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Bioinspired robot Fly - Roll - Walk - Crawl Multi-Modal Mobility Morphobot (M4), a revolutionary robot inspired by nature's most adaptable creatures. > Capable of multiple forms of movement: flying, rolling, crawling, and more. > Features adaptive appendages that function as wheels, thrusters, and legs. > Equipped with advanced...

15,926 görüntüleme • 6 ay önce •via X (Twitter)

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This is the Scorpion Hexapod, a six-legged robotic scorpion created at Ghent University UGent Campus Kortrijk in Belgium. It was built by students Stephan Flamand Robbe Terryn and Pieterjan Deconinck as part of an Embedded Prototyping / Mechatronics Design project. What it is • A biomimetic robot inspired by the body and movement of a real scorpion • A hexapod, meaning it walks on six legs • A university prototype, not a commercial robot • Built to test animal-inspired movement, sensors and interactive behavior • Designed more for robotics research and education than real-world work Main hardware • 6 walking legs for crawling movement • 2 front claws for the scorpion look • Moving tail with a stinger-style mechanism • Sensors in the body, legs and claws • Arduino-based electronics for control • Front camera and proximity sensing • Battery pack for mobile operation • 3D-printed modules for legs and tail • Laser-cut ABS body parts • Thermoformed shell for the white outer body What it can do • Walk across the floor using its six legs • Move its tail like a real scorpion • React when a person gets close • Detect when someone covers its front sensors • Strike with its tail in the demo • Leave a red mark using a marker pen attached to the stinger • Operate through remote control • Perform some simple autonomous reactions Why it was created • To explore bio-inspired robotics • To show how digital fabrication can produce complex moving robots • To combine 3D printing, laser cutting, Arduino electronics and sensors • To teach students how to design a complete mechatronic system • To improve on an older robotic ant project that had weak autonomy, short battery life and motor problems • To create an interactive robot that reacts to humans in a visible way Important note • It was not built for combat • It was not made for industrial deployment • It is not a military robot • It is an educational robotics prototype made to demonstrate movement, sensing and interaction

Techniahqrobot | humanoid robots

28,154 görüntüleme • 1 ay önce

China unveils humanoid robot with lifelike skin and blinking eyes built for daily life | Prabhat Ranjan Mishra, Interesting Engineering Large Language Models (LLMs) and Vision-Language Models (VLMs) help process and interpret complex data from human interactions. A Shanghai-based company has developed humanoid robots that appear as real as humans. The advanced bionic humanoid robot is integrated with self-supervised AI algorithms. Named Elf V1, the robot can perceive the world, communicate, learn, and interact intelligently with its surroundings. Developed by AheadForm Technology, the robot offers up to 30 degrees of freedom, powered by a precise control system and an advanced AI learning algorithm. Robot offers expressive facial features The robot offers expressive facial features, moving eyes, and synchronized speech. It can also convey emotions and understand human non-verbal cues, making interactions more natural and engaging. The robot has highly interactive capabilities and lifelike appearances. AheadForm expects that its robots could soon seamlessly integrate into daily life, providing assistance, companionship, and support across various industries. “We believe that by developing realistic and expressive robot heads, we can bridge the gap between humans and machines, fostering a new era of interactive and intelligent robotics,” said the company in a statement. Reports revealed that to avoid the “uncanny valley” effect and be able to interact with us, they are given lifelike skin and capabilities to read our emotions and respond appropriately using dynamic expression simulation and emotion generation tech. Bionic skin and high-precision control system The Elf V1 series of humanoids features 30 facial muscles animated by brushless micro-motors and managed by a high-precision control system. Paired with an ability to detect their users’ emotions with low latency and bionic skin, their facial expressions are nearly identical to those of humans, reported CGTN. The company claims it’s pioneering the development of realistic humanoid robots designed to revolutionize human-robot interaction. It’s enhancing sophisticated humanoid robot heads that can express emotions, perceive their environment, and interact seamlessly with humans. By combining cutting-edge AI and advanced robotics, AheadForm aims to bring life to machines and transform how humans engage with technology. AI models boost robots’ responsiveness Seamless integration of Large Language Models (LLMs) and Vision-Language Models (VLMs) into the humanoid robots can help them process and interpret complex data from human interactions, enabling the robot to learn and adapt in real-time, achieving human-level understanding and responsiveness. AheadForm uses Brushless Motors that deliver ultra-quiet operation and high responsiveness, specifically designed for precision facial movements in humanoid robots. With its compact size, lightweight design, and energy efficiency, this motor is the ideal choice for next-generation robots that require precise, subtle facial control to create a truly human-like experience. Previously, the company unveiled the Lan Series that features realistic humanoid robots with soft skin and 10 degrees of freedom, offering a lifelike appearance and intuitive movements. This series is designed for cost-efficiency, for applications prioritizing mobility and manipulation.

