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Kurs i programvare og applikasjoner
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2 dager 8 490 kr
Vil du lære triks og presentasjonsteknikk som fremmer ditt budskap hos publikum? Da er ”PowerPoint Videregående” kurset for deg! [+]
PowerPoint kurs for deg som mestrer det grunnleggende i PowerPoint, men ønsker å lage mer profesjonelle presentasjoner. Vil du få full oversikt over mulighetene og kunne utforme presentasjoner som skiller seg ut fra det andre lager? Vil du lære triks og presentasjonsteknikk som fremmer ditt budskap hos publikum? Da er ”PowerPoint Videregående” kurset for deg! Kurset kan også spesialtilpasses og holdes bedriftsinternt i deres eller våre lokaler.   Kursinnhold:   Dag 1   Tekst Effektiv jobbing. Formulere, flytte og omstrukturere tekst i en presentasjon Skrifttype og størrelse. Hvilke fonter bør man bruke og hvordan endre størrelse og font raskt? Tabulatorer. Sette ut og redigere tabulatorer for å få orden på tall og kolonner Fra Word. Hvordan jobbe effektivt mellom programmene, og gjøre om overskrifter fra et Word-dokument til punkter i PowerPoint? Rette opp feil. Kvitte seg med feil skrifttype, dårlige oppsett og elementer som bryter med malen for å få gjennomført utseende. Hva skjer når man kopierer mellom presentasjoner? Presentasjonstips. Antall punkter, tekstutforming og hvordan beholde publikums fokus?   Bilder Hva fanger blikket? Tilpasse bilder, utsnitt, plassering og bakgrunn for å få fullt fokus fra publikum Størrelse og formater. Komprimere bilder og litt eksempler og teori om bildeformater og bildebehandling Presentasjonstips. Vi ser på de forskjellige settingene der bilder brukes og hva du bør gjøre med bilder Skjermutklipp   SmartArt Introduksjon. Litt om SmartArt og når og hvordan du bør bruke det Effektiv jobbing. Bruk tastaturet for å lage SmartArt Avansert oppsett og animasjon. Lag organisasjonskart og ta kontroll på animasjon av SmartArt Gjør teksttunge presentasjoner bedre. Konverter punktmerkede lister til SmartArt   Figurer og tegning Avanserte muligheter med figurer. Hvordan får figuren nøyaktig det utseende du ønsker? Farger. Tilpasse figurer til automatisk å få firmafarger og hvordan gjøre disse lett tilgjengelig Egendefinerte figurer. Tegn fritt eller slå sammen figurer Figurer og bilder. Hvordan kombinere figurer og bilder på best mulig måte?   Lysbildefremvisning Tilpasset fremvisning. Skjul/vis lysbilder og lag flere varianter av samme presentasjon Dynamiske fremvisningsteknikker. Tips og triks du kan bruke når du holder presentasjonen Presentasjonsvisning. Se notater, tidsbruk og lysbildeoversikt på din skjerm, mens publikum kun ser lysbildet Presentasjonsteknikk. Hva fester seg hos publikum? Både positivt og negativt…   Dag 2   Diagrammer og Excel Kopiere diagram. Alternative innlimingsteknikker og fordelene og ulempene med disse Kopiere tall. Alternative innlimingsteknikker og fordelene og ulempene med disse Behandle koblinger. Oppdatere data og kontrollere koblinger til Excel Presentasjonstips. Gjør avanserte tall og diagram lettleste og forståelige for publikum   Maler og tema Introduksjon. Hva er en mal, hva er et tema og hvordan lager man disse? Lage egen mal. Hva bør man tenke på før man lager ny mal og hvordan lages den? Redigere mal. Tilpasse malen spesielt til din presentasjon Plassholdere. Ta kontroll på hvor overskrift, punktmerking, bunntekst, dato og sidetall skal stå Farger. Fargevalg for tekst, bakgrunn, punktmerking og figurer Grafikk. Innsetting av logo, bakgrunnsgrafikk, navigeringsknapper hyperkoblinger, bilder o.l. Maltips. Hva bør gjøres i malen og hvordan tilbakestiller man lysbilder som har mistet kontakt med malen? Kan firmamalen forbedres. Hvordan går du frem for å sjekke og eventuelt rette opp firmamalen?   Hyperkoblinger Nettsider. Lag hyperkobling for å hente frem aktuelle saker eller hjemmesider Dokumenter. Hent frem Word-dokumenter og Excel-ark og hopp automatisk nøyaktig dit du vil i disse Til andre lysbilder. Hent frem skjulte eller detaljerte lysbilder med ett enkelt museklikk Hyperkoblinger i malen. Gjør store salgspresentasjoner lette å navigere i ved hjelp av hyppig bruk av hyperkoblinger i malen og på enkeltsider   Animasjon, lyd og video Overganger mellom lysbilder. Få lysbilder til å gli pent over i hverandre Avansert animering av tekst/bilder/diagrammer. Hent frem det du vil, når du vil det Tidsberegning og loop. Lysbildeshow til bruk på messer, i butikkvinduer og lignende Innsetting av lyd og video. Hvordan setter man inn og tilpasser lyd og video? Formater og kompatibilitet. Hvilke formater fungerer i PowerPoint og hvordan får man med seg alt på minnepinne? Presentasjonstips. God bruk av animasjon, lyd og video   4 gode grunner til å velge KnowledgeGroup 1. Best practice kursinnhold 2. Markedets beste instruktører 3. Små kursgrupper 4. Kvalitets- og startgaranti    [-]
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Nettkurs 180 dager 12 000 kr
Elæring CCNA: Implementing and Administering Cisco Solutions [+]
CCNA: Implementing and Administering Cisco Solutions [-]
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Nettkurs 375 kr
Kurs i grunnleggende Excel med Tore Søfting. Lær riktig bruk, og bli mer effektiv i regneark. [+]
  Mestre de vanligste formlene og funksjonene i Excel Få oversikt og kontroll i regneark Kunne håndtere lister og tabeller Bli trygg på at det du lager i systemet er korrekt Etablere effektive arbeidsmetoder og rutiner Dette kurset gir deg grunnleggende kunnskap om Excel. Riktig bruk av systemet vil gjøre at du effektiviserer din arbeidshverdag og minimerer manuell jobbing i systemet. Du får en god forståelse av hvordan du kan bruke Excel, og får tips på smarte hurtigtaster og arbeidsmetoder i systemet. Kurset passer for deg som har liten erfaring med Excel, og som ønsker å få en oversikt over mulighetene. Det passer også for deg som har gjort deg litt kjent med systemet, men som ønsker å jobbe mer effektivt. Det legges vekt på å lære de viktigste funksjonene i systemet og innarbeide gode rutiner.  Leksjoner Hva er Excel? (VEDLEGG) Håndtere vinduer i Excel Sortering av lister Filtrering av lister Identifisere og fjerne duplikater Sammendrag av lister Beregninger i regneark – de fire regneartene Funksjonen SUMMER Sentrale funksjoner – MIN, STØRST og GJ.SNITT Kopiering av formler Å låse celler – bedre utnyttelse av referanser Spore logisk sammenheng Sammendrag av data over flere ark Funksjonen FINN.RAD Funksjonen HVIS.FEIL Tid i Excel Validering og beskyttelse av regnark Importproblemer Importproblemer – å miste ledende null Dele og sammenføye innhold Grafiske fremstillinger av tall Lag tradisjonelle grafer Lag grafer med to verdiakser Grunnleggende om pivottabeller Ta frem fakta fra pivottabeller [-]
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Virtuelt klasserom 4 dager 25 000 kr
In this course, the student will learn about the data engineering patterns and practices as it pertains to working with batch and real-time analytical solutions using Azu... [+]
