The document provides information on getting started with Tableau, including connecting data, creating basic charts like line charts and bar charts, and using the Show Me panel. It discusses preparing data, choosing visualization types based on objectives, and formatting visualizations for clarity. The document also covers calculating measures like sums and averages, creating custom calculations, applying calculations to visualizations, and formatting specific elements.
Data visualization and storytelling help communicate complex data and insights in an effective and efficient manner. Tableau is a self-service business intelligence tool that allows users to connect to various data sources, perform data preparation tasks, and create interactive visualizations, reports, dashboards, and stories. It provides features like filters, groups, sets, hierarchies, parameters, forecasting, clustering, and what-if analysis to explore and analyze data. Users can build dashboards with well-designed layouts and share reports in different file formats to facilitate data analysis and decision making.
How to Use Tableau for Business Intelligence and AnalyticsAccelebrate
Business Intelligence (BI) and analytics have become critical processes for organizations seeking to remain competitive and make insightful decisions in today's data-driven world.
A Power Dive into Pivot Tables (Transform raw data into compelling)jahanvi52
This document provides an overview of pivot tables, including their benefits, how to build one, components, dynamic charts and visualizations, advanced techniques, real-world applications, and a conclusion with bonus tips. Pivot tables allow users to summarize and analyze trends in large datasets by dragging and dropping fields to rows, columns, and values areas. They simplify complex data, identify key trends, create dynamic reports and charts, and save time over manual analysis.
The document discusses advanced analytics capabilities in Tableau. It summarizes that Tableau allows both technical and non-technical users to perform advanced analytics tasks like segmentation, cohort analysis, scenario analysis, sophisticated calculations, time series analysis, and predictive analysis without requiring programming. It provides intuitive interfaces and drag-and-drop functionality for these advanced tasks. Tableau's calculation language also allows power users to build complex expressions and manipulate result sets.
This document provides answers to common interview questions about Tableau. It discusses the differences between .twb and .twbx file extensions, how to join and blend data, how to create calculated fields and sets, and how to schedule automated report refreshes. It also covers topics like shelves, groups, hierarchies, extracts, performance testing, and stories. The document aims to equip job candidates with knowledge of Tableau's core functionality and capabilities.
This document provides an overview of data visualization and Tableau software. It defines data visualization as visually representing data to help convey information and insights. It then discusses different types of data visualization techniques like graphs, diagrams, timelines and more. The document also introduces Tableau software, describing it as a tool for interactive data visualization and dashboard creation. It outlines Tableau's features, workspace, different chart types, and provides steps for performing basic data analysis and visualization in Tableau Public.
Microsoft Excel Dashboards and Their Features.pdfNitin
In today's data-driven business landscape, having a well-structured sales dashboard is paramount for tracking performance, making informed decisions, and driving growth. I'm excited to share with you my journey in creating a powerful sales dashboard using Microsoft Excel. This project showcases the incredible capabilities of Excel as a tool for data visualization and analysis.
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The document provides an overview of a Power BI training course. The course objectives include learning about connecting to data sources, transforming data, building data model relationships, using DAX functions to transform data, and creating visualizations. It discusses topics like importing data from CSV and Excel files into Power BI, using Power Query to transform data, establishing relationships between tables in the data model, using measures and columns with DAX, and building basic and dynamic visualizations. It also provides resources for sample data files and additional learning materials for the course.
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The document discusses advanced analytics capabilities in Tableau. It summarizes that Tableau allows both technical and non-technical users to perform advanced analytics tasks like segmentation, cohort analysis, scenario analysis, sophisticated calculations, time series analysis, and predictive analysis without requiring programming. It provides intuitive interfaces and drag-and-drop functionality for these advanced tasks. Tableau's calculation language also allows power users to build complex expressions and manipulate result sets.
This document provides answers to common interview questions about Tableau. It discusses the differences between .twb and .twbx file extensions, how to join and blend data, how to create calculated fields and sets, and how to schedule automated report refreshes. It also covers topics like shelves, groups, hierarchies, extracts, performance testing, and stories. The document aims to equip job candidates with knowledge of Tableau's core functionality and capabilities.
This document provides an overview of data visualization and Tableau software. It defines data visualization as visually representing data to help convey information and insights. It then discusses different types of data visualization techniques like graphs, diagrams, timelines and more. The document also introduces Tableau software, describing it as a tool for interactive data visualization and dashboard creation. It outlines Tableau's features, workspace, different chart types, and provides steps for performing basic data analysis and visualization in Tableau Public.
Microsoft Excel Dashboards and Their Features.pdfNitin
In today's data-driven business landscape, having a well-structured sales dashboard is paramount for tracking performance, making informed decisions, and driving growth. I'm excited to share with you my journey in creating a powerful sales dashboard using Microsoft Excel. This project showcases the incredible capabilities of Excel as a tool for data visualization and analysis.
Tableau online training and tableau desktop training by United Trainings.
http://unitedtrainings.com/tableau-online-training/
Whatsapp / call :- +91 - 9100 77 3003/2 ,
Email: [email protected]
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http://unitedtrainings.com/tableau-online-training/
Whatsapp / call :- +91 - 9100 77 3003/2 ,
Email: [email protected]
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The document provides an overview of a Power BI training course. The course objectives include learning about connecting to data sources, transforming data, building data model relationships, using DAX functions to transform data, and creating visualizations. It discusses topics like importing data from CSV and Excel files into Power BI, using Power Query to transform data, establishing relationships between tables in the data model, using measures and columns with DAX, and building basic and dynamic visualizations. It also provides resources for sample data files and additional learning materials for the course.
