AI-900: Microsoft Azure AI Fundamentals AI900 Practice Tests

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课程名称:AI-900:Microsoft Azure AI 基础知识 AI900 实践测试 概述:该课程旨在帮助考生为 AI-900:Microsoft Azure AI 基础知识考试做好充分准备,提供全面的实践测试。考试聚焦于 Microsoft Azure 中的 AI 概念和服务,涵盖机器学习、自然语言处理、计算机视觉等多个主题。通过参加此实践考试,考生可以熟悉实际认证考试的格式,并识别需要进一步学习和准备的领域。 AI-900 实践考试包括一组与真实考试的格式和内容相似的问题,帮助考生模拟测试环境,获取在时间限制内回答问题的宝贵经验。每个问题均提供详细解释,帮助考生理解正确答案的依据,同时加深对 Microsoft Azure 中 AI 概念和服务的理解。 课程目标:通过该实践考试,考生能够提升自信,做好迎接实际考试的准备。无论是初学者还是希望验证已有知识的学习者,这都是提高技能并确保考试成功的有效工具。 考试信息: - 名称:Microsoft 认证 - Azure AI 基础知识 - 考试代码:AI-900 - 考试价格:99 美元 - 题目数量:最多 40-60 题 - 题型:多项选择题(单项和多项选择)、拖放题和基于性能的题目 - 考试时长:60 分钟 - 语言:英语和日语,提供简体中文、韩语 考试内容涵盖: - 人工智能工作负载及考虑因素 - Azure 中机器学习的基本原理 - Azure 中计算机视觉工作负载的功能 - Azure 中自然语言处理的功能 - Azure 中生成 AI 工作负载的功能 课程结尾,学生将具备扎实的 AI 概念基础及使用 Microsoft Azure 中 AI 工具和服务的实际技能,无论是初学者还是希望拓展知识的学习者,此课程都为其后续在 AI 开发、数据科学与云计算领域的职业发展提供了有价值的学习体验。通过最新的课程大纲更新,学习者可以确保获得该领域的最相关和最新的信息。