COURSE OVERVIEW Students will begin by understanding the core compute and storage technologies that are used to build an analytical solution. They will then explore how to design an analytical serving layers and focus on data engineering considerations for working with source files. The students will learn how to interactively explore data stored in files in a data lake. They will learn the various ingestion techniques that can be used to load data using the Apache Spark capability found in Azure Synapse Analytics or Azure Databricks, or how to ingest using Azure Data Factory or Azure Synapse pipelines. The students will also learn the various ways they can transform the data using the same technologies that is used to ingest data. The student will spend time on the course learning how to monitor and analyze the performance of analytical system so that they can optimize the performance of data loads, or queries that are issued against the systems. They will understand the importance of implementing security to ensure that the data is protected at rest or in transit. The student will then show how the data in an analytical system can be used to create dashboards, or build predictive models in Azure Synapse Analytics. TARGET AUDIENCE The primary audience for this course is data professionals, data architects, and business intelligence professionals who want to learn about data engineering and building analytical solutions using data platform technologies that exist on Microsoft Azure. The secondary audience for this course data analysts and data scientists who work with analytical solutions built on Microsoft Azure. COURSE OBJECTIVES   Explore compute and storage options for data engineering workloads in Azure Design and Implement the serving layer Understand data engineering considerations Run interactive queries using serverless SQL pools Explore, transform, and load data into the Data Warehouse using Apache Spark Perform data Exploration and Transformation in Azure Databricks Ingest and load Data into the Data Warehouse Transform Data with Azure Data Factory or Azure Synapse Pipelines Integrate Data from Notebooks with Azure Data Factory or Azure Synapse Pipelines Optimize Query Performance with Dedicated SQL Pools in Azure Synapse Analyze and Optimize Data Warehouse Storage Support Hybrid Transactional Analytical Processing (HTAP) with Azure Synapse Link Perform end-to-end security with Azure Synapse Analytics Perform real-time Stream Processing with Stream Analytics Create a Stream Processing Solution with Event Hubs and Azure Databricks Build reports using Power BI integration with Azure Synpase Analytics Perform Integrated Machine Learning Processes in Azure Synapse Analytics COURSE CONTENT Module 1: Explore compute and storage options for data engineering workloads This module provides an overview of the Azure compute and storage technology options that are available to data engineers building analytical workloads. This module teaches ways to structure the data lake, and to optimize the files for exploration, streaming, and batch workloads. The student will learn how to organize the data lake into levels of data refinement as they transform files through batch and stream processing. Then they will learn how to create indexes on their datasets, such as CSV, JSON, and Parquet files, and use them for potential query and workload acceleration. Introduction to Azure Synapse Analytics Describe Azure Databricks Introduction to Azure Data Lake storage Describe Delta Lake architecture Work with data streams by using Azure Stream Analytics Lab 1: Explore compute and storage options for data engineering workloads Combine streaming and batch processing with a single pipeline Organize the data lake into levels of file transformation Index data lake storage for query and workload acceleration After completing module 1, students will be able to: Describe Azure Synapse Analytics Describe Azure Databricks Describe Azure Data Lake storage Describe Delta Lake architecture Describe Azure Stream Analytics Module 2: Design and implement the serving layer This module teaches how to design and implement data stores in a modern data warehouse to optimize analytical workloads. The student will learn how to design a multidimensional schema to store fact and dimension data. Then the student will learn how to populate slowly changing dimensions through incremental data loading from Azure Data Factory. Design a multidimensional schema to optimize analytical workloads Code-free transformation at scale with Azure Data Factory Populate slowly changing dimensions in Azure Synapse Analytics pipelines Lab 2: Designing and Implementing the Serving Layer Design a star schema for analytical workloads Populate slowly changing dimensions with Azure Data Factory and mapping data flows After completing module 2, students will be able to: Design a star schema for analytical workloads Populate a slowly changing dimensions with Azure Data Factory and mapping data flows Module 3: Data engineering considerations for source files This module explores data engineering considerations that are common when loading data into a modern data warehouse analytical from files stored in an Azure Data Lake, and understanding the security consideration associated with storing files stored in the data lake. Design a Modern Data Warehouse using Azure Synapse Analytics Secure a data warehouse in Azure Synapse Analytics Lab 3: Data engineering considerations Managing files in an Azure data lake Securing files stored in an Azure data lake After completing module 3, students will be able to: Design a Modern Data Warehouse using Azure Synapse Analytics Secure a data warehouse in Azure Synapse Analytics Module 4: Run interactive queries using Azure Synapse Analytics serverless SQL pools In this module, students will learn how to work with files stored in the data lake and external file sources, through T-SQL statements executed by a serverless SQL pool in Azure Synapse Analytics. Students will query Parquet files stored in a data lake, as well as CSV files stored in an external data store. Next, they will create Azure Active Directory security groups and enforce access to files in the data lake through Role-Based Access Control (RBAC) and Access Control Lists (ACLs). Explore Azure Synapse serverless SQL pools capabilities Query data in the lake using Azure Synapse serverless SQL pools Create metadata objects in Azure Synapse serverless SQL pools Secure data and manage users in Azure Synapse serverless SQL pools Lab 4: Run interactive queries using serverless SQL pools Query Parquet data with serverless SQL pools Create external tables for Parquet and CSV files Create views with serverless SQL pools Secure access to data in a data lake when using serverless SQL pools Configure data lake security using Role-Based Access Control (RBAC) and Access Control List After completing module 4, students will be able to: Understand Azure Synapse serverless SQL pools capabilities Query data in the lake using Azure Synapse serverless SQL pools Create metadata objects in Azure Synapse serverless SQL pools Secure data and manage users in Azure Synapse serverless SQL pools Module 5: Explore, transform, and load data into the Data Warehouse using Apache Spark This module teaches how to explore data stored in a data lake, transform the data, and load data into a relational data store. The student