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Produkt zum Begriff Data-Analytics:


  • Digital Marketing Analytics: Making Sense of Consumer Data in a Digital World
    Digital Marketing Analytics: Making Sense of Consumer Data in a Digital World

    Distill Maximum Value from Your Digital Data! Do It Now!Why hasn’t all that data delivered a whopping competitive advantage? Because you’ve barely begun to use it, that’s why! Good news: neither have your competitors. It’s hard! But digital marketing analytics is 100% doable, it offers colossal opportunities, and all of the data is accessible to you. Chuck Hemann and Ken Burbary will help you chop the problem down to size, solve every piece of the puzzle, and integrate a virtually frictionless system for moving from data to decision, action to results! Scope it out, pick your tools, learn to listen, get the metrics right, and then distill your digital data for maximum value for everything from R&D to customer service to social media marketing!Prioritize—because you can’t measure and analyze everything Use analysis to craft experiences that profoundly reflect each customer’s needs, expectations, and behaviors Measure real digital media ROI: sales, leads, and customer satisfaction Track the performance of all paid, earned, and owned digital channels Leverage digital data way beyond PR and marketing: for strategic planning, product development, and HR Start optimizing digital content in real time Implement advanced tools, processes, and algorithms for accurately measuring influence Make the most of surveys, focus groups, and offline research synergies Focus new marketing investments where they’ll deliver the most value • Identify and understand your most important audiences across the digital ecosystem“Chuck and Ken lead marketers clearly and efficiently through the minefield of digital marketing measurement. And they do so with a lightness of touch and absence of jargon so rare in this overhyped, much-misunderstood ecosystem.” —Sam Knowles, Founder & MD of Insight Agents; author of Narrative by Numbers: How to Tell Powerful & Purposeful Stories with Data

    Preis: 29.95 € | Versand*: 0 €
  • Getting Started with Data Science: Making Sense of Data with Analytics
    Getting Started with Data Science: Making Sense of Data with Analytics

    Master Data Analytics Hands-On by Solving Fascinating Problems You’ll Actually Enjoy!Harvard Business Review recently called data science “The Sexiest Job of the 21st Century.” It’s not just sexy: For millions of managers, analysts, and students who need to solve real business problems, it’s indispensable. Unfortunately, there’s been nothing easy about learning data science–until now.Getting Started with Data Science takes its inspiration from worldwide best-sellers like Freakonomics and Malcolm Gladwell’s Outliers: It teaches through a powerful narrative packed with unforgettable stories.Murtaza Haider offers informative, jargon-free coverage of basic theory and technique, backed with plenty of vivid examples and hands-on practice opportunities. Everything’s software and platform agnostic, so you can learn data science whether you work with R, Stata, SPSS, or SAS. Best of all, Haider teaches a crucial skillset most data science books ignore: how to tell powerful stories using graphics and tables. Every chapter is built around real research challenges, so you’ll always know why you’re doing what you’re doing.You’ll master data science by answering fascinating questions, such as:• Are religious individuals more or less likely to have extramarital affairs?• Do attractive professors get better teaching evaluations?• Does the higher price of cigarettes deter smoking?• What determines housing prices more: lot size or the number of bedrooms?• How do teenagers and older people differ in the way they use social media?• Who is more likely to use online dating services?• Why do some purchase iPhones and others Blackberry devices?• Does the presence of children influence a family’s spending on alcohol?For each problem, you’ll walk through defining your question and the answers you’ll need; exploring howothers have approached similar challenges; selecting your data and methods; generating your statistics;organizing your report; and telling your story. Throughout, the focus is squarely on what matters most:transforming data into insights that are clear, accurate, and can be acted upon.