Owen Gregorian

179,005 görüntüleme • 10 ay önce

ASIMO: Honda’s Trailblazing Humanoid Robot Gone but not forgotten. — ASIMO, or Advanced Step in Innovative Mobility is a landmark achievement in robotics, unveiled by Honda Motor Co., Ltd. on October 31, 2000. Born from nearly two decades of research starting in 1986, ASIMO was designed to navigate human environments and assist with daily tasks. Standing at 4 feet 3 inches and weighing 110 pounds was a sleek, astronaut-like design made it approachable and futuristic. ASIMO’s advanced capabilities, including bipedal walking, object manipulation, and voice recognition, showcased Honda’s expertise in robotics, AI, and sensor technology, positioning it as a global symbol of innovation. ASIMO’s standout features included its lIntelligent Real-Time Flexible Walking (i-WALK) system, enabling it to climb stairs, run at 5.6 mph, and adapt to uneven surfaces. Equipped with cameras, ultrasonic sensors, and dexterous hands, it could avoid obstacles, pour drinks, and recognize gestures, demonstrating remarkable human-robot interaction. Over the years, upgrades enhanced its autonomy, hand dexterity, and even sign language capabilities, with the final 2014 model able to jump and balance on one leg. While not fully autonomous, ASIMO’s real-time decision-making and 40-minute battery life marked significant strides in humanoid robotics. Though ASIMO never became a commercial product, its impact was profound, inspiring STEM education and future robotic innovations. It appeared at global expos, conducted orchestras, Retired in 2018, ASIMO’s legacy lives on, having influenced projects like Boston Dynamics’ Atlas and contributed to Honda’s mobility devices. Honda should bring Asimo back. Some of the technology is more tangible recent today. This video is 25 years old…

Brian Roemmele

16,862 görüntüleme • 1 yıl önce

Hello, Ghana 🇬🇭 Your Excellency, John Dramani Mahama Hello Africa and the world. We 3Farmate are proud to announce the official launch of FAMA—Ghana's FIRST AI-powered autonomous farming robot for large-scale crop production. Founded in 2021 by Clinton 🛸 (CEO) and Koffi-Cobbin (CTO), the company began in a dorm room at Kwame Nkrumah University of Science and Technology, where its first prototype was developed. Since then, the team has engineered FAMA into a full-scale autonomous robot capable of planting seeds, applying fertilizer, weeding, and spraying across real farm environments. FAMA navigates using a vision-based AI system instead of GPS, allowing it to operate reliably in areas where GPS is unavailable or inconsistent. The robot runs on batteries charged by solar panels while in the field and can operate across uneven terrain, loose and muddy soils, and variable weather conditions. A single operator can oversee multiple robots, each covering 27 to 35 acres per day with sub-85mm planting precision. 3Farmate targets large-scale staple crop producers in Ghana, starting with corn and soybeans. We operate a service model, charging farmers per acre and removing the need for upfront equipment investment. Over 70 farmers and several large-scale crop production companies are currently in discussions, with commercial deployments beginning in the 2026 planting season. Approximately $200,000 has been raised to date, including investment from 776 Foundation (Alexis Ohanian, Reddit co-founder) and a grant from Kosmos Innovation Center Ghana. Our team consists of young engineers specializing in robotics, embedded systems, software, and mechanical design. With 8 major iterations, 60+ field test runs, 100+ cumulative acres covered, and thousands of runtime hours in real farm conditions, FAMA is market-ready to become the ultimate farmer-assistant. We built FAMA right here in Ghana, inspired by Dr. Kwame Nkrumah’s belief that “Africa must industrialize to achieve true independence.” We built FAMA as a true testament to every young engineer in Africa that “IT IS POSSIBLE.” FAMA is designed to operate seamlessly on Ghanaian soil and is adaptable to diverse agricultural environments worldwide. Join us as we drive innovation across global agriculture. We call on the government of Ghana, stakeholders, international organizations, and agri-industry leaders to partner with us in transforming agriculture together. This is not history in the making, because history has already been made, and we thank you for being a part of our journey. On this note, we are officially launched! For more information, visit 3FARMATE – The future is here.

