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VISVESVARAYA TECHNOLOGICAL UNIVERSITY
Vijaya Vittala Institute of Technology
Dept of Electronics and Communication Engineering
Project Review on
“Gesture Controlled Car”
Project Associate
1. Deeksha Shree N 1VJ21EC002
2. Gowtham B 1VJ21EC004
Guide
Ms Swetha Rani M
Assistant Professor, Department of Electronics and Communication Engineering
Vijay Vittala Institute of Technology
CONTENTS
 Project Life Cycle
 Problem Statement
 Project Objectives
 Capabilities of ESP 32
 Configuration
 Components
 Block Diagrams
 Working Model
 Conclusion
Project Life Cycle
Road Map to our project
1 2 3 4 5
Problem Solution Planning Execution Result
Identifying real-time
problems in society
Finding accurate
solutions to the
project
Planning the
roadmap to the
execution of the
identified solution
Implementing the
Proposed plan for
the result
Finalizing the results
and concluding the
project
PROBLEM STATEMENT
 Accessibility for Disabled Individuals
Physically disabled individuals may find it challenging to use traditional
car control methods.
Project objectives
 1. Understand ESP32 capabilities
 2. Set up and configure ESP32
 3. Integrate gesture recognition module
 4. Assemble car chassis
 5. Control motors using ESP32
 6. Develop gesture-control code
 7. Integration and testing
 8. Optimize and refine
 9. Documentation
 10. Presentation
Understanding the Capabilities of ESP
32
 Dual Core Processor
 Wi-Fi and Bluetooth Connectivity
 Low Power Consumption
 GPIO Pins
 Integrated Sensors
 Security Features
Set Up and Configuration of ESP 32
 Install Arduino IDE
 Install ESP32 Board Package
 Connect ESP32 to Your Computer
 Install USB to UART Bridge Drivers
This Photo by Unknown Author is licensed under CC BY-NC-ND
Integrate Gesture Recognition Module
 Components
 Wiring the components
 Installing the necessary libraries
 Prototyping and Testing
This Photo by Unknown Author is licensed under CC BY-SA
Components Utilized
Hardware
 ESP 32
 LN298 Motor Driver
 MPU 6050
 Batteries
 Jumper Cables
 BO Motor
 Mecanum Tyres
This Photo by Unknown Author is licensed
under CC BY-SA
Components Utilized
Software
 Arduino IDE
 Draw.io
 Fritzing
 Online Compliers
Gesture-Control Code Development
 Interpret gestures from sensor
 Map gestures to car movements
BLOCK DIAGRAM
TRANSMITTER
BLOCK DIAGRAM
RECIEVER
ONBOARD SKETCH
RECEIVER
ONBOARD SKETCH
TRANSMITTER
WORKING MODEL
WORKING MODEL VIDEO
Problem Statement Solution
 Hands-Free Operation
 Enhanced Safety in Hazardous Environments
 Improved Control in Low Visibility
 Efficiency in Industrial Applications
Real World Applications
 Accessibility for disabled individuals
 Enhanced safety in hazardous environments
 Intuitive user interfaces
 Efficient control in industrial applications
Future Enhancements
 Voice Control Integration
 Obstacle Avoidance
 Advanced Gesture Recognition
 Brain–computer interface (BCI)
Conclusion
 The gesture-controlled car mini project is a testament to the power of
integrating modern technologies to create innovative solutions. It opens
up new possibilities for vehicle control, making it more accessible,
intuitive, and efficient. The skills and knowledge gained from this project
can be applied to a wide range of applications, paving the way for further
advancements in the field of gesture-controlled systems.

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Gesture Controlled Car Presentation Using esp 32

  • 1. VISVESVARAYA TECHNOLOGICAL UNIVERSITY Vijaya Vittala Institute of Technology Dept of Electronics and Communication Engineering Project Review on “Gesture Controlled Car” Project Associate 1. Deeksha Shree N 1VJ21EC002 2. Gowtham B 1VJ21EC004 Guide Ms Swetha Rani M Assistant Professor, Department of Electronics and Communication Engineering Vijay Vittala Institute of Technology
  • 2. CONTENTS  Project Life Cycle  Problem Statement  Project Objectives  Capabilities of ESP 32  Configuration  Components  Block Diagrams  Working Model  Conclusion
  • 3. Project Life Cycle Road Map to our project 1 2 3 4 5 Problem Solution Planning Execution Result Identifying real-time problems in society Finding accurate solutions to the project Planning the roadmap to the execution of the identified solution Implementing the Proposed plan for the result Finalizing the results and concluding the project
  • 4. PROBLEM STATEMENT  Accessibility for Disabled Individuals Physically disabled individuals may find it challenging to use traditional car control methods.
  • 5. Project objectives  1. Understand ESP32 capabilities  2. Set up and configure ESP32  3. Integrate gesture recognition module  4. Assemble car chassis  5. Control motors using ESP32  6. Develop gesture-control code  7. Integration and testing  8. Optimize and refine  9. Documentation  10. Presentation
  • 6. Understanding the Capabilities of ESP 32  Dual Core Processor  Wi-Fi and Bluetooth Connectivity  Low Power Consumption  GPIO Pins  Integrated Sensors  Security Features
  • 7. Set Up and Configuration of ESP 32  Install Arduino IDE  Install ESP32 Board Package  Connect ESP32 to Your Computer  Install USB to UART Bridge Drivers This Photo by Unknown Author is licensed under CC BY-NC-ND
  • 8. Integrate Gesture Recognition Module  Components  Wiring the components  Installing the necessary libraries  Prototyping and Testing This Photo by Unknown Author is licensed under CC BY-SA
  • 9. Components Utilized Hardware  ESP 32  LN298 Motor Driver  MPU 6050  Batteries  Jumper Cables  BO Motor  Mecanum Tyres This Photo by Unknown Author is licensed under CC BY-SA
  • 10. Components Utilized Software  Arduino IDE  Draw.io  Fritzing  Online Compliers
  • 11. Gesture-Control Code Development  Interpret gestures from sensor  Map gestures to car movements
  • 18. Problem Statement Solution  Hands-Free Operation  Enhanced Safety in Hazardous Environments  Improved Control in Low Visibility  Efficiency in Industrial Applications
  • 19. Real World Applications  Accessibility for disabled individuals  Enhanced safety in hazardous environments  Intuitive user interfaces  Efficient control in industrial applications
  • 20. Future Enhancements  Voice Control Integration  Obstacle Avoidance  Advanced Gesture Recognition  Brain–computer interface (BCI)
  • 21. Conclusion  The gesture-controlled car mini project is a testament to the power of integrating modern technologies to create innovative solutions. It opens up new possibilities for vehicle control, making it more accessible, intuitive, and efficient. The skills and knowledge gained from this project can be applied to a wide range of applications, paving the way for further advancements in the field of gesture-controlled systems.