI Earned Feb 25, 2026 EST
生成式 AI:不只是聊天机器人 Earned Feb 25, 2026 EST
生成式 AI:剖析基本概念 Earned Feb 25, 2026 EST
生成式 AI 应用:改变工作方式 Earned Feb 25, 2026 EST
Build a Certification Study Guide: PSOE Exam Prep Earned Feb 25, 2026 EST
Arcade February 2026 Sprint 4 Earned Feb 25, 2026 EST
Arcade February 2026 Sprint 3 Earned Feb 25, 2026 EST
Arcade February 2026 Sprint 2 Earned Feb 24, 2026 EST
Arcade February 2026 Sprint 1 Earned Feb 24, 2026 EST
Skills At The Pitch Earned Feb 24, 2026 EST
Google DeepMind: 01 Build Your Own Small Language Model Earned Feb 24, 2026 EST
利用 Cloud Run 部署和扩缩 AI 模型 Earned Feb 23, 2026 EST
为组织配置 Gemini Code Assist Earned Feb 23, 2026 EST
适用于端到端 SDLC 的 Gemini Earned Feb 23, 2026 EST
负责任的 AI 简介 Earned Feb 22, 2026 EST
Responsible AI: 和 Google Cloud 一起践行 AI 原则 Earned Feb 22, 2026 EST
大型语言模型简介 Earned Feb 22, 2026 EST
生成式 AI 简介 Earned Feb 22, 2026 EST
利用 Vertex AI 实现机器学习运维 (MLOps):模型评估 Earned Feb 21, 2026 EST
适用于生成式 AI 的机器学习运维 (MLOps) Earned Feb 21, 2026 EST

本课程向您介绍扩散模型。这类机器学习模型最近在图像生成领域展现出了巨大潜力。扩散模型的灵感来源于物理学,特别是热力学。过去几年内,扩散模型成为热门研究主题并在整个行业开始流行。Google Cloud 上许多先进的图像生成模型和工具都是以扩散模型为基础构建的。本课程向您介绍扩散模型背后的理论,以及如何在 Vertex AI 上训练和部署此类模型。

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本课程介绍了 Responsible AI 的概念和 AI 原则,还介绍了在 AI/机器学习实践中识别公平性与偏见以及减少偏见的实用技巧,同时探索了使用 Google Cloud 产品和开源工具来实施 Responsible AI 最佳实践的实用方法和工具。

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Developers using managed cloud services can reduce infrastructure management effort by up to 60%, allowing more time to focus on building features that matter. In this level, you’ll gain hands-on experience with Cloud SQL, containerized workloads, and cloud-native application development through the Arcade ACE App Dev series, helping you design, deploy, and manage scalable applications more efficiently.

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As Pup and Kit move through the city between matches—booking plans on the fly, exploring structures built to last, and navigating busy streets—the story reflects what it takes to keep systems running smoothly behind the scenes. From securing storage and shaping networks to improving performance, reliability, and cost efficiency, these labs echo the quiet work that makes flexibility possible. Along the way, hands-on challenges and quizzes sharpen decision-making, so when it’s time for the next big play, everything is ready to perform.

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“生成式 AI:全面了解生成式 AI”是“Gen AI Leader”学习路线中的第三门课程。生成式 AI 正在改变我们的工作方式以及与世界的互动方式。作为领导者,应该如何利用生成式 AI 来推动实际业务成果?在本课程中,您将探索构建生成式 AI 解决方案的不同层级、Google Cloud 的产品/服务,以及选择解决方案时需要考虑的因素。

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生成式 AI:不只是聊天机器人是 Gen AI Leader 学习路线的第一门课程,没有前提条件要求。本课程旨在带您超越对聊天机器人的浅层认知,深入挖掘生成式 AI 为您的组织带来的真正潜力。您将探索基础模型和提示工程等概念,它们对于利用生成式 AI 的强大功能至关重要。本课程还将提供指导,让您了解在为组织制定成功的生成式 AI 策略时,应考虑哪些重要因素。

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生成式 AI:剖析基本概念是“Gen AI Leader”学习路线的第二门课程。在本课程中,您将探索 AI、机器学习和生成式 AI 之间的差异,了解各种数据类型如何赋能生成式 AI 来应对业务挑战,从而了解生成式 AI 的基本概念。您还将深入了解 Google Cloud 应对基础模型局限性的策略,以及负责任和安全的 AI 开发与部署面临哪些关键挑战。

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“生成式 AI 应用:改变工作方式”是 Generative AI Leader 学习路线的第四门课程。本课程介绍 Google 的生成式 AI 应用,例如 Gemini for Workspace 和 NotebookLM。它将引导您逐一了解接地、检索增强生成、构建有效提示和构建自动化工作流等概念。

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Learn how to use Gemini Notebook to create a personalized study guide for the Professional Security Operations Engineer certification exam. You'll review Gemini Notebook features, create a notebook in Gemini Notebook, and learn how to use a study guide to practice for a certification exam.

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This month's Arcade Sprint 4 is live! It's designed for quick learning. Since the labs are open all month, there's no rush; just jump in when you have the time. You'll earn 1 Arcade Point and a new skill with each step. It's that simple: grab your point and keep the momentum going!

