Zevon EduBot
  • AI visual recognition quadrupedal bionic robot dog intelligent programmable robot ROS Raspberry Pi multi-state large
  • AI visual recognition quadrupedal bionic robot dog intelligent programmable robot ROS Raspberry Pi multi-state large
  • AI visual recognition quadrupedal bionic robot dog intelligent programmable robot ROS Raspberry Pi multi-state large
  • AI visual recognition quadrupedal bionic robot dog intelligent programmable robot ROS Raspberry Pi multi-state large
  • AI visual recognition quadrupedal bionic robot dog intelligent programmable robot ROS Raspberry Pi multi-state large
  • AI visual recognition quadrupedal bionic robot dog intelligent programmable robot ROS Raspberry Pi multi-state large
  • AI visual recognition quadrupedal bionic robot dog intelligent programmable robot ROS Raspberry Pi multi-state large
  • AI visual recognition quadrupedal bionic robot dog intelligent programmable robot ROS Raspberry Pi multi-state large
  • AI visual recognition quadrupedal bionic robot dog intelligent programmable robot ROS Raspberry Pi multi-state large
  • AI visual recognition quadrupedal bionic robot dog intelligent programmable robot ROS Raspberry Pi multi-state large

AI visual recognition quadrupedal bionic robot dog intelligent programmable robot ROS Raspberry Pi multi-state large

AI visual recognition quadrupedal bionic robot dog intelligent programmable robot ROS Raspberry Pi multi-state large model

Specification value:
Basic version Recommended
Graphical programming version supports Arduino programming
Voice control version
AI Voice Large Model Control Version: Voice Conversation Enabled
AI Vision Edition - Built-in Raspberry Pi 4B4G
AI Vision Edition - Built-in Raspberry Pi 5/4G
AI Vision Edition - Built-in Raspberry Pi 5/8G
ROS Advanced - Built-in Raspberry Pi
ROS Pro - Built-in Raspberry Pi

USD 241-1092

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AI Large-Scale Bionic Mechanical Dog

Radar Mapping and Navigation | ROS Operating System | AI Visual Recognition and Interaction 

Voice Interaction Control | Inverse Kinematics Algorithm | Bionic Gait and Movement

Features

ROS Operating System: 

An open-source meta-operating system 

providing the services an operating 

system should offer.

OpenCV

a mainstream deep learning framework, 

can meet the needs of most artificial 

intelligence projects.

Mapping and Navigation

Built-in mapping and navigation algorithm 

packages Autonomous obstacle avoidance 

during navigation

Built-in IMU 

Built-in IMU sensor allows for real-time 

adjustment of the device's posture.

Serial bus servos

 13 high-performance serial bus servos 

with powerful motors.

Python programming

A mainstream programming language

Numerous developer communities

Raspberry Pi 

Powerful Raspberry Pi performance supports

 faster and smoother operation.

TOF LiDAR

 Capable of mapping, navigation, path 

planning, and other ROS SLAM functionalities.

3D real-scene mapping

Can be used with depth cameras

To achieve 3D mapping


Package differences



FunctionBasic Edition

Graphica

Programming Edition

AI Vision Edition

ROS Advanced EditionROS Professional Edition
APP Control
Wi-Fi Real-Time Video
Fun Motions
Custom Motions
Attitude Angle Control
Camera Gimbal
Height Control
Stair Climbing
Gait Adjustment

Graphical Programming

Infrared Sensors
Ultrasonic Sensors
LED Lights
Visual Line Following
Voice Control

Wireless Handheld

Control

Face Recognition
Color Recognition
QR Code Recognition
Python Programming
ROS System

SLAM Mapping and 

Navigation

Visual SLAM

Modular design

The robotic corgi has a serial port and slots for additional modules.

It allows you to assemble and build various programming modules, expanding the creative ways to play.

AI Main Control Module          ROS Main Control Module                 Graphical Module

  Voice module                          RGB camera                           Depth camera


High-performance servo with metal casing

1. Durable Aluminum Alloy Shell

The Corgi robot dog features a durable aluminum alloy shell, ensuring stability and safety in various environments, 

making it suitable for flexible operation in multiple scenarios.

2. 13 Degrees of Freedom (DOF) Motion Joints

Equipped with 13 high-performance servos, each leg is connected to the elbow, shoulder, and three joints via a serial bus servo. 