    Preis: 18.18 € | Versand*: 0 €
  • Predictive Analytics: Data Mining, Machine Learning and Data Science for Practitioners
    Predictive Analytics: Data Mining, Machine Learning and Data Science for Practitioners

    Use Predictive Analytics to Uncover Hidden Patterns and Correlations and Improve Decision-MakingUsing predictive analytics techniques, decision-makers can uncover hidden patterns and correlations in their data and leverage these insights to improve many key business decisions. In this thoroughly updated guide, Dr. Dursun Delen illuminates state-of-the-art best practices for predictive analytics for both business professionals and students. Delen's holistic approach covers key data mining processes and methods, relevant data management techniques, tools and metrics, advanced text and web mining, big data integration, and much more. Balancing theory and practice, Delen presents intuitive conceptual illustrations, realistic example problems, and real-world case studiesincluding lessons from failed projects. It's all designed to help you gain a practical understanding you can apply for profit.* Leverage knowledge extracted via data mining to make smarter decisions* Use standardized processes and workflows to make more trustworthy predictions* Predict discrete outcomes (via classification), numeric values (via regression), and changes over time (via time-series forecasting)* Understand predictive algorithms drawn from traditional statistics and advanced machine learning* Discover cutting-edge techniques, and explore advanced applications ranging from sentiment analysis to fraud detection

    Preis: 37.44 € | Versand*: 0 €
  • Digital Analytics Primer
    Digital Analytics Primer

    Learn the concepts and methods for creating economic and business value with digital analytics, mobile analytics, web analytics, and market research and social media data. In Digital Analytics Primer, pioneering expert Judah Phillips introduces the concepts, terms, and methods that comprise the science and art of digital analysis for web, site, social, video, and other types of quantitative and qualitative data. Business readers—from new practitioners to experienced executives—who want to understand how digital analytics can be used to reduce costs and increase profitable revenue throughout the business should read this book. Phillips delivers a comprehensive review of the core concepts, vocabulary, and frameworks, including analytical methods and tools that can help you successfully integrate analytical processes, technology, and people into all aspects of business operations. This unbiased and product-independent primer draws from the author's extensive experience doing and managing analytics in this field.

    Preis: 13.9 € | Versand*: 0 €
  • Hat jemand Erfahrung mit der Weiterbildung in Data Analyse?

    Ja, viele Personen haben Erfahrung mit Weiterbildungen in Data Analyse. Es gibt verschiedene Programme und Kurse, die speziell auf die Bedürfnisse von Datenanalytikern zugeschnitten sind. Es kann hilfreich sein, sich nach Empfehlungen von Personen umzuhören, die bereits eine solche Weiterbildung absolviert haben, um die beste Option für die individuellen Bedürfnisse zu finden.

  • Sind "data" und "data" beim USB-Kabel TX und RX?

    Nein, "data" und "data" beziehen sich nicht auf die TX (Transmit) und RX (Receive) Pins beim USB-Kabel. Beim USB-Kabel gibt es vier Pins: VCC (Stromversorgung), GND (Masse), D+ (Datenleitung) und D- (Datenleitung). Die TX- und RX-Pins werden normalerweise bei seriellen Kommunikationsschnittstellen wie UART verwendet.

  • Welche Förderungsmaßnahme gibt es für Data Analysts bzw. Data Scientists?

    Es gibt verschiedene Förderungsmaßnahmen für Data Analysts und Data Scientists, je nach Land und Organisation. Zum Beispiel bieten Universitäten und Forschungseinrichtungen Stipendien und Forschungsprojekte an. Unternehmen können auch Weiterbildungsprogramme und Schulungen für ihre Mitarbeiter anbieten. Darüber hinaus gibt es auch staatliche Förderprogramme und Stipendien für Studierende und Forscher in diesem Bereich.

  • Will Klarna online banking data?

    Klarna does not provide online banking services. It is a payment solutions provider that allows customers to make purchases online and pay later or in installments. Klarna may require certain personal and financial information to process payments, but it does not have access to or store online banking data.

Ähnliche Suchbegriffe für Data-Analytics:


  • SQL Mastery for Data Analytics & Reporting John Academy Code
    SQL Mastery for Data Analytics & Reporting John Academy Code

    Entdecken Sie die Macht der Daten mit unserem Kurs „SQL Masterclass: SQL für Datenanalyse" . Dieser Kurs richtet sich sowohl an Anfänger als auch an Profis, die SQL für die Datenanalyse verwenden möchten. Erfahren Sie, wie Sie Daten mit SQL effizient strukturieren, verwalten und analysieren. So können Sie datengesteuerte Aufgaben bewältigen und fundierte Entscheidungen treffen. Merkmale: Interaktives Lernen: Nehmen Sie an praktischen SQL-Projekten und -Übungen teil und üben Sie die Manipulati...