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Prepare for the AI-900: Microsoft Azure AI Fundamentals exam with this comprehensive practice exam. This exam is designed to help you assess your knowledge and readiness for the actual certification test. With a focus on AI concepts and services in Microsoft Azure, this practice exam covers a wide range of topics including machine learning, natural language processing, computer vision, and more. By taking this practice exam, you can familiarize yourself with the format of the actual test and identify areas where you may need to further study and prepare. AI-900: Microsoft Azure AI Fundamentals Practice Exam includes a set of questions that closely mirror the format and content of the real certification exam. This allows you to simulate the testing environment and gain valuable experience in answering questions within the time constraints of the actual test. The practice exam also provides detailed explanations for each question, helping you understand the rationale behind the correct answers and reinforcing your understanding of AI concepts and services in Microsoft Azure.This practice exam as part of your preparation for the AI-900 certification, you can increase your confidence and readiness to tackle the actual test. Whether you are new to AI and machine learning or looking to validate your existing knowledge, this practice exam is a valuable tool for honing your skills and ensuring success on exam day. Take the next step in your AI journey with the AI-900: Microsoft Azure AI Fundamentals Practice Exam.AI-900: Microsoft Azure AI Fundamentals is a comprehensive and updated course designed to provide learners with a solid understanding of artificial intelligence (AI) concepts and how they are implemented in Microsoft Azure. This course covers a wide range of topics, including machine learning, computer vision, natural language processing, and conversational AI. With the latest syllabus updates, learners can expect to gain knowledge about the latest AI technologies and tools available in Microsoft Azure, ensuring they are well-equipped to tackle real-world AI challenges.Throughout the course, students will have the opportunity to explore various AI services offered by Microsoft Azure, such as Azure Cognitive Services, Azure Machine Learning, and Azure Bot Services. They will also learn how to leverage these services to build AI solutions that can analyze images, interpret speech, understand natural language, and engage in intelligent conversations. Additionally, the course will cover important ethical considerations related to AI, ensuring that learners understand the responsible use of AI technologies.AI-900: Microsoft Azure AI Fundamentals Exam details:Exam Name: Microsoft Certified - Azure AI FundamentalsExam Code: AI-900Exam Price: $99 (USD)Number of Questions: Maximum of 40-60 questions,Type of Questions: Multiple Choice Questions (single and multiple response), drag and drops and performance-based,Length of Test: 60 Minutes. The exam is available in English and Japanese languages.Passing Score: 700 / 1000Languages: English, Japanese, Korean, and Simplified ChineseSchedule Exam: Pearson VUEAI-900: Microsoft Azure AI Fundamentals Certification Exams skill questions:Skill Measurement Exam Topics:-Describe Artificial Intelligence workloads and considerations (15-20%)Describe fundamental principles of machine learning on Azure (20-25%)Describe features of computer vision workloads on Azure (15-20%)Describe features of Natural Language Processing (NLP) workloads on Azure (15-20%)Describe features of generative AI workloads on Azure (15-20%)Describe Artificial Intelligence workloads and considerations (15-20%)Identify features of common AI workloadsIdentify features of content moderation and personalization workloadsIdentify computer vision workloadsIdentify natural language processing workloadsIdentify knowledge mining workloadsIdentify document intelligence workloadsIdentify features of generative AI workloadsIdentify guiding principles for responsible AIDescribe considerations for fairness in an AI solutionDescribe considerations for reliability and safety in an AI solutionDescribe considerations for privacy and security in an AI solutionDescribe considerations for inclusiveness in an AI solutionDescribe considerations for transparency in an AI solutionDescribe considerations for accountability in an AI solutionDescribe fundamental principles of machine learning on Azure (20-25%)Identify common machine learning techniquesIdentify regression machine learning scenariosIdentify classification machine learning scenariosIdentify clustering machine learning scenariosIdentify features of deep learning techniquesDescribe core machine learning conceptsIdentify features and labels in a dataset for machine learningDescribe how training and validation datasets are used in machine learningDescribe Azure Machine Learning capabilitiesDescribe capabilities of automated machine learningDescribe data and compute services for data science and machine learningDescribe model management and deployment capabilities in Azure Machine LearningDescribe features of computer vision workloads on Azure (15-20%)Identify common types of computer vision solutionIdentify features of image classification solutionsIdentify features of object detection solutionsIdentify features of optical character recognition solutionsIdentify features of facial detection and facial analysis solutionsIdentify Azure tools and services for computer vision tasksDescribe capabilities of the Azure AI Vision serviceDescribe capabilities of the Azure AI Face detection serviceDescribe features of Natural Language Processing (NLP) workloads on Azure (15-20%)Identify features of common NLP Workload ScenariosIdentify features and uses for key phrase extractionIdentify features and uses for entity recognitionIdentify features and uses for sentiment analysisIdentify features and uses for language modelingIdentify features and uses for speech recognition and synthesisIdentify features and uses for translationIdentify Azure tools and services for NLP workloadsDescribe capabilities of the Azure AI Language serviceDescribe capabilities of the Azure AI Speech serviceDescribe features of generative AI workloads on Azure (15-20%)Identify features of generative AI solutionsIdentify features of generative AI modelsIdentify common scenarios for generative AIIdentify responsible AI considerations for generative AIIdentify capabilities of Azure OpenAI ServiceDescribe natural language generation capabilities of Azure OpenAI ServiceDescribe code generation capabilities of Azure OpenAI ServiceDescribe image generation capabilities of Azure OpenAI ServiceBy the end of the AI-900: Microsoft Azure AI Fundamentals course, students will have a strong foundation in AI concepts and practical skills in using AI tools and services within the Microsoft Azure environment. Whether they are new to AI or looking to expand their knowledge and skills, this course provides a valuable learning experience that can benefit individuals pursuing careers in AI development, data science, and cloud computing. With the latest syllabus updates, learners can be confident that they are receiving the most relevant and up-to-date information in the field of AI.

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