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Thingyan is now a global treasure! See how people around the world are search...Pixellion
We explored how the world searches for 'Thingyan' and 'သင်္ကြန်' and this year, it’s extra special. Thingyan is now officially recognized as a World Intangible Cultural Heritage by UNESCO! Dive into the trends and celebrate with us!
Mieke Jans is a Manager at Deloitte Analytics Belgium. She learned about process mining from her PhD supervisor while she was collaborating with a large SAP-using company for her dissertation.
Mieke extended her research topic to investigate the data availability of process mining data in SAP and the new analysis possibilities that emerge from it. It took her 8-9 months to find the right data and prepare it for her process mining analysis. She needed insights from both process owners and IT experts. For example, one person knew exactly how the procurement process took place at the front end of SAP, and another person helped her with the structure of the SAP-tables. She then combined the knowledge of these different persons.
2. INTRODUCTION
Tableau is a data visualization tool essential to data analysts of all experience levels
In deep learning (DL), it plays a vital role in helping to visualize complex data and model outputs.
Tableau can be used to explore data before training models, visualize performance metrics like accuracy and
loss curves, and compare different models or hyperparameters.
Additionally, it aids in interpreting the results of deep learning models, such as understanding feature
importance and detecting patterns in predictions.
By connecting to various data sources, Tableau helps teams make informed decisions, track model
performance, and monitor ongoing predictions.
3. Common Tableau uses
Tableau allows users to translate raw data into highly visual dashboards and analyses, that are ideal for
explaining data trends to non-technical stakeholders.
The most common uses include:
Creating maps, bar charts, line charts, scatter plots, and more.
Providing contextual data information as needed through Tooltips, a brief analysis shown when you hover
over your analysis.
Linking sheets so that users can dig deeper into data analysis.
4. Creating your first Tableau visualization
• You can create a visualization in five steps:
• STEP 1:
Select your data in the Data Source
tab.
6. STEP 3:
Select the fields to use. Tip: Hold the
Control key (Command key on Macs) to
select multiple fields
7. STEP 4:
Click the “Show me” button to select a
visualization type. Available vizzes are
highlighted.
8. STEP 5:
Select the type of visualization and
watch Tableau instantly create it. To
adjust the viz, drag and drop fields to or
from the presentation.
9. You can expand your vizzes in a variety of
ways:
• Dashboards: Avoid a cluttered dashboard by using Tooltips to highlight displayed data and add context by
showing other values or vizzes within the Tooltip. Dashboards can be used to show multiple vizzes together
on a single page. To do so, create a blank dashboard, then drag and drop as many visualizations as desired on
to it.
• Filter: Use filters in a variety of ways to hone in on specific data. You can filter data to focus on a particular
category. Or, use one viz to act as a filter for a second viz. For example, in a viz about a retail chain, select a
store location, then explore a separate viz for that particular store.
• Story: Tableau offers a feature called story, which is a sequence of visualizations that help you present a
cohesive data analysis. This allows you to stage a story exactly how you’d like it without having to readjust
filters each time the related dashboard is accessed.
• Comparisons: Make data comparisons by using visual analytics like trend lines or averages.
10. CONTINUE
• Formulas: Build additional calculations using formulas. While Tableau formulas are derived from standard
Excel formulas, more advanced formulas are available. For example, a time intelligence formula compares
present values against values from a week ago.
• Maps: Analyses that include geographic locations can be displayed in maps with values represented as
symbols, colors, or heat.
• Explain Data: In version 2019.3, Tableau added a new feature called Explain Data, which builds artificial
intelligence technology into the analysis, so that analysts can understand the “Why?” behind data.
11. EG: Tableau Retail Company dashboard
Scenario: A retail company wants to analyze its sales performance across different regions.
How Tableau Helps:
1. Data Connection: Connects to the company's sales database (Excel, SQL, or cloud storage).
2. Data Processing: Cleans and organizes sales data (e.g., filtering by product, region, or time).
3. Visualization: Creates interactive dashboards with:
• A bar chart showing sales by region.
• A line graph tracking sales trends over months.
4. Insights & Decisions:
• Identifies which regions need marketing improvements.
• Helps predict future sales trends.
• Enables management to make data-driven decisions.
13. SOME OF EXAMPLE OF TABLEAU
• Tableau executive dashboard for the hospitality industry
• Tableau sales dashboard
• Tableau marketing dashboard
• Tableau call center dashboard
• Tableau HR dashboard
• Tableau project management dashboard
• Tableau financial dashboard
• Tableau e-commerce dashboard
14. CONCLUSION
Tableau enhances deep learning workflows by enabling data blending, interactive dashboards, and real-time updates. It
supports visualizing training progress, datasets, and model predictions, helping to interpret results effectively. Tableau
plays a valuable role in simplifying the analysis of deep learning models. With future advancements like integration
with AI frameworks and explainable AI tools, it has the potential to become an even more powerful tool for
interpreting complex models and driving data-driven decision-making.