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  • Visual Analytics Fundamentals: Creating Compelling Data Narratives with Tableau
    Visual Analytics Fundamentals: Creating Compelling Data Narratives with Tableau

    Master the Fundamentals of Modern Visual Analytics--and Craft Compelling Visual Narratives in Tableau!   Do you need to persuade or inform people? Do you have data? Then you need to master visual analytics and visual storytelling. Today, the #1 tool for telling visual stories with data is Tableau, and demand for Tableau skills is soaring. In Visual Analytics Fundamentals, renowned visual storyteller and analytics professor Lindy Ryan introduces all the fundamental visual analytics knowledge, cognitive and perceptual concepts, and hands-on Tableau techniques you'll need.   Ryan puts core analytics and visual concepts upfront, so you'll always know exactly what you're trying to accomplish and can apply this knowledge with any tool. Building on this foundation, she presents classroom-proven guided exercises for translating ideas into reality with Tableau 2022. You'll learn how to organize data and structure analysis with stories in mind, embrace exploration and visual discovery, and articulate your findings with rich data, well-curated visualizations, and skillfully crafted narrative frameworks. Ryan's insider tips take you far beyond the basics--and you'll rely on her expert checklists for years to come.   Communicate more powerfully by applying scientific knowledge of the human brain Get started with the Tableau platform and Tableau Desktop 2022 Connect data and quickly prepare it for analysis Ask questions that help you keep data firmly in context Choose the right charts, graphs, and maps for each project--and avoid the wrong ones Craft storyboards that reflect your message and audience Direct attention to what matters most Build data dashboards that guide people towards meaningful outcomes Master advanced visualizations, including timelines, Likert scales, and lollipop charts   This book has only one prerequisite: your desire to communicate insights from data in ways that are memorable and actionable. It's for executives and professionals sharing important results, students writing reports or presentations, teachers cultivating data literacy, journalists making sense of complex trends. . . . practically everyone! Don't even have Tableau? Download your free trial of Tableau Desktop and let's get started!

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  • Data Analytics for IT Networks: Developing Innovative Use Cases
    Data Analytics for IT Networks: Developing Innovative Use Cases

    Use data analytics to drive innovation and value throughout your network infrastructureNetwork and IT professionals capture immense amounts of data from their networks. Buried in this data are multiple opportunities to solve and avoid problems, strengthen security, and improve network performance. To achieve these goals, IT networking experts need a solid understanding of data science, and data scientists need a firm grasp of modern networking concepts. Data Analytics for IT Networks fills these knowledge gaps, allowing both groups to drive unprecedented value from telemetry, event analytics, network infrastructure metadata, and other network data sources. Drawing on his pioneering experience applying data science to large-scale Cisco networks, John Garrett introduces the specific data science methodologies and algorithms network and IT professionals need, and helps data scientists understand contemporary network technologies, applications, and data sources.After establishing this shared understanding, Garrett shows how to uncover innovative use cases that integrate data science algorithms with network data. He concludes with several hands-on, Python-based case studies reflecting Cisco Customer Experience (CX) engineers’ supporting its largest customers. These are designed to serve as templates for developing custom solutions ranging from advanced troubleshooting to service assurance.Understand the data analytics landscape and its opportunities in Networking See how elements of an analytics solution come together in the practical use casesExplore and access network data sources, and choose the right data for your problemInnovate more successfully by understanding mental models and cognitive biasesWalk through common analytics use cases from many industries, and adapt them to your environmentUncover new data science use cases for optimizing large networksMaster proven algorithms, models, and methodologies for solving network problemsAdapt use cases built with traditional statistical methodsUse data science to improve network infrastructure analysisAnalyze control and data planes with greater sophisticationFully leverage your existing Cisco tools to collect, analyze, and visualize data

    Preis: 43.86 € | Versand*: 0 €
  • Digital Marketing Analytics: Making Sense of Consumer Data in a Digital World
    Digital Marketing Analytics: Making Sense of Consumer Data in a Digital World