will explore Parquet and JSON files and use techniques to query and transform JSON files with hierarchical structures. Then the student will use Apache Spark to load data into the data warehouse and join Parquet data in the data lake with data in the dedicated SQL pool. Understand big data engineering with Apache Spark in Azure Synapse Analytics Ingest data with Apache Spark notebooks in Azure Synapse Analytics Transform data with DataFrames in Apache Spark Pools in Azure Synapse Analytics Integrate SQL and Apache Spark pools in Azure Synapse Analytics Lab 5: Explore, transform, and load data into the Data Warehouse using Apache Spark Perform Data Exploration in Synapse Studio Ingest data with Spark notebooks in Azure Synapse Analytics Transform data with DataFrames in Spark pools in Azure Synapse Analytics Integrate SQL and Spark pools in Azure Synapse Analytics After completing module 5, students will be able to: Describe big data engineering with Apache Spark in Azure Synapse Analytics Ingest data with Apache Spark notebooks in Azure Synapse Analytics Transform data with DataFrames in Apache Spark Pools in Azure Synapse Analytics Integrate SQL and Apache Spark pools in Azure Synapse Analytics Module 6: Data exploration and transformation in Azure Databricks This module teaches how to use various Apache Spark DataFrame methods to explore and transform data in Azure Databricks. The student will learn how to perform standard DataFrame methods to explore and transform data. They will also learn how to perform more advanced tasks, such as removing duplicate data, manipulate date/time values, rename columns, and aggregate data. Describe Azure Databricks Read and write data in Azure Databricks Work with DataFrames in Azure Databricks Work with DataFrames advanced methods in Azure Databricks Lab 6: Data Exploration and Transformation in Azure Databricks Use DataFrames in Azure Databricks to explore and filter data Cache a DataFrame for faster subsequent queries Remove duplicate data Manipulate date/time values Remove and rename DataFrame columns Aggregate data stored in a DataFrame After completing module 6, students will be able to: Describe Azure Databricks Read and write data in Azure Databricks Work with DataFrames in Azure Databricks Work with DataFrames advanced methods in Azure Databricks Module 7: Ingest and load data into the data warehouse This module teaches students how to ingest data into the data warehouse through T-SQL scripts and Synapse Analytics integration pipelines. The student will learn how to load data into Synapse dedicated SQL pools with PolyBase and COPY using T-SQL. The student will also learn how to use workload management along with a Copy activity in a Azure Synapse pipeline for petabyte-scale data ingestion. Use data loading best practices in Azure Synapse Analytics Petabyte-scale ingestion with Azure Data Factory Lab 7: Ingest and load Data into the Data Warehouse Perform petabyte-scale ingestion with Azure Synapse Pipelines Import data with PolyBase and COPY using T-SQL Use data loading best practices in Azure Synapse Analytics After completing module 7, students will be able to: Use data loading best practices in Azure Synapse Analytics Petabyte-scale ingestion with Azure Data Factory Module 8: Transform data with Azure Data Factory or Azure Synapse Pipelines This module teaches students how to build data integration pipelines to ingest from multiple data sources, transform data using mapping data flowss, and perform data movement into one or more data sinks. Data integration with Azure Data Factory or Azure Synapse Pipelines Code-free transformation at scale with Azure Data Factory or Azure Synapse Pipelines Lab 8: Transform Data with Azure Data Factory or Azure Synapse Pipelines Execute code-free transformations at scale with Azure Synapse Pipelines Create data pipeline to import poorly formatted CSV files Create Mapping Data Flows After completing module 8, students will be able to: Perform data integration with Azure Data Factory Perform code-free transformation at scale with Azure Data Factory Module 9: Orchestrate data movement and transformation in Azure Synapse Pipelines In this module, you will learn how to create linked services, and orchestrate data movement and transformation using notebooks in Azure Synapse Pipelines. Orchestrate data movement and transformation in Azure Data Factory Lab 9: Orchestrate data movement and transformation in Azure Synapse Pipelines Integrate Data from Notebooks with Azure Data Factory or Azure Synapse Pipelines After completing module 9, students will be able to: Orchestrate data movement and transformation in Azure Synapse Pipelines Module 10: Optimize query performance with dedicated SQL pools in Azure Synapse In this module, students will learn strategies to optimize data storage and processing when using dedicated SQL pools in Azure Synapse Analytics. The student will know how to use developer features, such as windowing and HyperLogLog functions, use data loading best practices, and optimize and improve query performance. Optimize data warehouse query performance in Azure Synapse Analytics Understand data warehouse developer features of Azure Synapse Analytics Lab 10: Optimize Query Performance with Dedicated SQL Pools in Azure Synapse Understand developer features of Azure Synapse Analytics Optimize data warehouse query performance in Azure Synapse Analytics Improve query performance After completing module 10, students will be able to: Optimize data warehouse query performance in Azure Synapse Analytics Understand data warehouse developer features of Azure Synapse Analytics Module 11: Analyze and Optimize Data Warehouse Storage In this module, students will learn how to analyze then optimize the data storage of the Azure Synapse dedicated SQL pools. The student will know techniques to understand table space usage and column store storage details. Next the student will know how to compare storage requirements between identical tables that use different data types. Finally, the student will observe the impact materialized views have when executed in place of complex queries and learn how to avoid extensive logging by optimizing delete operations. Analyze and optimize data warehouse storage in Azure Synapse Analytics Lab 11: Analyze and Optimize Data Warehouse Storage Check for skewed data and space usage Understand column store storage details Study the impact of materialized views Explore rules for minimally logged operations After completing module 11, students will be able to: Analyze and optimize data warehouse storage in Azure Synapse Analytics Module 12: Support Hybrid Transactional Analytical Processing (HTAP) with Azure Synapse Link In this module, students will learn how Azure Synapse Link enables seamless connectivity of an Azure Cosmos DB account to a Synapse workspace. The student will understand how to enable and configure Synapse link, then how to query the Azure Cosmos DB analytical store using Apache Spark and SQL serverless. Design hybrid transactional and analytical processing using Azure Synapse Analytics Configure Azure Synapse Link with Azure Cosmos DB Query Azure Cosmos DB with Apache Spark pools Query Azure Cosmos DB with serverless