This inventor holds 16 USPTO granted patents. Top assignees: Gm Global Technolgoy Operations, Inc., United States of America as Represented by the Administrator of NASA, Oceaneering Space Systems. Active years: 2001-2015.
Company Filing History:

Years Active: 2001-2015
Title: Myron A. Diftler: Innovator in Robotic Systems
Introduction
Myron A. Diftler is a prominent inventor based in Houston, TX (US), known for his significant contributions to the field of robotics. With a total of 16 patents to his name, Diftler has developed innovative technologies that enhance robotic capabilities and applications.
Latest Patents
Among his latest patents is the "Fast grasp contact computation for a serial robot." This system includes a controller and a serial robot with interconnected links, allowing the robot to grasp three-dimensional (3D) objects based on a commanded grasp pose. The controller processes input information, including the grasp pose and kinematic data, to calculate contact points necessary for achieving the desired grasp. Another notable patent is the "Robot arm with tendon connector plate and linear actuator." This robotic system features a tendon-driven end effector and a linear actuator, which translates linearly in response to the servo motor's output torque. The design includes a flexible tendon and a plate assembly that facilitates the movement of the end effector.
Career Highlights
Diftler has worked with notable organizations, including the United States of America as represented by the Administrator of NASA and GM Global Technology Operations, Inc. His work has significantly impacted the development of advanced robotic systems.
Collaborations
Throughout his career, Diftler has collaborated with esteemed colleagues such as Chris A. Ihrke and Lyndon Bridgwater, contributing to various innovative projects in robotics.
Conclusion
Myron A. Diftler's work in robotics exemplifies innovation and creativity, making him a key figure in advancing robotic technologies. His patents reflect a commitment to enhancing the functionality and efficiency of robotic systems.