    Distill Maximum Value from Your Digital Data! Do It Now!Why hasn’t all that data delivered a whopping competitive advantage? Because you’ve barely begun to use it, that’s why! Good news: neither have your competitors. It’s hard! But digital marketing analytics is 100% doable, it offers colossal opportunities, and all of the data is accessible to you. Chuck Hemann and Ken Burbary will help you chop the problem down to size, solve every piece of the puzzle, and integrate a virtually frictionless system for moving from data to decision, action to results! Scope it out, pick your tools, learn to listen, get the metrics right, and then distill your digital data for maximum value for everything from R&D to customer service to social media marketing!Prioritize—because you can’t measure and analyze everything Use analysis to craft experiences that profoundly reflect each customer’s needs, expectations, and behaviors Measure real digital media ROI: sales, leads, and customer satisfaction Track the performance of all paid, earned, and owned digital channels Leverage digital data way beyond PR and marketing: for strategic planning, product development, and HR Start optimizing digital content in real time Implement advanced tools, processes, and algorithms for accurately measuring influence Make the most of surveys, focus groups, and offline research synergies Focus new marketing investments where they’ll deliver the most value • Identify and understand your most important audiences across the digital ecosystem“Chuck and Ken lead marketers clearly and efficiently through the minefield of digital marketing measurement. And they do so with a lightness of touch and absence of jargon so rare in this overhyped, much-misunderstood ecosystem.” —Sam Knowles, Founder & MD of Insight Agents; author of Narrative by Numbers: How to Tell Powerful & Purposeful Stories with Data

    Preis: 29.95 € | Versand*: 0 €
  • Was ist ein Data Scientist?

    Was ist ein Data Scientist? Ein Data Scientist ist ein Experte, der große Mengen von Daten analysiert, um Erkenntnisse und Muster zu identifizieren. Sie nutzen statistische Analysen, maschinelles Lernen und Programmierkenntnisse, um komplexe Probleme zu lösen und datenbasierte Entscheidungen zu treffen. Data Scientists sind in der Lage, Daten zu visualisieren und verständlich zu präsentieren, um Unternehmen bei der strategischen Planung und Optimierung zu unterstützen. Sie spielen eine wichtige Rolle bei der Entwicklung von datengetriebenen Lösungen und der Vorhersage zukünftiger Trends.

  • Wann hat Data Luv Geburtstag?

    Data Luv hat am 25. Februar Geburtstag. Er wurde im Jahr 1998 in Deutschland geboren. Sein richtiger Name ist David Leander Nolden. Data Luv ist ein deutscher Rapper und Produzent, der vor allem für seine Autotune-verzerrten Vocals bekannt ist. Seine Musik ist geprägt von Trap- und Cloudrap-Elementen.

  • Wie viel verdient ein Data Scientist?

    Wie viel ein Data Scientist verdient, hängt von verschiedenen Faktoren ab, wie zum Beispiel der Erfahrung, dem Standort, der Branche und der Unternehmensgröße. In den USA liegt das durchschnittliche Gehalt für Data Scientists bei etwa 120.000 bis 140.000 US-Dollar pro Jahr. In Europa kann das Gehalt je nach Land und Unternehmen variieren, aber in der Regel verdienen Data Scientists auch hier sehr gut. Es ist wichtig zu beachten, dass sich die Gehälter ständig ändern und von vielen Faktoren abhängen. Es lohnt sich, sich über aktuelle Gehaltsinformationen in der Branche zu informieren.

  • Was ist eine sekundäre Dimension in Google Analytics?

    Was ist eine sekundäre Dimension in Google Analytics? Eine sekundäre Dimension ist eine zusätzliche Dimension, die in Berichten neben der primären Dimension angezeigt werden kann. Sie ermöglicht eine detailliertere Analyse, indem sie weitere Informationen zu den Daten liefert. Beispielsweise kann die sekundäre Dimension "Land" hinzugefügt werden, um zu sehen, aus welchen Ländern die Besucher einer Website kommen. Durch die Kombination von primären und sekundären Dimensionen können Nutzer ein umfassenderes Verständnis für das Nutzerverhalten und die Leistung ihrer Website erhalten. In Google Analytics können bis zu vier sekundäre Dimensionen hinzugefügt werden, um die Daten noch genauer zu analysieren.

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