Using inverse kinematics algorithms, complex movements can be precisely achieved, ensuring overall fluidity and closely 

resembling the movement posture of a realistic quadruped.


Vision-controlled obstacle crossing and agile companion

Video Pan/Tilt

The robot dog has multiple built-in gait modes: Pace, Walk, Trot, and 

Hop, allowing it to adapt to different environments and task requirements.

Adjustable Height

The robot dog supports height adjustment, allowing it to easily 

navigate over suspended obstacles

Composite posture and motion control 

Supports simultaneous combined control of speed and angle in the X, Y, and Z directions, enabling a wide range of running movements

Fun High-Leg Climbing Function

The robot dog has a built-in stair-climbing function; while walking, 

it can step onto stairs from flat ground by raising its legs high.


The robot dog has multiple built-in gait modes 

Pace, Walk, Trot, and Hop. These allow the robot dog to adapt to different environments and task requirements.

1) Walk gait: Stepping forward 

with overlapping steps.

2) Trot gait: Rapid alternating 

left and right movemen

3) Hop gait: Leaning forward 

with a bouncing motion.

4) Pece gait: Slow alternating

 left and right movement


Expandable Visual AI Features

Optional RXR RPI Extend BOX AI Vision Edition expansion box with built-in Raspberry Pi development board

Integrates a wealth of machine vision AI features, showcasing the charm of artificial intelligence.

1. Voice Control

Control the robot dog to perform actions via voice.

2. Face Recognition

Face recognition via APP/voice control

3. Color Recognition

Trigger the robot dog to recognize colors via the app/voice.

4. QR Code Recognition

QR code recognition via APP/voice trigger

5. Visual Line Following

The app triggers the robot dog to automatically follow lines visually.

6. Handheld Control

Control the robot dog to perform actions via handheld controller


Forward/Inverse Kinematics Algorithm Development: 

The Corgi robot dog's legs utilize 12 serial bus servos to control the rotation of each joint. Based on the biomechanical characteristics of the foreleg bones of real-life quadrupeds, these servos are linked to the shoulders and legs, achieving a very close resemblance to realistic biological movements. Using forward/inverse kinematics algorithms, the angles of each joint are calculated, and then, through a hardware interface, the servos of each leg joint are driven to rotate to the corresponding angles.

Built-in ROS and Machine Vision Basic Tutorial

11 lessons (PDF lecture notes + videos + source code) Getting started with ROS is no longer difficult 

(Exclusive to AI Vision and ROS versions)

Expandable Graphical Programming

An optional RBlockExtendBox graphical programming expansion box is available, allowing programming of the robot dog using XRBlock graphical programming software based on Scratch 3.0. Suitable for beginner programmers in elementary and middle school.


LiDAR Mapping and Navigation

It not only supports Hector algorithm mapping, but also allows for secondary development and installation of other algorithms such as Gmaping and Cartograph for mapping, enabling path planning, point-to-point navigation, and multi-point navigation.


Multi-point navigation and dynamic obstacle avoidance 

The TOF lidar can detect the surrounding environment in real time and dynamically avoid obstacles during navigation.

Upon detecting an obstacle, it replans the path using a local path planner.

Built-in IMU Attitude Sensor

The ROS expansion box is equipped with an IMU sensor, which can obtain attitude data through the IMU; it employs a closed-loop control algorithm to monitor the robot's attitude in real time and automatically keep the robot dog's body in a balanced state.

Equipped with a 3D depth camera, 

the robot dog's head can be optionally equipped with an Orbbec series depth camera, which not only enables all the AI vision functions of an RGB camera, but also allows for the development of more depth vision functions such as depth image data processing, RTAB 3D visual mapping and navigation.

RTABSLAM 3D Vision Mapping and Navigation 

The robot dog utilizes the RTABSLAM algorithm, fusing visual and radar data to construct a 3D color map. The robot can autonomously navigate and avoid obstacles within this map, supporting global relocalization and autonomous localization functions.

Depth Image Data Point Cloud Image

Through the corresponding depth camera, depth images, color images, point cloud images, and other data can be acquired.