MARK OFORIQUAYE

148,540 görüntüleme • 5 ay önce

The U.S. unveils it's new F-47 stealth fighter, the centerpiece of the NGAD program, a "family of systems" designed to integrate advanced manned and unmanned platforms, including Collaborative Combat Aircraft (CCA) drones. Announced by President Donald Trump alongside Secretary of Defense Pete Hegseth and Air Force Chief of Staff Gen. David Allvin, the F-47 is described as the "most advanced, most capable, most lethal aircraft ever built." It reportedly builds on a prototype that has been secretly flying for nearly five years, suggesting significant testing and refinement prior to its public unveiling. The aircraft is engineered for speed, stealth, and adaptability, with a focus on countering advanced threats from nations like China, which has also been developing sixth-generation capabilities. Boeing’s victory over Lockheed Martin for the NGAD contract, valued at approximately $20 billion for the Engineering and Manufacturing Development (EMD) phase, marks a critical win for the company amid its recent struggles in defense and commercial sectors. The F-47 is expected to enter service in the 2030s, with each unit potentially costing upwards of $300 million, reflecting its cutting-edge technology. Its development emphasizes rapid adaptability to emerging threats, leveraging advanced manufacturing and an open architecture design to allow for continual upgrades. Since exact specifications remain classified or undisclosed as of now, the following are informed projections based on NGAD program objectives, statements from officials, and sixth-generation fighter trends. Designation: Boeing F-47 Manufacturer: Boeing Phantom Works Role: Air dominance fighter with multi-role capabilities (air-to-air and air-to-ground) Crew: Likely manned with optional unmanned configuration, aligning with sixth-generation flexibility Dimensions: Larger than the F-22 and F-35 to accommodate greater range and payload; exact size undisclosed but possibly exceeding 60 feet in length and a wingspan over 40 feet Powerplant: Expected to use adaptive cycle engines from the Next Generation Adaptive Propulsion (NGAP) program—either General Electric XA102 or Pratt & Whitney XA103. These engines feature a three-stream architecture, offering over 20% better fuel efficiency, increased thrust (potentially 45,000-50,000 lbf per engine), and enhanced electrical output for directed-energy weapons. Speed: Likely exceeds Mach 2 (super cruise capable—sustained supersonic flight without afterburners), surpassing the F-22’s Mach 1.8 super cruise Range: Combat radius projected at 1,000-1,500 nautical miles (unrefueled), tailored for Indo-Pacific operations, significantly greater than the F-22’s 600 nautical miles or F-35’s 670 nautical miles Stealth: Advanced stealth features, including a tailless design, next-generation coatings, and materials to reduce radar, infrared, and acoustic signatures beyond fifth-generation standards Payload: Larger internal weapons bays (possibly 20-23 feet long) to carry advanced munitions like the AIM-174, hypersonic missiles, and future cruise missiles, with external hardpoints available at the cost of stealth Sensors and Avionics: AI-enhanced sensor suite for unmatched situational awareness, integrating radar, infrared search and track (IRST), and electronic warfare systems; likely includes "smart skins" with embedded sensors for reduced drag and improved performance Networking: Maximum connectivity for real-time data sharing with satellites, drones, and other platforms, supported by a robust, jam-resistant data link Additional Features: Potential for directed-energy (laser) weapons to counter missiles and drones Integration with CCA drones for expanded mission options (e.g., extra munitions, electronic warfare) Open architecture for rapid upgrades and mission-specific customization Key Highlights Human-Machine Teaming: The F-47 is designed to "unlock the magic" of human-machine collaboration, pairing pilots with AI-driven systems and autonomous drones to enhance decision-making and reduce workload. Strategic Purpose: Built to penetrate contested environments, countering advanced air defenses and stealth fighters from adversaries like China, with a focus on long-range engagements over vast theaters. Development Timeline: Prototypes have been flying since at least 2020, with full operational capability targeted for the 2030s, replacing the F-22 incrementally as numbers grow. Cost and Scale: Estimated at $300 million per unit, with plans for roughly 200 manned aircraft, though this is a planning figure subject to change. The F-47’s exact design and full capabilities remain shrouded in secrecy, typical of NGAD’s classified nature, but its unveiling signals a bold step forward in U.S. air power. Its blend of stealth, speed, range, and technological integration positions it as a cornerstone of future aerial warfare, though its high cost and complexity will likely spark ongoing debate about affordability and strategic priorities. U.S. military technology will continue to dominate all other nations like it always has.