SQL pools Lab 12: Support Hybrid Transactional Analytical Processing (HTAP) with Azure Synapse Link Configure Azure Synapse Link with Azure Cosmos DB Query Azure Cosmos DB with Apache Spark for Synapse Analytics Query Azure Cosmos DB with serverless SQL pool for Azure Synapse Analytics After completing module 12, students will be able to: Design hybrid transactional and analytical processing using Azure Synapse Analytics Configure Azure Synapse Link with Azure Cosmos DB Query Azure Cosmos DB with Apache Spark for Azure Synapse Analytics Query Azure Cosmos DB with SQL serverless for Azure Synapse Analytics Module 13: End-to-end security with Azure Synapse Analytics In this module, students will learn how to secure a Synapse Analytics workspace and its supporting infrastructure. The student will observe the SQL Active Directory Admin, manage IP firewall rules, manage secrets with Azure Key Vault and access those secrets through a Key Vault linked service and pipeline activities. The student will understand how to implement column-level security, row-level security, and dynamic data masking when using dedicated SQL pools. Secure a data warehouse in Azure Synapse Analytics Configure and manage secrets in Azure Key Vault Implement compliance controls for sensitive data Lab 13: End-to-end security with Azure Synapse Analytics Secure Azure Synapse Analytics supporting infrastructure Secure the Azure Synapse Analytics workspace and managed services Secure Azure Synapse Analytics workspace data After completing module 13, students will be able to: Secure a data warehouse in Azure Synapse Analytics Configure and manage secrets in Azure Key Vault Implement compliance controls for sensitive data Module 14: Real-time Stream Processing with Stream Analytics In this module, students will learn how to process streaming data with Azure Stream Analytics. The student will ingest vehicle telemetry data into Event Hubs, then process that data in real time, using various windowing functions in Azure Stream Analytics. They will output the data to Azure Synapse Analytics. Finally, the student will learn how to scale the Stream Analytics job to increase throughput. Enable reliable messaging for Big Data applications using Azure Event Hubs Work with data streams by using Azure Stream Analytics Ingest data streams with Azure Stream Analytics Lab 14: Real-time Stream Processing with Stream Analytics Use Stream Analytics to process real-time data from Event Hubs Use Stream Analytics windowing functions to build aggregates and output to Synapse Analytics Scale the Azure Stream Analytics job to increase throughput through partitioning Repartition the stream input to optimize parallelization After completing module 14, students will be able to: Enable reliable messaging for Big Data applications using Azure Event Hubs Work with data streams by using Azure Stream Analytics Ingest data streams with Azure Stream Analytics Module 15: Create a Stream Processing Solution with Event Hubs and Azure Databricks In this module, students will learn how to ingest and process streaming data at scale with Event Hubs and Spark Structured Streaming in Azure Databricks. The student will learn the key features and uses of Structured Streaming. The student will implement sliding windows to aggregate over chunks of data and apply watermarking to remove stale data. Finally, the student will connect to Event Hubs to read and write streams. Process streaming data with Azure Databricks structured streaming Lab 15: Create a Stream Processing Solution with Event Hubs and Azure Databricks Explore key features and uses of Structured Streaming Stream data from a file and write it out to a distributed file system Use sliding windows to aggregate over chunks of data rather than all data Apply watermarking to remove stale data Connect to Event Hubs read and write streams After completing module 15, students will be able to: Process streaming data with Azure Databricks structured streaming Module 16: Build reports using Power BI integration with Azure Synpase Analytics In this module, the student will learn how to integrate Power BI with their Synapse workspace to build reports in Power BI. The student will create a new data source and Power BI report in Synapse Studio. Then the student will learn how to improve query performance with materialized views and result-set caching. Finally, the student will explore the data lake with serverless SQL pools and create visualizations against that data in Power BI. Create reports with Power BI using its integration with Azure Synapse Analytics Lab 16: Build reports using Power BI integration with Azure Synpase Analytics Integrate an Azure Synapse workspace and Power BI Optimize integration with Power BI Improve query performance with materialized views and result-set caching Visualize data with SQL serverless and create a Power BI report After completing module 16, students will be able to: Create reports with Power BI using its integration with Azure Synapse Analytics Module 17: Perform Integrated Machine Learning Processes in Azure Synapse Analytics This module explores the integrated, end-to-end Azure Machine Learning and Azure Cognitive Services experience in Azure Synapse Analytics. You will learn how to connect an Azure Synapse Analytics workspace to an Azure Machine Learning workspace using a Linked Service and then trigger an Automated ML experiment that uses data from a Spark table. You will also learn how to use trained models from Azure Machine Learning or Azure Cognitive Services to enrich data in a SQL pool table and then serve prediction results using Power BI. Use the integrated machine learning process in Azure Synapse Analytics Lab 17: Perform Integrated Machine Learning Processes in Azure Synapse Analytics Create an Azure Machine Learning linked service Trigger an Auto ML experiment using data from a Spark table Enrich data using trained models Serve prediction results using Power BI After completing module 17, students will be able to: Use the integrated machine learning process in Azure Synapse Analytics     [-]
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3 dager 14 900 kr
Kursinnhold In this MoP Foundation & Practitioner Course participants will learn the key aspects of the Management of Portfolios (MoP) methodology. MoP helps organiza... [+]
