Graphical Models Certification Training

BY
Edureka

Get in-depth knowledge in Graphical Models, Markov’s and Bayesian Networks through this course provided by Edureka.

Mode

Online

Fees

₹ 6749 7499

Quick Facts

particular details
Medium of instructions English
Mode of learning Self study
Mode of Delivery Video and Text Based

Course overview

This course offered by Edureka will enable the candidates to understand what Graphical models are, their components, types, how to represent graphical models, and decision making using them. Candidates who are interested or are currently working in the field of Data Science with basic knowledge in Machine Learning or in Graphical Modelling, Artificial Intelligence, and Machine Learning enthusiasts, and Researchers can take up this course.

Graphical Models Certification Training offered by Edureka provides the candidates with the practical and hands-on knowledge required through cloud lab on a pre-configured environment and real-life case studies which involves implementing various Graphical Models concepts. The candidates are expected to have prior knowledge of Python, Probability theories, statistics, and fundamentals of ML and AI. 

The course on graphical models is made to teach in brief the Graphical Models, Probabilistic Theories, fundamentals of Graphical Models, types of Graphical Models which include Bayesian and Markov’s Networks, decision making and its assumption and theories, representation of Markov and Bayesian Networks, concepts related to Markov and Bayesian Networks, learning and inference in Graphical Models.

The highlights

  • Lifetime access to LMS
  • Expert Support- 24  x 7 
  • Real life case studies
  • Online Forum
  • Certification of completion will be provided by Edureka 

Program offerings

  • Case studies
  • Assignments
  • Online forum
  • Live online sessions

Course and certificate fees

Fees information
₹ 6,749  ₹7,499

The fees for the course Graphical Models Certification Training is -

HeadAmount in INR
Original priceRs. 7,499
Discounted priceRs. 6,749

  *No Cost EMI starts at Rs. 2,250 / month

certificate availability

Yes

certificate providing authority

Edureka

Who it is for

The course can be taken up by the following candidates:

  • Candidates working or interested in Data science 
  • Candidates with basic knowledge in graphical modelling and machine learning
  • Artificial Intelligence and Machine Learning enthusiasts 
  • Researchers

Eligibility criteria

Certification Qualification Details

The candidates will be eligible based on the project they submit. Hence, once the project is duly submitted and the course is completed properly, candidates will be given the certification of completion. 

What you will learn

Programming skills

After the candidates complete the course on they will be familiar with and understand the following terms and concepts:

  • Gain brief knowledge on graphical models, their components, representation, decision making using graphical models, graphical modes and types of graphical models.
  • Will learn about probability theory.
  • Understand the Bayesian networks, independencies in them and how to build a Bayesian network.
  • Understand the Markov’s network, the independence in it, factor graphs and the network’s process.
  • Will learn about the structure and parameter learning in the graphical models.
  • They will understand the importance of inference and how to interpret it using Markov’s and Bayesian networks.

The syllabus

Introduction to Graphical Model

  • Why do we need Graphical Models?
  • Introduction to Graphical Model
  • How does Graphical Model help you deal with uncertainty and complexity?
  • Types of Graphical Models
  • Graphical Modes
  • Components of Graphical Model
  • Representation of Graphical Models
  • Inference in Graphical Models
  • Learning Graphical Models
  • Decision theory
  • Applications

Bayesian Network

  • What is Bayesian Network?
  • Advantages of Bayesian Network for data analysis
  • Bayesian Network in Python Examples
  • Independencies in Bayesian Networks
  • Criteria for Model Selection
  • Building a Bayesian Network

Markov’s networks

  • Example of a Markov Network or Undirected Graphical Model
  • Markov Model
  • Markov Property
  • Markov and Hidden Markov Models
  • The Factor Graph
  • Markov Decision Process
  • Decision Making under Uncertainty
  • Decision Making Scenarios

Inference

  • Inference
  • Complexity in Inference
  • Exact Inference
  • Approximate Inference
  • Monte Carlo Algorithm
  • Gibb’s Sampling
  • Inference in Bayesian Networks

Model Learn

  • General Ideas in Learning
  • Parameter Learning
  • Learning with Approximate Inference
  • Structure Learning
  • Model Learning: Parameter Estimation in Bayesian Networks
  • Model Learning: Parameter Estimation in Markov Networks

Admission details


Filling the form

The candidates who are interested to take up the course Graphical Models Certification Training will have to follow the below steps:

Step 1: Visit the course website.

Step 2: Click on Enroll on the right side of the page.

Step 3: Login in using your e-mail id and mobile number.

Step 4: After logging in the candidates can choose their desired batch for learning.

Step 5: Proceed to pay and join the course.

How it helps

This Graphical Models classes course will enable the candidates to understand various concepts and terms under Graphical Models. It is specifically designed to teach the fundamentals of Graphical Models, types of Graphical Models that is Bayesian which is directed and Markov’s which is undirected, Representation of both Bayesian and the Markov’s network models, probabilistic theories, concepts relating to Markov’s and Bayesian networks, learning and inference in  Graphical Models, and the decision making using the theories and assumption.

This course will benefit those candidates who are currently working or are interested in the field of Data Science, researchers, artificial intelligence, and machine learning enthusiasts. 

Through this Graphical Models online course the candidates will gain practical knowledge with the help of the Cloud lab access provided in this course and will also benefit from the live online sessions, case studies, the assignments, quizzes, and tests given during this course, the candidates will get 24x7 expert support and will have access to the online forum where they can interact with the faculty and their peers to clarify their doubts.

The course comes with the added benefit of if the candidates miss their scheduled live class they can either view the recorded session or sign up for the same session in the next upcoming batch.

FAQs

Are they any prior knowledge required for this Online Graphical Models course?

Yes, the candidates require knowledge in Python, statistics, probability theories, and fundamentals of ML and AI.

What can I do if I miss a session of Graphical Models programme?

The candidates can view the recorded session or join the next live session batch if they miss their scheduled session.

When will I get access to the course content?

As soon as the candidates complete the enrolment process they will gain full access to all the course contents.

How long are the course contents available to the candidates?

The candidates will have lifetime access to the LMS after they enroll in the Graphical Models live course.

How can I clear any doubts I have after the course completion?

The candidates will have 24x7 lifetime access to the support team who they can call to clarify their doubts.

How will I do my practicals during the course?

The candidates will be using the Cloud Lab to do their practicals and get real life experience.

Does this course have any system requirements?

Yes, the required system requirements are a system with an Intel i3 processor or above, an operating system with either 32 or 64 bit, and a minimum of 3GB RAM.

Why should I take up this course?

This course will improve the candidate’s employability as Machine Learning Engineers is a top emerging job on LinkedIn.

Will I get to choose the batch I want to join?

Yes, the candidates can choose their desired batch during the enrolment process.

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