The SCIF

453,624 görüntüleme • 1 yıl önce

AgiBot has formally unveiled its G2 humanoid robot, a system designed to transition into various industries and liberate humans from repetitive labor. G2 features high-performance joints, precision torque sensors, and an advanced spatial perception system, supporting quick deployment and multi-modal voice interaction. ► Factory Floor Performance: The G2 is engineered to industrial standards. In a safety belt lock production line, robots collaborate with human workers, performing tasks like pressing lock cores. The G2 collects production data to continuously train and iterate models (local server deployment ensures data privacy), steadily improving its operational ability. ► Mobility & Safety: The G2 navigates narrow factory aisles using dual LiDAR and full-panorama vision for environment sensing and collision detection. Its chassis is designed to overcome common obstacles (speed bumps, elevator gaps). It supports 24/7 continuous operation via autonomous return-to-charge and battery swapping. ► Humanoid Design Advantage: The G2's design includes a three-degree-of-freedom flexible waist, allowing it to mimic natural human movements like bending and side-leaning. This dramatically expands its operational workspace and enables seamless integration into existing human-centric production lines without costly modifications. ► Advanced Dexterity & Learning (Lab): The new G02 arm is the world's first cross-moment arm, featuring high-precision joint torque sensors that allow it to precisely sense external forces and adjust stiffness, mimicking human hand compliance. Using Real-Machine Reinforcement Learning (RL), the G2 can learn complex, delicate tasks like memory stick insertion in about one hour with minimal human intervention. ► Logistics & Grasping: In logistics sorting, the G2 uses a 19-degree-of-freedom mechanical dexterous hand (20N maximum fingertip force; 35kg capacity for hard objects) equipped with 3D tactile sensors to ensure it grasps securely without damaging items. Its full-body articulation (waist and legs) aids grasping and posture adjustment. ► Model & Data: G2's intelligence is powered by the Go-One Large Embodied Model (VLA architecture: Vision-Language-Latent Action) and the GE-One World Model (vision-centric predictive modeling), trained using the AgiBot Word true-machine dataset (over 500k downloads). ► Service & Interaction: The G2 is deployed as a guide/receptionist in settings like art museums. It uses its high-DOF head, arms, and waist to point to exhibits, maintains eye contact while navigating difficult spaces (chassis walks forward, body faces backward), handles specialized and random queries, and uses proactive safety features (stops movement, issues warnings) when people get too close.