Kursinnhold In this MoP Foundation & Practitioner Course participants will learn the key aspects of the Management of Portfolios (MoP) methodology. MoP helps organizations ensure if the investments are done in the right change initiatives and implementing them correctly. This is achieved by: Prioritizing the programs and projects in terms of their contribution to the organization’s strategic objectives and overall level of risk. Managing the programs and projects consistently to ensure efficient and effective delivery. Maximizing the benefit by providing the greatest return from the investment made. Audience: Those aimed at those involved in a range of formal and informal portfolio management roles encompassing investment decision making, project and program delivery, and benefits realization. Those involved in the selection and delivery of business change initiatives. Experienced portfolio managers, managing large and complex portfolios of change initiatives. Members of portfolio offices and senior managers (e.g., financial managers, quality managers)  involved in setting strategic goals and giving direction to the organization’s portfolio of changes. Roles: Members of Management Boards Directors of Change Senior Responsible Owners (SROs) Portfolio, program, project, business change and benefits managers Business case writers Project appraisers Learning Objectives:Individuals certified at the MoP Foundation level will have demonstrated their understanding of: Define the scope and objectives of portfolio management and how it differs from program and project management. List the benefits of applying portfolio management. Explain the context it operates in. List the principles successful portfolio management is based on. List the different approaches to implement MoP. List the factors to maintain progress and how to assess the success of portfolio management. State the purpose and key content of the major portfolio documents. Define the scope of key portfolio management roles. Individuals certified at the MoP Practitioner level will have demonstrated their understanding of: Defining the business case to get senior management approval for portfolio management. Planning the implementation of portfolio management. Selecting and adapting MoP principles, practices, and techniques to suit different organizational environments. Evaluating examples of MoP information including documents and role descriptions. Analyzing the solutions adopted in relation to a given scenario. Prerequisites: There are no formal prerequisites. However, candidates are required to have passed the MoP Foundation exam in order to be certified at the Practitioner level. Course Materials:Participants receive a copy of the classroom presentation material and the handbook, which contains reference materials. It is mandatory for participants to have the official Management of Portfolios (MoP) Book. Examination:   Foundation Exam Practitioner Exam   Exam fee is NOK 2.500,- + VAT The Foundation exam is in closed book format. The exam consists of 50 multiple choice questions. A minimum score of 50% is required to pass the exam. The exam lasts 40 minutes. Additional time may be given for certain handicaps, and if the exam is not available in the candidate’s native language. Identification is required.   Exam fee is NOK 3.400,- + VAT  The practitioner exam is in open book format. The exam consists of 8 objective type questions with 10 marks available per question. 40 marks or 50% passing rate is required to pass the exam (out of 80 available). The exam lasts 180 minutes. Additional time may be given for certain handicaps and if the exam is not available in the native language. Identification is required.   Bouvet delivers the MOP® courses in collaboration with ITPreneurs   The MoP Approved Licensed Affiliate logo is a trade mark of AXELOS Limited, used under permission of AXELOS Limited. All rights reserved. [-]
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Virtuelt klasserom 3 timer 1 750 kr
27 Jun
Tanken med dette kurset er å vise litt av hva makroer i Excel er og dermed gi deltakerne en forsmak på våre mer avanserte kurs i Visual Basic for Applications (VBA). Dett... [+]
Introduksjon til VBA   Det er fordelaktig å ha to skjermer - en til å følge kurset og en til å gjøre det kursholder demonstrerer. Kurset gjennomføres i sanntid med nettundervisning via Teams. Det blir mulighet for å stille spørsmål, ha diskusjoner, demonstrasjoner og øvelser. Du vil motta en invitasjon til Teams fra kursholder. [-]
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Oslo Og 4 andre steder 1 dag 6 900 kr
13 May
13 May
03 Jun
Kom i gang med Power BI Desktop [+]
Kom i gang med Power BI Desktop [-]
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Virtuelt klasserom 5 dager 30 350 kr
Due to the Coronavirus the course instructor is not able to come to Oslo. As an alternative we offer this course as a Blended Virtual Course. [+]
Blended Virtual CourseThe course is a hybrid of virtual training and self-study which will be a mixture of teaching using Microsoft Teams for short bursts at the beginning of the day, then setting work for the rest of the day and then coming back at the end of the day for another on-line session for any questions before setting homework in the form of practice exams for the evening. You do not have to install Microsoft Teams , you will receive a link and can access the course using the web browser.  Remote proctored examTake your exam from any location. Read about iSQI remote proctored exam here Requirements for the exam: The exam will be using Google Chrome and there is a plug-in that needs to be installed  You will need a laptop/PC with a camera and a microphone  A current ID with a picture  KursinnholdDette 5 dagers kurset er rettet mot Testledere som ønsker ytterligere kompetanse innen softwaretesting. Kurset er bygget på Foundation kursets pensum og gir grunnleggende ferdigheter for enhver Testleder. Course content On completion the Test Manager will be able to 1. Manage a testing project by implementing the mission, goals and testing processes established for the testing organisation. 2. Organise and lead risk identification and risk analysis sessions and use the results of such sessions for test estimation, planning, monitoring and control. They will learn specific risk mitigation activities to determine residual risk and can report them to project stakeholders so that informed decisions can be made. 3. Create and implement test plans consistent with the organisational policies and test strategies. 4. Estimate test effort and resource usage for projects using a variety of estimation techniques. 5. Continuously monitor and control the test activities to achieve project objectives. 6. Assess and report relevant and timely test status to project stakeholders. 7. Identify skills and resource gaps in their test team and participate in sourcing adequate resources. 8. Identify and plan necessary skills development within their test team. 9. Process a business case for test activities, which outlines the cost and benefits expected. 10. Ensure proper communication within the test team and with other project stakeholders. 11. Participate in and lead test process improvement initiatives. 12. Plan and implement the selection of different types of tools, including open-source and custom-built tools, such that risks, costs, benefits and opportunities are adequately considered. Course material The course is highly practical and laptops are recommended. Utilities, tools and templates will be provided during the course to help the Test Manager in their daily tasks. Exam The ISTQB Advanced TM exam is a 3-hour multiple choice exam with the pass mark being 65%. There is an extra 45 minutes allowed for candidates whose first language is not English.You must hold the ISTQB Foundation certificate in software testing in order to sit this exam. The exam is a remote proctored exam. [-]
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Bedriftsintern 3 dager 27 000 kr
