Category robots in business

Page 189 of 523
1 187 188 189 190 191 523

Efficient single-winged aerial robots with reduced energy consumption

Flying robotic systems have already proved to be highly promising for tackling numerous real-world problems, including explorations of remote environments, the delivery of packages in inaccessible sites, and searches for survivors of natural disasters. In recent years, roboticists and computer scientists have introduced a multitude of aerial vehicle designs, each with distinct advantages and features.

Planning algorithm enables high-performance flight for tailsitter aircraft

A tailsitter is a fixed-wing aircraft that takes off and lands vertically (it sits on its tail on the landing pad), and then tilts horizontally for forward flight. Faster and more efficient than quadcopter drones, these versatile aircraft can fly over a large area like an airplane but also hover like a helicopter, making them well-suited for tasks like search-and-rescue or parcel delivery.

Clevon’s T-Mobile Powered Autonomous Delivery Robot Fleet Zooms Into Smart City Peachtree Corners

The company’s autonomous robot carriers (ARCs), powered by T-Mobile connectivity, are designed to collect orders at warehouses, retail stores, dark stores and micro fulfillment centers, and then deliver those goods to people and businesses around the city.

A deep learning technique to improve how robots grasp objects

Most adult humans are innately able to pick up objects in their environment and hold them in ways that facilitate their use. For instance, when picking up a cooking utensil, they would normally grab it from the side that will not be placed inside the cooking pot or pan.

SVR Guide to Robotics Research and Education 2023

In the last decade we have seen more robotics innovation becoming real products and companies than in the entire history of robotics.

Furthermore, the greater Silicon Valley and San Francisco Bay Area is at the center of this ‘Cambrian Explosion in Robotics’ as Dr Gill Pratt, Director of Robotics at Toyota Research Institute described it. In fact, two of the very first robots were developed right here.

In 1969 at Stanford, Vic Sheinman designed the first electric robot arm able to be computer controlled. After successful pilots and interest from General Motors, Unimation acquired the concept and released the PUMA or Programmable Universal Machine for Assembly. Unimation was eventually acquired by Staubli, and the PUMA became one of the most successful industrial robots of all time.

Shakey was the first mobile robot able to perceive and reason. Also called the world’s first electronic person by Time Magazine in 1972. Shakey was developed at SRI International from 1966 to 1972 and pioneered many advances in computer vision and path planning and control systems that are still in use today.

These companies have been at the heart of Silicon Valley Robotics, the regional robotics ecosystem/association, but we have also seen enormous growth in new robotics companies and startups in the last decade.

And all of them are hiring.

This volume serves as a guide to students who are interested in studying the field of robotics in any way. Robotics jobs range from service technician, electrical or mechanical engineer, control systems and computer science, to interaction or experience designer, human factors and industrial design.

All these skills are in great demand in robotics companies around the world, and people with experience in robotics are in great demand everywhere. Robotics is a complex multidisciplinary field, which provides opportunities for you to develop problem solving skills and a holistic approach.

The robotics industry also requires people with skill sets in growing businesses, not just robotics, but product and project management, human resources, sales, marketing, operations.

Get involved in robotics – the industry of the 21st century.

The guide

Novel learning framework allows robots to perform interactive tasks in sequential order

Georgia Tech Ph.D. student Niranjan Kumar has created the Cascaded Compositional Residual Learning (CCRL) framework, enabling a quadrupedal robot to perform increasingly complex tasks without relearning motions, mirroring human learning. Kumar showcased by the robot opening a heavy door using energy transfer, a remarkable achievement in robotics.

Robo-Insight #3

Source: OpenAI’s DALL·E 2 with prompt “a hyperrealistic picture of a robot reading the news on a laptop at a coffee shop”

Welcome to the third edition of Robo-Insight, a biweekly robotics news update! In this post, we are excited to share a range of new advancements in the field and highlight progress in areas like motion, unfamiliar navigation, dynamic control, digging, agriculture, surgery, and food sorting.

A bioinspired robot masters 8 modes of motion for adaptive maneuvering

In a world of constant motion, a newly developed robot named M4 (Multi-Modal Mobility Morphobot) has demonstrated the ability to switch between eight different modes of motion, including rolling, flying, and walking. Designed by researchers from Caltech’s Center for Autonomous Systems and Technologies (CAST) and Northeastern University, the robot can autonomously adapt its movement strategy based on its environment. Created by engineers Mory Gharib and Alireza Ramezani, the M4 project aims to enhance robot locomotion by utilizing a combination of adaptable components and artificial intelligence. The potential applications of this innovation range from medical transport to planetary exploration.

The robot switches from its driving to its walking state. Source.

New navigation approach for robots aiding visually impaired individuals

Speaking of movement, researchers from the Hamburg University of Applied Sciences have presented an innovative navigation algorithm for a mobile robot assistance system based on OpenStreetMap data. The algorithm addresses the challenges faced by visually impaired individuals in navigating unfamiliar routes. By employing a three-stage process involving map verification, augmentation, and generation of a navigable graph, the algorithm optimizes navigation for this user group. The study highlights the potential of OpenStreetMap data to enhance navigation applications for visually impaired individuals, carrying implications for the advancement of robotics solutions that can cater to specific user requirements through data verification and augmentation.