Course List

1. Basic Courses

Understanding the Robot DogIdentify parts of the robot dog , Robot parameters
Remote Control SetupInstall mobile app , Connect mobile app with robot , Parameter adjustment
Hardware SetupInstall Raspberry Pi ROS expansion board and camera
PowerCharging

2. Advanced Courses

Basic Operations

Video streaming , Move forward , Move backward , Turn left , Turn right , Move left , Move right , Raise head , Tilt left , Tilt right , 

Combined movements , Forward kinematics control , 

Pan-tilt (gimbal) control , Wireless controller control , Keyboard control

Fun Operations

Function , Punch , Wave hand , Nod , Defense , Beckon , Throw , Pick up , Stretch , Urinate action , Jump , Play dead

3. Quadruped Robot Principles and Architecture Learning

System ArchitectureHardware architecture , Software architecture
Motion Theory

Quadruped robot gait , Center of mass dynamics , Forward / inverse

kinematics algorithm introduction

4. ROS SLAM Quadruped Robot Mapping and Navigation

ROS Mapping & Navigation

Install virtual machine , Connect robot dog , Check network , Synchronize system time between robot and VM , LiDAR mapping , LiDAR navigation

5. ROS SLAM Quadruped Robot Secondary Development

Development Tool Preparation

Software preparation , Hardware preparation , Remote connection

Basic Secondary Development Operations

Code framework , End controller process , Modify code , Run code , 

Principle block diagram , TF tree relationship

Advanced SLAM Development

Depth camera usage , Robot self-balancing , RTABMAP visual SLAM 

mapping , KCF target detection and tracking , Face recognition , 

Edge detection , ArUco augmented reality , ROS and lower-level 

communication interface , Gesture recognition


Cross-platform control

1. Voice interaction

Integrated with the voice module, it enables voice control and voice interaction functions. 

Different actions and gameplay can be completed via voice commands. (Exclusive to AI Vision and Voice Control versions)

2. App Control

The Corgi robot dog supports control via a mobile phone and tablet app, 

providing detailed instructions to help you quickly use all the robot dog's functions.

3. Gamepad Control

With a gamepad, similar control effects to those achieved with a mobile app can be achieved.


Built-in multiple fun actions

GoodbyeSay helloJumpingLucky Cat

SurrenderPlay deadStretchingPeeing

Secondary Development Stage


The robot dog has a dedicated serial port for further development and expansion. It provides APIs for almost all of the robot dog's functions, including basic movements, fun movements, forward/backward movement control, and head control. It can connect to external processors such as Arduino, STM32, Raspberry Pi, and Jetson Nano via the serial port to receive and process control commands sent from those devices. You can control the robot dog using familiar programming languages such as C and Python.


Application scenarios

Practical Training

Suitable for practical training 

courses in fields such as the 

Internet of Things and Electronic 

Information.

High-End Toys

As high-end intelligent toys,

 they are used for entertainment

 and as gifts.

Science Popularization 

Exhibitions

Suitable for science museums,

cience festival performances and

 experiences


Competitive Competitions

Suitable for whitelisted events,

 provincial competitions, national 

competitions, and other science

 and technology competitions


Product Parameters

Product NameCorgi Quadruped Dog – Keji Intelligent Quadruped Robot DogOperating TimeAbout 1 hour
Main ProcessorDual-core Xtensa LX6 CPUSRAM520 KB
Main Frequency240 MHzPSRAM4 MB
Core ControllerESP32InterfacesUART / SPI / I2C / PWM
Control MethodsiOS / Android App / Controller (AI Vision Version) / VoiceServo ModelXR-S300
Control Distance10 mCameraWide-angle camera, 480P, 2MP
Degrees of Freedom13 DOFProgramming LanguagesPython / Arduino C
Battery Capacity2200 mAhGraphical ProgrammingXR Block Scratch


Shipping list

1. Corgi intelligent quadruped robot dog controller / 2. User manual and charger / 3. Packaging box and warranty card

4. AI Vision Package (Optional): AI Vision Module + RGB Camera

5. Graphical Programming Package (Optional): Graphical Programming Module

6. ROS Advanced Package (G Optional): ROS Controller Module + RGB Camera

7. ROS Professional Package (Optional): ROS Main Module + Depth Camera

Supplier Information

Email:ZevonEduBot@ttbridge.com

Tel:17734786008

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