In this course, application developers learn how to design, develop, and deploy applications that seamlessly integrate components from the Google Cloud ecosystem. [+]
Through a combination of presentations, demos, and hands-on labs, participants learn how to use GCP services and pre-trained machine learning APIs to build secure, scalable, and intelligent cloud-native applications. Objectives This course teaches participants the following skills: Use best practices for application development Choose the appropriate data storage option for application data Implement federated identity management Develop loosely coupled application components or microservices Integrate application components and data sources Debug, trace, and monitor applications Perform repeatable deployments with containers and deployment services Choose the appropriate application runtime environment; use Google Container Engine as a runtime environment and later switch to a no-ops solution with Google App Engine Flex All courses will be delivered in partnership with ROI Training, Google Cloud Premier Partner, using a Google Authorized Trainer. Course Outline Module 1: Best Practices for Application Development -Code and environment management-Design and development of secure, scalable, reliable, loosely coupled application components and microservices-Continuous integration and delivery-Re-architecting applications for the cloud Module 2: Google Cloud Client Libraries, Google Cloud SDK, and Google Firebase SDK -How to set up and use Google Cloud Client Libraries, Google Cloud SDK, and Google Firebase SDK-Lab: Set up Google Client Libraries, Google Cloud SDK, and Firebase SDK on a Linux instance and set up application credentials Module 3: Overview of Data Storage Options -Overview of options to store application data-Use cases for Google Cloud Storage, Google Cloud Datastore, Cloud Bigtable, Google Cloud SQL, and Cloud Spanner Module 4: Best Practices for Using Cloud Datastore -Best practices related to the following:-Queries-Built-in and composite indexes-Inserting and deleting data (batch operations)-Transactions-Error handling-Bulk-loading data into Cloud Datastore by using Google Cloud Dataflow-Lab: Store application data in Cloud Datastore Module 5: Performing Operations on Buckets and Objects -Operations that can be performed on buckets and objects-Consistency model-Error handling Module 6: Best Practices for Using Cloud Storage -Naming buckets for static websites and other uses-Naming objects (from an access distribution perspective)-Performance considerations-Setting up and debugging a CORS configuration on a bucket-Lab: Store files in Cloud Storage Module 7: Handling Authentication and Authorization -Cloud Identity and Access Management (IAM) roles and service accounts-User authentication by using Firebase Authentication-User authentication and authorization by using Cloud Identity-Aware Proxy-Lab: Authenticate users by using Firebase Authentication Module 8: Using Google Cloud Pub/Sub to Integrate Components of Your Application -Topics, publishers, and subscribers-Pull and push subscriptions-Use cases for Cloud Pub/Sub-Lab: Develop a backend service to process messages in a message queue Module 9: Adding Intelligence to Your Application -Overview of pre-trained machine learning APIs such as Cloud Vision API and Cloud Natural Language Processing API Module 10: Using Cloud Functions for Event-Driven Processing -Key concepts such as triggers, background functions, HTTP functions-Use cases-Developing and deploying functions-Logging, error reporting, and monitoring Module 11: Managing APIs with Google Cloud Endpoints -Open API deployment configuration-Lab: Deploy an API for your application Module 12: Deploying an Application by Using Google Cloud Build, Google Cloud Container Registry, and Google Cloud Deployment Manager -Creating and storing container images-Repeatable deployments with deployment configuration and templates-Lab: Use Deployment Manager to deploy a web application into Google App Engine flexible environment test and production environments Module 13: Execution Environments for Your Application -Considerations for choosing an execution environment for your application or service:-Google Compute Engine-Kubernetes Engine-App Engine flexible environment-Cloud Functions-Cloud Dataflow-Lab: Deploying your application on App Engine flexible environment Module 14: Debugging, Monitoring, and Tuning Performance by Using Google Stackdriver -Stackdriver Debugger-Stackdriver Error Reporting-Lab: Debugging an application error by using Stackdriver Debugger and Error Reporting-Stackdriver Logging-Key concepts related to Stackdriver Trace and Stackdriver Monitoring.-Lab: Use Stackdriver Monitoring and Stackdriver Trace to trace a request across services, observe, and optimize performance [-]
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Virtuelt klasserom 3 dager 20 000 kr
This course teaches Network Engineers how to design, implement, and maintain Azure networking solutions. [+]
COURSE OVERVIEW  This course covers the process of designing, implementing, and managing core Azure networking infrastructure, Hybrid Networking connections, load balancing traffic, network routing, private access to Azure services, network security and monitoring. Learn how to design and implement a secure, reliable, network infrastructure in Azure and how to establish hybrid connectivity, routing, private access to Azure services, and monitoring in Azure. TARGET AUDIENCE This course is aimed at Network Engineers looking to specialize in Azure networking solutions. An Azure Network engineer designs and implements core Azure networking infrastructure, hybrid networking connections, load balance traffic, network routing, private access to Azure services, network security and monitoring. The azure network engineer will manage networking solutions for optimal performance, resiliency, scale, and security. COURSE CONTENT Module 1: Azure Virtual Networks In this module you will learn how to design and implement fundamental Azure Networking resources such as virtual networks, public and private IPs, DNS, virtual network peering, routing, and Azure Virtual NAT. Azure Virtual Networks Public IP Services Public and Private DNS Cross-VNet connectivity Virtual Network Routing Azure virtual Network NAT Lab 1: Design and implement a Virtual Network in Azure Lab 2: Configure DNS settings in Azure Lab 3: Connect Virtual Networks with Peering After completing module 1, students will be able to: Implement virtual networks Configure public IP services Configure private and public DNS zones Design and implement cross-VNET connectivity Implement virtual network routing Design and implement an Azure Virtual Network NAT   Module 2: Design and Implement Hybrid Networking In this module you will learn how to design and implement hybrid networking solutions such as Site-to-Site VPN connections, Point-to-Site VPN connections, Azure Virtual WAN and Virtual WAN hubs. Site-to-site VPN connection Point-to-Site VP connections Azure Virtual WAN Lab 4: Create and configure a local gateway Create and configure a virtual network gateway Create a Virtual WAN by using Azure Portal Design and implement a site-to-site VPN connection Design and implement a point-to-site VPN connection Design and