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    Lean Six Sigma Black Belt by GreyCampus

    Posted By: ELK1nG
    Lean Six Sigma Black Belt by GreyCampus

    Lean Six Sigma Black Belt
    Published 12/2023
    MP4 | Video: h264, 1920x1080 | Audio: AAC, 44.1 KHz
    Language: English | Size: 549.39 MB | Duration: 1h 27m

    LSSBB

    What you'll learn

    Understand the objective of Lean Six Sigma and its application in process improvement.

    Gain detailed knowledge of DMAIC: Define, Measure, Analyze, Improve, and Control phases in Lean Six Sigma projects.

    Apply DMAIC effectively in Lean Six Sigma projects to achieve process improvements.

    Identify opportunities for Lean Six Sigma projects and apply data analysis techniques to make informed decisions.

    Learn hypothesis testing and its application in making data-driven inferences for process improvement.

    Acquire expertise in root cause analysis and the application of various tools and techniques in Lean Six Sigma projects at an advanced level of proficiency.

    Requirements

    There is no mandatory eligibility requirement to sit for the LSSBB certification exam. Prior knowledge of statistics is recommended, but the required knowledge of statistics is covered in this course. Additionally, knowledge of Minitab will be beneficial but not mandatory to execute example scenarios.

    Description

    Lean Six Sigma Black Belt Training & CertificationBlack belt level training geared towards enabling advanced expertise in Lean Six Sigma. The course is accredited by IASSC*, and aligned to IASSC's Lean Six Sigma Black Belt Body of Knowledge.1. Course OverviewLearning ObjectivesIASSC LSSBB CertificationCourse Contents2. FoundationLean Six Sigma IntroductionSix Sigma OverviewDMAIC MethodologyLean Enterprise3. DefineDefine Phase OverviewVoice of Customer (VOC)Critical to Quality (CTQ)SIPOCStakeholder AnalysisProject Charter4. MeasureMeasure Phase OverviewAs-is Process Review (Process Definition)Data Collection and Analysis (Basic Statistics)Data Accuracy and Precision (Measurement System Analysis-MSA)Process Capability and Stability5. Analyze• Analyze Phase - Overview• Patterns of Variation• Inferential Statistics• Hypothesis Testing• Hypothesis Testing with Normal Data• Hypothesis Testing with Non-normal Data6. Improve• Improve Overview• Potential Solutions Generation• Lean Solutions/Tools• Mistake-Proofing• Select the Best Solution• Pilot Implementation• Simple Linear Regression• Multiple Regression Analysis (MRA)• Designed Experiments or Design of Experiments (DOE)• Full Factorial Experiments• Fractional Factorial Experiments7. ControlControl OverviewLean ControlsStatistical Process ControlSix Sigma Control planSimulated Exams2 simulated exams to help you experience the type of questions you would actually get in your IASSC certification exam. These are available in the Online Learning Platform and include fully worked-out solutions.

    Overview

    Section 1: Course Overview

    Lecture 1 Lean Six Sigma and Process Issues

    Lecture 2 Learning Objectives

    Lecture 3 Course Contents

    Section 2: Foundation

    Lecture 4 Lean Six Sigma Introduction

    Lecture 5 Six Sigma Overview

    Lecture 6 DMAIC Methodology

    Lecture 7 Lean Enterprise

    Section 3: Define

    Lecture 8 Define Phase Overview

    Lecture 9 Voice of Customer (VOC)

    Lecture 10 Critical to Quality (CTQ)

    Lecture 11 SIPOC

    Lecture 12 Stakeholder Analysis

    Lecture 13 Project Charter

    Lecture 14 Process Map Overview-1

    Section 4: Measure

    Lecture 15 Value Stream Mapping (VSM)

    Lecture 16 Measure Phase Overview

    Lecture 17 VSM - Creation

    Lecture 18 As-is Process Review (Process Definition)

    Lecture 19 VSM Common Metrics

    Lecture 20 Data Collection and Analysis(Basic Statistics)

    Lecture 21 Value Add Flow Analysis 1

    Lecture 22 Data Accuracy & Precision(Measurement System Analysis-MSA)

    Lecture 23 Process Capability & Stability

    Section 5: Analyze

    Lecture 24 Analyze Phase - Overview

    Lecture 25 Patterns of Variation

    Lecture 26 Inferential Statistics

    Lecture 27 Hypothesis Testing

    Lecture 28 Hypothesis Testing with Normal Data

    Lecture 29 Example-Create Factorial Design

    Lecture 30 Hypothesis Testing with Non-normal Data

    Lecture 31 Example-Analyze Factorial Design-V1

    Lecture 32 Example-Analyze Factorial Design-V2

    Section 6: Improve

    Lecture 33 Example-Analyze Factorial Design-V3

    Lecture 34 Improve Overview

    Lecture 35 Example-Analyze Factorial Design-V4

    Lecture 36 Potential Solutions Generation

    Lecture 37 Example-Factorial Plots

    Lecture 38 Lean Solutions/Tools

    Lecture 39 Example-Cube Plot

    Lecture 40 Mistake-Proofing

    Lecture 41 Example-Surface Plot

    Lecture 42 Select the Best Solution

    Lecture 43 Example-Contour Plot

    Lecture 44 Pilot Implementation

    Lecture 45 Example-Contour Plot of Cost

    Lecture 46 Simple Linear Regression

    Lecture 47 Example-Response Optimizer

    Lecture 48 Multiple Regression Analysis (MRA)

    Lecture 49 Fractional Factorial Designs

    Lecture 50 Designed Experiments or Design of Experiments (DOE)

    Lecture 51 Confounding effect

    Lecture 52 Full Factorial Experiments

    Lecture 53 Experimental Resolutions

    Lecture 54 IP_EoM Summary

    Section 7: Control

    Lecture 55 Control Overview

    Lecture 56 Lean Controls

    Lecture 57 Statistical Process Control

    Lecture 58 Six Sigma Control plan

    Section 8: Value Adds

    Lecture 59 IASSC Reference Document

    Section 9: Class Deck

    Lecture 60 Define Phase

    Lecture 61 Measure Phase

    Lecture 62 Analyze Phase

    Lecture 63 Improve Phase

    Lecture 64 Control Phase

    Section 10: Simulated Exams

    People working in the Quality Management domain. Ex- Quality System Managers, Engineers, Supervisors, Analysts, Auditors, Green Belts, Yellow Belts etc.