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IROS 2018

Evaluating Methods for End-User Creation of Robot Task Plans

Conference Paper Accepted Paper Artificial Intelligence · Robotics

Abstract

How can we enable users to create effective, perception-driven task plans for collaborative robots? We conducted a 35-person user study with the Behavior Tree-based CoSTAR system to determine which strategies for end user creation of generalizable robot task plans are most usable and effctive. CoSTAR allows domain experts to author complex, perceptually grounded task plans for collaborative robots. As a part of CoSTAR's wide range of capabilities, it allows users to specify SmartMoves: abstract goals such as “pick up component A from the right side of the table. ” Users were asked to perform pick-and-place assembly tasks with either SmartMoves or one of three simpler baseline versions of CoSTAR. Overall, participants found CoSTAR to be highly usable, with an average System Usability Scale score of 73. 4 out of 100. SmartMove also helped users perform tasks faster and more effectively; all SmartMove users completed the first two tasks, while not all users completed the tasks using the other strategies. SmartMove users showed better performance for incorporating perception across all three tasks.

Authors

Keywords

  • Task analysis
  • Planning
  • User interfaces
  • Service robots
  • Grippers
  • Collaboration
  • End-users
  • Task Planning
  • User Performance
  • Side Of The Table
  • System Usability Scale
  • Planning Of Robots
  • Task Performance
  • System Version
  • Path Planning
  • Skilled Workers
  • Object Position
  • Joint Space
  • Children In Order
  • Inverse Reinforcement Learning
  • Computer Science Students

Context

Venue
IEEE/RSJ International Conference on Intelligent Robots and Systems
Archive span
1988-2025
Indexed papers
26578
Paper id
989516249635061675
v2026.09.13