implement authentication Design and implement Azure Virtual WAN Resources   Module 3: Design and implement Azure ExpressRoute In this module you will learn how to design and implement Azure ExpressRoute, ExpressRoute Global Reach, ExpressRoute FastPath and ExpressRoute Peering options. ExpressRoute ExpressRoute Direct ExpressRoute FastPath ExpressRoute Peering Lab 5: Create and configure ExpressRoute Design and implement Expressroute Design and implement Expressroute Direct Design and implement Expressroute FastPath   Module 4: load balancing non-HTTP(S) traffic in Azure In this module you will learn how to design and implement load balancing solutions for non-HTTP(S) traffic in Azure with Azure Load balancer and Traffic Manager. Content Delivery and Load Blancing Azure Load balancer Azure Traffic Manager Azure Monitor Network Watcher Lab 6: Create and configure a public load balancer to load balance VMs using the Azure portal Lab:7 Create a Traffic Manager Profile using the Azure portal Lab 8: Create, view, and manage metric alerts in Azure Monitor Design and implement Azure Laod Balancers Design and implement Azure Traffic Manager Monitor Networks with Azure Monitor Use Network Watcher   Module 5: Load balancing HTTP(S) traffic in Azure In this module you will learn how to design and implement load balancing solutions for HTTP(S) traffic in Azure with Azure Application gateway and Azure Front Door. Azure Application Gateway Azure Front Door Lab 9: Create a Front Door for a highly available web application using the Azure portal Lab 10: Create and Configure an Application Gateway Design and implement Azure Application Gateway Implement Azure Front Door   Module 6: Design and implement network security In this module you will learn to design and imponent network security solutions such as Azure DDoS, Azure Firewalls, Network Security Groups, and Web Application Firewall. Azure DDoS Protection Azure Firewall Network Security Groups Web Application Firewall on Azure Front Door Lab 11: Create a Virtual Network with DDoS protection plan Lab 12: Deploy and Configure Azure Firewall Lab 13: Create a Web Application Firewall policy on Azure Front Door Configure and monitor an Azure DDoS protection plan implement and manage Azure Firewall Implement network security groups Implement a web application firewall (WAF) on Azure Front Door   Module 7: Design and implement private access to Azure Services In this module you will learn to design and implement private access to Azure Services with Azure Private Link, and virtual network service endpoints. Define Azure Private Link and private endpoints Design and Configure Private Endpoints Integrate a Private Link with DNS and on-premises clients Create, configure, and provide access to Service Endpoints Configure VNET integration for App Service Lab 14: restrict network access to PaaS resources with virtual network service endpoints Lab 15: create an Azure private endpoint Define the difference between Private Link Service and private endpoints Design and configure private endpoints Explain virtual network service endpoints Design and configure access to service endpoints Integrate Private Link with DNS Integrate your App Service with Azure virtual networks   TEST CERTIFICATION This course helps to prepare for exam AZ-700 [-]
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Virtuelt klasserom 2 dager 6 900 kr
Dette er kurset som passer for deg som har basisferdighetene på plass og som ønsker å lære flere avanserte muligheter i programmet. Her kan du virkelig lære hvordan ... [+]
Kursinstruktør   Geir Johan Gylseth Geir Johan Gylseth er utdannet ved Universitetet i Oslo med hovedvekt på Informatikk og har over 30 års erfaring som instruktør. Geir sin styrke ligger innenfor MS Office. Han har lang erfaring med skreddersøm av kurs, kursmanualer og oppgaver. Geir er en entusiastisk og dyktig instruktør som får meget gode evalueringer. Kursinstruktør   Jonny Austad Jonny Austad er utdannet som Adjunkt og har jobbet som lærer og instruktør siden 1989. Han har dessuten jobbet mye med support og drifting av nettverk og vet som oftest hva som er vanlige problemer ute i bedriftene. Han var den første Datakort-læreren i landet (høsten 1997), og har Office-pakken med spesielt Excel som sitt hjertebarn. Jonny er en meget hyggelig og utadvendt person som elsker å undervise med smarte løsninger på problemer samt vise smarte tips og triks i de ulike programmene. Kursinnhold Kurset passer for deg som har basisferdighetene på plass men som ønsker å lære mer. Kurset passer også for deg som er selvlært og som ønsker å jobbe mer effektivt. Bruk av stiler gir profesjonelle og flotte dokumenter. Lær å lage innholdsfortegnelse, stikkordliste og figurliste automatisk. Profesjonelt sideoppsett med spalter, marger, sidefarger, sidekantlinjer og dokumenttemaer. Auto korrektur, byggeblokker, egenskaper og felt gjør det enklere å gjenbruke tekst. Flere deldokumenter kan samles i et hoved dokument ved hjelp av hoveddokumentvisning. I lange dokumenter kan du ha uliketopp- og bunntekster og selv bestemme side nummerering. For å friske opp et dokument kan du sette inn utklipp, figurer, SmartArt og diagram. Med tekstbokser kan du presentere sitater eller sammendrag fra dokumentet. Tabeller kan brukes til å presentere informasjon på en oversiktlig måte men kan også sorteres og inneholde beregninger. Maler brukes for å sikre at dokumenter av samme type får en ensartet formatering. Felt, innholdskontroller og skjemakontroller kan settes inn for å effektivisere bruken av maler. Med makroer kan du effektivisere avanserte oppgaver som består av serie med handlinger. Med fletting kan du masseprodusere brev, konvolutter, etiketter og e-post. I tillegg får du en rekke tips og triks du kan bruke i din arbeidsdag.  Alt du lærer får du repetert gjennom aktiv oppgaveløsning slik at du husker det du har lært når du kommer tilbake på jobb. Kursdokumentasjon, lunsj og pausemat er selvsagt inkludert! Kursholderne har mer enn 20 års Word erfaring som de gjerne deler med deg! Meld deg på Word-kurs allerede i dag og sikre deg plass! Lær deg: behandling av stiler rask og enkel opprettelse av innholdsfortegnelse sette inn forsider samarbeid om felles dokument spalter beregninger i tabeller innsetting av diagram sett inn bilder og bildetekst grafikk og tegning maler og skjema bruk av makroer integrasjon med Excel og andre programmer [-]
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Bedriftsintern 3 dager 27 000 kr
This three-day instructor-led class introduces participants to the comprehensive and flexible infrastructure and platform services provided by Google Cloud, with a focus ... [+]
