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Business Intelligence and Data Mining with Power BI

The Business Intelligence and Data Mining with Power BI course develops practical skills in business intelligence, statistical data mining, data processing, data preparation, visualization, and analysis using Power BI. Participants learn how to clean and transform data, work with descriptive statistics, explore large datasets, identify patterns and relationships, and apply data mining techniques such as classification, clustering, association rule mining, and anomaly detection. The course also introduces popular data-mining tools and technologies, including R, Python and SAS, and uses practical examples and industry case studies to demonstrate statistical data mining and processing applications. Topics include machine-learning integration, ethical data use, data privacy, and best practices for applying analytics in business environments.
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Course Description

Key Takeaways
  • Clean and transform data using Power BI.
  • Visualize and analyze data using Power BI.
  • Understand statistical data mining concepts and techniques.
  • Apply data mining techniques including classification, clustering, association rule mining, and anomaly detection.
  • Integrate machine learning models into data analysis.
  • Analyze patterns and relationships in large datasets.
  • Apply data mining techniques to real-world business scenarios.
  • Understand ethical practices and data privacy in data mining.
Course Outline

1.0 Introduction to Statistical Data Mining and Processing

  • Overview of data mining and its significance in modern industries.
  • Fundamental concepts and terminologies.
  • Differences between data mining and data processing.

2.0 Statistics in Business Intelligence

  • Data cleaning and pre-processing techniques using Power BI Software.
  • Handling missing data, outliers and noise using Power BI software.
  • Data transformation and normalization using Power BI software.

3.0 Exploratory Data Analysis (EDA) for Big Data using Power BI Software

  • Descriptive statistics (mean, median, mode, variance and standard deviation)
  • Data visualization techniques (histograms, box plots, scatter plots and heatmaps).
  • Identifying patterns and relationships in the data.

4.0 Data Mining Techniques

  • Classification (decision trees, random forests, support vector machines and k-nearest neighbors)
  • Clustering (k-means, hierarchical clustering and DBSCAN).
  • Association rule mining (Apriori and FP-Growth algorithms).
  • Anomaly detection techniques.

5.0 Tools and Software for Data Mining

  • Introduction to popular data mining tools (R, Python (with libraries like pandas, NumPy, SciPy, scikit-learn) and SAS).
  • Hands-on sessions and practical examples using these tools.

6.0 Case Studies and Real-World Applications

  • Analyzing case studies from various industries (e.g., finance, Maritime Transport, marketing).
  • Practical applications of statistical data mining and processing.
  • Lessons learned and best practices.
Duration

5 Days

Exam Details

Course Completion Certificate by Network Binary

Lab Outline
  • Data cleaning and preprocessing using Power BI.
  • Handling missing data, outliers, and noise.
  • Data transformation and normalization.
  • Exploratory data analysis using Power BI.
  • Creating descriptive statistical analyses.
  • Creating histograms, box plots, scatter plots, and heatmaps.
  • Identifying patterns and relationships in datasets.
  • Applying classification techniques.
  • Applying clustering techniques.
  • Performing association rule mining.
  • Performing anomaly detection.
  • Working with practical examples using R.
  • Working with Python data-mining libraries including pandas, NumPy, SciPy, and scikit-learn.
  • Applying statistical data-mining techniques to real-world case studies.
Who should attend
  • Business intelligence
  • Data analysis
  • Statistical data mining
  • Power BI
  • Data visualization
  • Machine-learning-assisted analysis
Prerequisites

No prerequisites

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Mohammad Gufran Network Binary

MOHAMMED GUFRAN

17 years of Experience
Enterprise Networking | Network Security | Software Defined Networking & Automation

AKMAL YAZDANI

18+ years of Experience
Azure & AWS services |Managing and Implementing Windows servers

MUHAMMAD MUSAB

4+ Years of Experience
Cisco Technologies | Cisco and HPE ARUBA Technologies | Routing and Switching

RANIA GABRIEL GEORGE HAKIM

25+ years of Experience
Enterprise Networking | Network Security | Software Defined Networking & Automation
Microsoft Instructor and Windows Network Specialist

MOHD FARAZ HARMIS

25+ years of Experience
Managing and Implementing Microsoft Azure cloud | Active Directory

SHAHEEN AKHTAR

17 years of Experience
TCP | and UDP protocols, along | with expertise in firewalls such as Palo Alto

KUDDOOS ALI

14+ years of Experience
Experienced Network Engineer proficient in AFC | Aruba Central | Aruba CX switches

AAMIR MASOOD

6 years of Experience
AWS Compute | AWS Storage | AWS Database | AWS Management
Faizan Ahmad IT Advisor

FAIZAN AHMAD

7 years of Experience
Software support Issue Resolution | User assistance | Microsoft Active Directory
cisco Instructor in Dubai Saad shah

SAAD SHAH

10 years of Experience
Cisco Technologies | Routing and Swtiching | Data Center | Security

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FAQs

What is Business Intelligence and Data Mining with Power BI?

Business Intelligence and Data Mining with Power BI is a 5-day training course covering statistical data mining, data processing, data cleaning, visualization, exploratory data analysis, classification, clustering, association rule mining, anomaly detection, and real-world data-mining applications.

What data mining techniques are covered in this course?

The course covers classification using decision trees, random forests, support vector machines and k-nearest neighbors; clustering using k-means, hierarchical clustering and DBSCAN; association rule mining using Apriori and FP-Growth; and anomaly detection techniques.

Does the course include hands-on training?

Yes. The course includes practical examples and hands-on sessions. Koenig also provides a virtual-machine-based TechLabs environment for this course, allowing learners to practice in a controlled cloud environment.

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