RoboHub🤖

46,733 görüntüleme • 10 ay önce

The Chinese are advancing on 6th-generation fighters, but I have serious doubts about whether this is truly the right path. Recently, the Turkish company Baykar flew two combat drones that operate in perfect synchronization, guided from a ground base. They executed coordinated maneuvers autonomously and are already capable of conducting BVR (Beyond Visual Range) engagements. The Kızılelma became the first drone to achieve an autonomous kill with an air-to-air missile guided by its own AESA radar. This level of Turkish progress, combined with the kill web integration that Chinese drones are demonstrating, isn’t it a strong indication that manned 6th-generation fighters might be an extraordinarily expensive fantasy? I’ll go further: some drones are already reaching speeds above Mach 3.5 - more than double those of the leading current manned fighters. I’m talking about drones capable of high-speed coordinated operations, fully autonomous, with integrated and shared weapon systems, flying at altitudes far higher than conventional fighters, and employing systems similar to Aegis. How much longer until these drones take off in large swarms, equipped with ultra-modern sensors controlled by AI and armed with long-range air-to-air missiles? How could a human pilot, even at the height of adrenaline, make faster and more accurate decisions, involving multiple scenarios and factors, than an AI commanding a pack of smaller, more agile drones operating at different altitudes? We are entering the real competition between man and machine. Even if a pilot in a 6th-generation fighter has control over slave drones and an entire Aegis-like kill web, what is the point of having him there if everything can be done autonomously, more safely, more cheaply, and in far greater numbers? Some argue that the human pilot offers advantages in unpredictable scenarios where today’s AI still fails, and I agree. But I’m not talking about current AI: I’m talking about the AI of 2030–2040, far more advanced than anything we know today. Geran drones equipped with air-to-air missiles prove that air combat drones can be extremely low-cost, while the Turkish tests show, in a far more sophisticated way, that drones designed for air-to-air missions are evolving much faster than 6th-generation aircraft, whose development and production costs are exorbitant. When we put together the Geran, the Kızılelma, and the drone kill web integration the Chinese are achieving, the question arises: is the future really manned 6th-generation fighters, or much cheaper drones produced in greater numbers, better protected, and more capable? Wouldn’t it be smarter to invest in well-equipped autonomous 6th-generation drones rather than treating them merely as wingmen? It seems that keeping a human pilot on board has more to do with ethical principles and preserving our role than with genuine operational necessity. And how would humanity react to the constant killing of human beings by AI-guided drones? Drones will be cheaper to develop, easier to produce, and possibly more agile than conventional fighters, even 6th-generation ones. In cost-benefit terms, the price of a single 6th-generation fighter could buy dozens of equivalent or even superior drones. This would save hundreds of billions of dollars and could put whoever adopts the strategy a step ahead. The Chinese, by the way, are very well positioned in this race, with HALE drones already armed with air-to-air missiles and integrated into an extensive kill web, which I will describe in detail soon.

Patricia Marins

60,728 görüntüleme • 7 ay önce

The US needs to start getting really serious about AI and robotics. We can't let China beat us. This is the new Chinese-made Unitree B2-W robot. The Unitree B2-W is turning heads for its ability to walk, roll, climb, and even carry adult passengers across challenging terrain—all in one sleek, futuristic package. At first glance, you might catch yourself thinking, “Is this really real?” because it looks like something straight out of a sci-fi film. Yet, here it is: a Chinese-made robot that’s been engineered to shift seamlessly between legged and wheeled locomotion, push up to 220 pounds of horizontal pulling force, and sprint at speeds of around 12.5 MPH. Some have likened it to a “Boston Dynamics on steroids,” which only scratches the surface of how advanced and versatile it truly is. Beneath the metallic chassis is a sophisticated control system powered by an Intel Core i5 or i7 processor—or, in higher-tier configurations, a NVIDIA Jetson Orin which drives the B2-W’s multitude of onboard sensors, from its 3D LiDAR (with optional 32-wire automotive-grade LiDAR) to an array of depth and optical cameras. These sensors lets it perceive the environment, avoid obstacles, and adapt to uneven terrain, a capability further bolstered by its IP67-rated weather and dust protection. In real-world settings, that means it can climb 45-degree staircases, cross rocky paths, and transition seamlessly from indoor to outdoor operation without missing a beat. Arguably the most buzzworthy trick in its repertoire is the ride-on feature. While "quadruped" robots usually conjure up images of helpful mechanical “dogs” trotting beside you, the B2-W can support the weight of an adult, turning it into a legitimate personal transport over rough or slippery ground. This is all made possible by its formidable load capacity of up to 120 kg in standing mode, combined with a battery system of more than 2 kWh. Under ideal conditions, it can keep going for up to 50 km with a 40 kg load, though your mileage may literally vary. Unsurprisingly, all this power and agility have sparked a wave of conversation—both fascination and worry. People imagine scenarios where a B2-W might chase intruders or become militarized, carrying weapons rather than passengers or equipment. As technology marches forward, these concerns aren’t completely unfounded, but it also opens doors for legitimate uses in research, construction, rescue operations, and beyond. The B2-W’s adaptability, speed, and load-bearing capacities make it a compelling platform for anyone investigating the boundaries of legged robotics. Ultimately, the B2-W’s debut underscores just how quickly Chinese robotics—indeed, robotics worldwide—is evolving. From advanced AI navigation to all-terrain endurance, it’s pushing the envelope of what’s possible in the quadruped robot space. While it might look like a mechanical cousin of nature’s best pack animals, the B2-W is very much a product of cutting-edge engineering.

Ed Krassenstein

177,382 görüntüleme • 1 yıl önce