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Live Online D3.js Course for Data Analytics

Original price was: ₹55,000.00.Current price is: ₹40,000.00.

Duration: 5 Weeks | Total Time: 30 Hours

Format: Live online sessions using Google meet or MS Teams with hands-on coding, mini-projects, and a capstone project by an industry expert.
Target Audience: College Students, Professionals in Finance, HR, Marketing, Operations, Analysts, and Entrepreneurs
Tools Required: Laptop with internet
Trainer: Industry professional with hands on expertise

Live Course Module: D3.js Course for Data Analytics

Total Duration: 30 Hours (5 Weeks)


Week 1: Introduction to D3.js and Web Data Visualization (6 Hours)

  • Topics:

    • Overview of D3.js and its role in data visualization

    • Setting up the D3.js environment (HTML, CSS, JavaScript basics)

    • Understanding SVG (Scalable Vector Graphics) in D3

    • DOM manipulation and data binding concepts

    • Drawing basic shapes (lines, rectangles, circles) with D3

  • Outcome:
    Learners will understand D3’s structure, environment setup, and how to create simple visual elements bound to data.


Week 2: Working with Data and Scales (6 Hours)

  • Topics:

    • Loading external data (CSV, JSON, TSV)

    • Data binding and dynamic updates

    • Using scales (d3.scaleLinear, d3.scaleOrdinal, d3.scaleTime)

    • Axes creation and customization

    • Handling datasets with different data types

  • Outcome:
    Learners will efficiently import, transform, and scale data for visual mapping in D3.js.


Week 3: Building Core Visualizations (6 Hours)

  • Topics:

    • Creating bar charts, line charts, scatter plots, and pie charts

    • Adding labels, legends, and color scales

    • Managing margins, axes, and gridlines

    • Implementing transitions and animations (d3.transition())

    • Responsive visualizations for different screen sizes

  • Outcome:
    Students will be able to create standard and interactive chart types commonly used in analytics dashboards.


Week 4: Interactivity and Advanced Visuals (6 Hours)

  • Topics:

    • Event handling: mouseover, click, hover interactions

    • Tooltips and highlighting data points

    • Creating hierarchical visualizations (tree, treemap, sunburst)

    • Network diagrams and force-directed layouts

    • Integrating D3 visualizations with dashboards or web apps

  • Outcome:
    Learners will add interactivity and create advanced visual analytics experiences using D3.js.


Week 5: Real-world Project & Integration (6 Hours)

  • Topics:

    • Case Study 1: Interactive Sales Dashboard Visualization

    • Case Study 2: Time Series & Trend Analysis Visualization

    • Performance optimization and modular code structure

    • Exporting and embedding visualizations in web applications

    • Using D3.js with other frameworks (React, Angular basics)

  • Outcome:
    Learners will complete real-world visualization projects and integrate D3.js charts into analytics platforms or websites.


🎯 Final Deliverables & Outcomes

  • Build data-driven, interactive, and dynamic web visualizations from scratch.

  • Manipulate DOM elements using D3.js based on real datasets.

  • Apply transitions, interactivity, and storytelling techniques in visualization.

  • Integrate D3.js visuals within data analytics dashboards or web applications.

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