This autonomous vehicle aims to guide visually impaired individuals. Source.

A unique technique enhances robot control in dynamic environments

Along the same lines as new environments, researchers from MIT and Stanford University have developed a novel machine-learning technique that enhances the control of robots, such as drones and autonomous vehicles, in rapidly changing environments. The approach leverages insights from control theory to create effective control strategies for complex dynamics, like wind impacts on flying vehicles. This technique holds potential for a range of applications, from enabling autonomous vehicles to adapt to slippery road conditions to improving the performance of drones in challenging wind conditions. By integrating learned dynamics and control-oriented structures, the researchers’ approach offers a more efficient and effective method for controlling robots, with implications for various types of dynamical systems in robotics.

Robot that could have improved control in different environments. Source.

Burrowing robots with origami feet

Robots have been improving in areas above ground for a while but are now also advancing in underground spaces, researchers from the University of California Berkeley and the University of California Santa Cruz have unveiled a new robotics approach that utilizes origami-inspired foldable feet to navigate granular environments. Drawing inspiration from biological systems and their anisotropic forces, this approach harnesses reciprocating burrowing techniques for precise directional motion. By employing simple linear actuators and leveraging passive anisotropic force responses, this study paves the way for streamlined robotic burrowing, shedding light on the prospect of simplified yet effective underground exploration and navigation. This innovative integration of origami principles into robotics opens the door to enhanced subterranean applications.

The prototype for the foot and its method for fabrication. Source.

Innovative processes in agricultural robotics

In the world of agriculture, a researcher from Carnegie Mellon University recently explored the synergy between scientific phenotyping and agricultural robotics in a Master’s Thesis. Their study delved into the vital role of accurate plant trait measurement in developing improved plant varieties, while also highlighting the promising realm of robotic plant manipulation in agriculture. Envisioning advanced farming practices, the researcher emphasizes tasks like pruning, pollination, and harvesting carried out by robots. By proposing innovative methods such as 3D cloud assessment for seed counting and vine segmentation, the study aims to streamline data collection for agricultural robotics. Additionally, the creation and use of 3D skeletal vine models exhibit the potential for optimizing grape quality and yield, paving the way for more efficient agricultural practices.

A Robotic data capture platform that was introduced. Source.

Soft robotic catheters could help improve minimally invasive surgery

Shifting our focus to surgery, a team of mechanical engineers and medical researchers from the University of Maryland, Johns Hopkins University, and the University of Maryland Medical School has developed a pneumatically actuated soft robotic catheter system to enhance control during minimally invasive surgeries. The system allows surgeons to insert and bend the catheter tip with high accuracy simultaneously, potentially improving outcomes in procedures that require navigating narrow and complex body spaces. The researchers’ approach simplifies the mechanical and control architecture through pneumatic actuation, enabling intuitive control of both bending and insertion without manual channel pressurization. The system has shown promise in accurately reaching cylindrical targets in tests, benefiting both novice and skilled surgeons.

Figure showing manufacturing and operation of soft robotic catheter tip using printing process for actuator and pneumatic pressurization to control catheter bending. Source.

Robotic system enhances poultry handling efficiency

Finally, in the food world, researchers have introduced an innovative robotic system designed to efficiently pick and place deformable poultry pieces from cluttered bins. The architecture integrates multiple modules, enabling precise manipulation of delicate poultry items. A comprehensive evaluation approach is proposed to assess the system’s performance across various modules, shedding light on successes and challenges. This advancement holds the potential to revolutionize meat processing and the broader food industry, addressing demands for increased automation.

An experimental setup. Source.

This array of recent developments spanning various fields shows the versatile and ever-evolving character of robotics technology, unveiling fresh avenues for its integration across different sectors. The steady evolution in robotics exemplifies the ongoing endeavors and the potential ramifications these advancements could have in the times ahead.

Sources:

  1. New Bioinspired Robot Flies, Rolls, Walks, and More. (2023, June 27). Center for Autonomous Systems and Technologies. Caltech University.
  2. Application of Path Planning for a Mobile Robot Assistance System Based on OpenStreetMap Data. Stahr, P., Maaß, J., & Gärtner, H. (2023). Robotics12(4), 113.
  3. A simpler method for learning to control a robot. (2023, July 26). MIT News | Massachusetts Institute of Technology.
  4. Efficient reciprocating burrowing with anisotropic origami feet. Kim, S., Treers, L. K., Huh, T. M., & Stuart, H. S. (2023, July 3). Frontiers.
  5. Phenotyping and Skeletonization for Agricultural Robotics. The Robotics Institute Carnegie Mellon University. (n.d.). Retrieved August 10, 2023.
  6. Pneumatically controlled soft robotic catheters offer accuracy, flexibility. (n.d.). Retrieved August 10, 2023.
  7. Advanced Robotic System for Efficient Pick-and-Place of Deformable Poultry in Cluttered Bin: A Comprehensive Evaluation Approach. Raja, R., Burusa, A. K., Kootstra, G., & van Henten, E. (2023, August 7). TechRviv.
Page 189 of 523
1 187 188 189 190 191 523