Thursday, September 6, 2018

Microsoft 70-774 VceExamsTest Updated Exam Material

Microsoft Certified Solution Associate:

An MCSA Program or, Microsoft Certified Solutions Associate, is an entry level certification programme, or the first rung on the ladder, intended for people who seek entry-level jobs in an IT environment. MCSA is a prerequisite for more advanced Microsoft certifications.
This is where Microsoft Certification comes in. Microsoft provides a certification programme which trains the individual in the systems, networks, and computing that Microsoft programs utilise. Having a Microsoft Certification means that a company can be assured that the certified professional they are hiring is not only competent to do the work needed,but is also committed to the IT industry, at least,committed enough to make the effort and time to go through the process of certification.
You can become certified across a wide variety of Microsoft disciplines, from windows 10 operating system or Windows Server 2012 (the latter we will be looking at, in more depth in a moment). Within these certification topics, there are various tiers of qualifications which can be seen here.Attaining the MCSA certification Exams you have the core technical skills to design and build solutions for your chosen Microsoft technology.There are many types of exam related to MCSA.One of  them is following.

Skill Measured For 70-774 Exam:

This 70-774 exam measures your ability to accomplish the technical tasks listed below. Do you have feedback about the relevance of the skills measured on this exam? Please send your comments. All feedback will be reviewed and incorporated as appropriate while still maintaining the validity and reliability of the certification process. Note that We will not respond directly to your feedback. We appreciate your input in ensuring the quality of the Microsoft Certification program.

Exam 70-774 Description:

Prepare for Microsoft Exam 70-774–and help demonstrate your real-world mastery of performing key data science activities with Azure Machine Learning services. Designed for experienced IT professionals ready to advance their status, Exam Ref focuses on the critical thinking and decision-making acumen needed for success at the MCSA level.
Focus on the expertise measured by these objectives
Prepare data for analysis in Azure Machine Learning and export from Azure Machine Learning
Develop machine learning models
Operationalize and manage Azure Machine Learning Services
Use other services for machine learning
Organizes its coverage by exam objectives
Features strategic, what-if scenarios to challenge you
Assumes you are familiar with Azure data services, machine learning concepts, and common data science processes 

Exam 70-774 focuses on skills and knowledge needed to prepare data for analysis with Azure Machine Learning; find key variables describing your data’s behavior; develop models and identify optimal algorithms; train, validate, deploy, manage, and consume Azure Machine Learning Models; and leverage related services and APIs.

Exam 70-774 Topics:

Prepare Data for Analysis in Azure Machine Learning and Export from Azure Machine Learning:

  • Import and export data to and from Azure Machine Learning
  • Import and export data to and from Azure Blob storage, import and export data to and from Azure SQL Database, import and export data via Hive Queries, import data from a website, import data from on-premises SQL
  • Explore and summarize data
  • Create univariate summaries, create multivariate summaries, visualize univariate distributions, use existing Microsoft R or Python notebooks for custom summaries and custom visualizations, use zip archives to import external packages for R or Python
  • Cleanse data for Azure Machine Learning
  • Apply filters to limit a dataset to the desired rows, identify and address missing data, identify and address outliers, remove columns and rows of datasets
  • Perform feature engineering
  • Merge multiple datasets by rows or columns into a single dataset by columns, merge multiple datasets by rows or columns into a single dataset by rows, add columns that are combinations of other columns, manually select and construct features for model estimation, automatically select and construct features for model estimation, reduce dimensions of data through principal component analysis (PCA), manage variable metadata, select standardized variables based on planned analysis

Develop Machine Learning Models:

  • Select an appropriate algorithm or method
  • Select an appropriate algorithm for predicting continuous label data, select an appropriate algorithm for supervised versus unsupervised scenarios, identify when to select R versus Python notebooks, identify an appropriate algorithm for grouping unlabeled data, identify an appropriate algorithm for classifying label data, select an appropriate ensemble
  • Initialize and train appropriate models
  • Tune hyperparameters manually; tune hyperparameters automatically; split data into training and testing datasets, including using routines for cross-validation; build an ensemble using the stacking method
  • Validate models
  • Score and evaluate models, select appropriate evaluation metrics for clustering, select appropriate evaluation metrics for classification, select appropriate evaluation metrics for regression, use evaluation metrics to choose between Machine Learning models, compare ensemble metrics against base models
Operationalize and Manage Azure Machine Learning Services:

  • Deploy models using Azure Machine Learning
  • Publish a model developed inside Azure Machine Learning, publish an externally developed scoring function using an Azure Machine Learning package, use web service parameters, create and publish a recommendation model, create and publish a language understanding model
  • Manage Azure Machine Learning projects and workspaces
  • Create projects and experiments, add assets to a project, create new workspaces, invite users to a workspace, switch between different workspaces, create a Jupyter notebook that references an intermediate dataset
  • Consume Azure Machine Learning models
  • Connect to a published Machine Learning web service, consume a published Machine Learning model programmatically using a batch execution service, consume a published Machine Learning model programmatically using a request response service, interact with a published Machine Learning model using Microsoft Excel, publish models to the marketplace
  • Consume exemplar Cognitive Services APIs
  • Consume Vision APIs to process images, consume Language APIs to process text, consume Knowledge APIs to create recommendations

Use Other Services for Machine Learning:

  • Build and use neural networks with the Microsoft Cognitive Toolkit
  • Use N-series VMs for GPU acceleration, build and train a three-layer feed forward neural network, determine when to implement a neural network
  • Streamline development by using existing resources
  • Clone template experiments from Cortana Intelligence Gallery, use Cortana Intelligence Quick Start to deploy resources, use a data science VM for streamlined development
  • Perform data sciences at scale by using HDInsights
  • Deploy the appropriate type of HDI cluster, perform exploratory data analysis by using Spark SQL, build and use Machine Learning models with Spark on HDI, build and use Machine Learning models using MapReduce, build and use Machine Learning models using Microsoft R Server
  • Perform database analytics by using SQL Server R Services on Azure
  • Deploy a SQL Server 2016 Azure VM, configure SQL Server to allow execution of R scripts, execute R scripts inside T-SQL statements

VceExamsTest Provide 70-774 VCE Preparation Material:

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