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Object detection

Skill a5c-ai/babysitter/library/specializations/robotics-simulation/skills/object-detection

Deep learning based object detection and segmentation for robotics applicationsFrom its SKILL.md

Install
npx -y skills add a5c-ai/babysitter --skill object-detection

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SKILL.md

1.7 KB, 284 tokens by cl100k_base, as published. Nobody here has run it

Object Detection/Segmentation Skill

Overview

Expert skill for deploying and optimizing deep learning models for object detection, instance segmentation, and 3D object detection in robotics applications.

Capabilities

  • Configure YOLO (v5, v8) for real-time detection
  • Set up Detectron2 for instance segmentation
  • Implement semantic segmentation models
  • Configure TensorRT optimization for Jetson
  • Set up ONNX runtime deployment
  • Implement 3D object detection (PointPillars, VoxelNet)
  • Configure depth-based object detection
  • Set up ROS vision pipelines with image_pipeline
  • Implement object tracking (SORT, DeepSORT, ByteTrack)
  • Configure multi-camera detection fusion

Target Processes

  • object-detection-pipeline.js
  • synthetic-data-pipeline.js
  • nn-model-optimization.js
  • moveit-manipulation-planning.js

Dependencies

  • YOLO (Ultralytics)
  • Detectron2
  • TensorRT
  • ONNX Runtime
  • vision_msgs

Usage Context

This skill is invoked when processes require object detection model deployment, instance segmentation, 3D detection, or multi-object tracking for robot perception.

Output Artifacts

  • Detection model configurations
  • TensorRT optimized models
  • ROS detection node implementations
  • Tracking pipeline configurations
  • Multi-camera fusion setups
  • Inference optimization scripts

What ships with it: 1 file

686 B alongside SKILL.md

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