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This month's Arcade Sprint 3 is live! It's designed for quick learning. Since the labs are open all month, there's no rush; just jump in when you have the time. You'll earn 1 Arcade Point and a new skill with each step. It's that simple: grab your point and keep the momentum going!

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This month's Arcade Sprint 2 is live! It's designed for quick learning. Since the labs are open all month, there's no rush; just jump in when you have the time. You'll earn 1 Arcade Point and a new skill with each step. It's that simple: grab your point and keep the momentum going!

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This month's Arcade Sprint 1 is live! It's designed for quick learning. Since the labs are open all month, there's no rush; just jump in when you have the time. You'll earn 1 Arcade Point and a new skill with each step. It's that simple: grab your point and keep the momentum going!

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Pup and Kit’s World Cup journey highlights how the right skills quietly power great experiences. As they plan, adapt, and stay in sync using data, automation, and cloud-based tools, the story nudges you to step into their shoes and build those capabilities yourself. Each lab mirrors a moment from their adventure, encouraging you to explore, experiment, and strengthen skills that help you stay prepared, move faster, and make smarter choices-whatever the situation demands.

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In this Google DeepMind course, you will learn the fundamentals of language models and gain a high-level understanding of the machine learning development pipeline. You will consider the strengths and limitations of traditional n-gram models and advanced transformer models. Practical coding labs will enable you to develop insights into how machine learning models work and how they can be used to generate text and identify patterns in language. Through real-world case studies, you will build an understanding around how research engineers operate. Drawing on these insights you will identify problems that you wish to tackle in your own community and consider how to leverage the power of machine learning responsibly to address these problems within a global and local context.

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AI 推理是指利用经过训练的机器学习模型,通过应用其学习到的模式,对新的、未见过的数据进行预测的过程。本课程专为有兴趣在 Cloud Run 上快速部署 AI 推理服务的开发者、数据科学家和机器学习工程师而设计。对于熟悉基于云的无服务器应用部署解决方案,但可能没有使用 Google Cloud 无服务器产品运行 AI 推理经验的学员来说,本课程非常有用。 本课程包含使用 GPU 部署 AI 推理模型,以及将生成式 AI 应用与数据存储服务集成的示例。

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本课程面向为组织配置 Gemini Code Assist 的 Google Cloud 开发者和 DevOps 工程师,需事先掌握 Google Cloud 控制台的基本知识。本课程介绍了 Gemini Code Assist 的优势,并比较了不同 Gemini Code Assist 版本的功能。本课程还介绍了如何在组织内配置和管理 Gemini Code Assist。

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在本课程中,您将了解 Gemini(Google Cloud 推出的一款依托生成式 AI 的协作工具)如何帮助您使用 Google 产品和服务开发、测试、部署和管理应用。在 Gemini 的协助下,您可以学习如何开发和构建 Web 应用、修复应用中的错误、开发测试和查询数据。您可以通过实操实验了解如何利用 Gemini 来改进软件开发生命周期 (SDLC)。 Duet AI 已更名为 Gemini,这是我们的新一代模型。

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这是一节入门级微课程,旨在解释什么是负责任的 AI、它的重要性,以及 Google 如何在自己的产品中实现负责任的 AI。此外,本课程还介绍了 Google 的 7 个 AI 开发原则。

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随着企业对人工智能和机器学习的应用越来越广泛,以负责任的方式构建这些技术也变得更加重要。但对很多企业而言,真正践行 Responsible AI 并非易事。如果您有意了解如何在组织内践行 Responsible AI,本课程正适合您。 本课程将介绍 Google Cloud 目前如何践行 Responsible AI,以及从中总结的最佳实践和经验教训,便于您以此为框架构建自己的 Responsible AI 方法。

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这是一节入门级微学习课程,探讨什么是大型语言模型 (LLM)、适合的应用场景以及如何使用提示调整来提升 LLM 性能,还介绍了可以帮助您开发自己的 Gen AI 应用的各种 Google 工具。

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这是一节入门级微课程,旨在解释什么是生成式 AI、它的用途以及与传统机器学习方法的区别。该课程还介绍了可以帮助您开发自己的生成式 AI 应用的各种 Google 工具。

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本课程能让机器学习从业者掌握评估生成式和预测式 AI 模型的基本工具、方法和最佳实践。要确保机器学习系统在实际运用中提供可靠、准确、高效的结果,做好模型评估至关重要。 学员将深入了解各项评估指标、方法及如何在不同模型类型和任务中适当应用这些指标和方法。课程将着重介绍生成式 AI 模型带来的独特挑战,并提供有效解决这些挑战的策略。通过利用 Google Cloud 的 Vertex AI Platform,学员可学习如何在模型选择、优化和持续监控工作中实施卓有成效的评估流程。

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本课程致力于为您提供所需的知识和工具,让您能够了解 MLOps 团队在部署和管理生成式 AI 模型以及探索 Vertex AI 如何帮助 AI 团队简化 MLOps 流程时面临的独特挑战,并帮助您在生成式 AI 项目中取得成功。

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