Through a combination of presentations, demos, and hands-on labs, participants explore and deploy solution elements, including infrastructure components such as networks, systems, and application services. This course also covers deploying practical solutions including securely interconnecting networks, customer-supplied encryption keys, security and access management, quotas and billing, and resource monitoring. Course Objectives This course teaches participants the following skills: Configure VPC networks and virtual machines Administer Identity and Access Management for resources Implement data storage services in Google Cloud Manage and examine billing of Google Cloud resources Monitor resources using Google Cloud services Connect your infrastructure to Google Cloud Configure load balancers and autoscaling for VM instances Automate the deployment of Google Cloud infrastructure services Leverage managed services in Google Cloud All courses will be delivered in partnership with ROI Training, Google Cloud Premier Partner, using a Google Authorized Trainer. Course Outline Module 1: Introduction to Google Cloud -List the different ways of interacting with Google Cloud-Use the Cloud Console and Cloud Shell-Create Cloud Storage buckets-Use the Google Cloud Marketplace to deploy solutions Module 2: Virtual Networks -List the VPC objects in Google Cloud-Differentiate between the different types of VPC networks-Implement VPC networks and firewall rules-Implement Private Google Access and Cloud NAT Module 3: Virtual Machines -Recall the CPU and memory options for virtual machines-Describe the disk options for virtual machines-Explain VM pricing and discounts-Use Compute Engine to create and customize VM instances Module 4: Cloud IAM -Describe the Cloud IAM resource hierarchy-Explain the different types of IAM roles-Recall the different types of IAM members-Implement access control for resources using Cloud IAM Module 5: Data Storage Services -Differentiate between Cloud Storage, Cloud SQL, Cloud Spanner, Cloud Firestore and Cloud Bigtable-Choose a data storage service based on your requirements-Implement data storage services Module 6: Resource Management -Describe the cloud resource manager hierarchy-Recognize how quotas protect Google Cloud customers-Use labels to organize resources-Explain the behavior of budget alerts in Google Cloud-Examine billing data with BigQuery Module 7: Resource Monitoring -Describe the services for monitoring, logging, error reporting, tracing, and debugging-Create charts, alerts, and uptime checks for resources with Cloud Monitoring-Use Cloud Debugger to identify and fix errors Module 8: Interconnecting Networks -Recall the Google Cloud interconnect and peering services available to connect your infrastructure to Google Cloud-Determine which Google Cloud interconnect or peering service to use in specific circumstances-Create and configure VPN gateways-Recall when to use Shared VPC and when to use VPC Network Peering Module 9: Load Balancing and Autoscaling -Recall the various load balancing services-Determine which Google Cloud load balancer to use in specific circumstances-Describe autoscaling behavior-Configure load balancers and autoscaling Module 10: Infrastructure Modernization -Automate the deployment of Google Cloud services using Deployment Manager or Terraform-Outline the Google Cloud Marketplace Module 11: Managed Services Describe the managed services for data processing in Google Cloud [-]
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3 dager 15 900 kr
MoP® gir deg rammeverket for å definere og gjennomføre endringsinitiativer gjennom effektiv porteføljestyring. Vi arrangerer sertifiseringskurset med norsk instruktø... [+]
Bli sertifisert i beste praksis innen porteføljestyring av prosjekter og programmer!Ønsker du å lære hvordan du sikrer en optimal prioritering av virksomhetens investeringer slik at de bidrar til å nå virksomhetens strategiske mål? Da trenger du gode verktøy og teknikker for å identifisere og prioritere blant ulike prosjekter samt å få god oversikt over alle ønskede gevinster. Det får du på dette kurset! MoP® gir deg rammeverket for å definere og gjennomføre endringsinitiativer gjennom effektiv porteføljestyring. Vi arrangerer sertifiseringskurset med svært dyktig instruktør. Undervisningen foregår på norsk og det benyttes norsk  begrepsapparat.   Læringsutbytte I kurset vil du vil bli godt kjent med prinsipper, teknikker og internasjonalt anerkjent beste praksis knyttet til organisering, utvelgelse og prioritering av investeringer i en portefølje. Du vil lære å investere i de riktige prosjektene og programmene, å kunne avslutte prosjekter som ikke er lønnsomme, samt å utnytte muligheter og håndtere risiko på en effektiv måte.  Innhold i kurset MoP® Foundation kurset inneholder følgende elementer: •  Introduksjon til MoP® •  5 fleksible prinsipper•  2 sykluser•  12 porteføljestyringspraksiser•  MoP®-sertifisering/eksamen siste kursdag For mer informasjon, besøk Axelos sine sider Kursdetaljer og forberedelser MoP® Foundation kurset går over 3 dager. I etterkant av kurset gjennomfører du en online eksamen. Pensumbok og eksamen er på engelsk, men undervisningen i kurset er på norsk. Kursholder kobler sammen de engelske og norske begrepene i kurset. Papirbasert eksamen Eksamen gjennomføres i klasserommet - på papir (multiple choice), siste kursdag. Det er også mulig å gjennomføre eksamen online fra din PC, i etterkant av kurset og innen 12 måneder. Merk at du må ha kamera på maskinen din. I så tilfelle må du gi oss beskjed ved oppstart av kurset. Kursholder vil også informere om eksamen i starten av kurset. Eksamen • 40 minutter• 50 multiple choice spørsmål• 50 % riktig besvart = bestått sertifisering• Hjelpemidler er ikke tiltatt• Eksamen er på engelsk Pensum (engelsk) Digital pensumbok (MoP® manualen “Management of Portfolios”) er inkludert i prisen. Du får tilgang til denne via PeopleCert sin kandidatportal PASSPORT. Denne bør gjennomgås i sin helhet i forkant av kurset og inngår som en del av eksamensforberedelsene. Holte Academy er akkreditert treningsorganisasjon for MoP®. MoP® is a registered trade mark of AXELOS Limited, used under permission of AXELOS Limited. All rights reserved.  [-]
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Bedriftsintern 3 dager 17 500 kr
This workshop will teach you Spring Framework basics and dives into Spring Boot and Spring Cloud to create Microservices. [+]
This workshop will teach you Spring Framework basics and dives into Spring Boot and Spring Cloud to create Microservices.Introduction     Design goals and principles     IOC and dependency injection     Spring Ecosystem Spring Framework     Spring Beans     Java Configuration, Annotation Based Configuration     Dependency injection, beans and properties     Bean Lifecycle     Property Sources, Environment abstraction Spring Boot     Starters, AutoConfiguration, Properties, Actuators     Devtools, LiveReload, debugging     Testing, Test-Properties     Packaging, Logging, YAML, Profiles     Actuator, Monitoring     Data Access with JPA     Restservices with Spring MVC and Spring Data Rest     Security     Custom Spring Boot Starters Microservices     Twelve-factor Apps     Overview of Microservices with Spring Boot / Spring Cloud     Orchestrating a Microservice system with Spring Cloud Netflix stack After the workshop, the participants will be able to independently create web applications using the technologies and frameworks used in the workshop. [-]
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Oslo 1 dag 9 500 kr
03 Jun
03 Jun
AI-050: Develop Generative AI Solutions with Azure OpenAI Service [+]
AI-050: Develop Generative AI Solutions with Azure OpenAI Service [-]
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