Difference between revisions of "Time"
m |
m (→What Powers An Electron?) |
||
| (68 intermediate revisions by the same user not shown) | |||
| Line 1: | Line 1: | ||
| + | __NOTOC__ | ||
{{#seo: | {{#seo: | ||
| − | |title= | + | |title=Time |
|titlemode=append | |titlemode=append | ||
| − | |keywords= | + | |keywords=Time, Atomic Clocks, Optical Lattice Clocks, PNT, GPS, NIST, USNO, AI, Signal Processing, Spacetime, Synchronization, Quantum Sensors, Navigation |
| + | |description=An exploration of timekeeping, from historical devices to next-generation optical lattice clocks, AI-driven PNT resilience, and the physics of spacetime. | ||
<!-- Google tag (gtag.js) --> | <!-- Google tag (gtag.js) --> | ||
| Line 20: | Line 22: | ||
[https://www.bing.com/news/search?q=ai+clock+time+keep+GPS+position+~navigationtiming&qft=interval%3d%228%22 ...Bing News] | [https://www.bing.com/news/search?q=ai+clock+time+keep+GPS+position+~navigationtiming&qft=interval%3d%228%22 ...Bing News] | ||
| − | * [[Time]] ... [[Causation vs. Correlation#Retrocausality| Retrocausality]] ... [[Quantum#Delayed Choice Quantum Eraser|Delayed Choice Quantum Eraser]] ... [[Quantum]] | + | * [[Time]] ... [[Time#Positioning, Navigation and Timing (PNT)|PNT]] ... [[Time#Global Positioning System (GPS)|GPS]] ... [[Causation vs. Correlation#Retrocausality| Retrocausality]] ... [[Quantum#Delayed Choice Quantum Eraser|Delayed Choice Quantum Eraser]] ... [[Quantum]] |
* [[Government Services]]: | * [[Government Services]]: | ||
** [[National Institute of Standards and Technology (NIST)]] ... [https://www.nist.gov/pml/time-and-frequency-division Time and Frequency Division, Physical Measurement Laboratory] | ** [[National Institute of Standards and Technology (NIST)]] ... [https://www.nist.gov/pml/time-and-frequency-division Time and Frequency Division, Physical Measurement Laboratory] | ||
** [[U.S. Department of Homeland Security (DHS)]] ... [https://www.dhs.gov/science-and-technology/pnt-program Science and Technology (S&T) Positioning, Navigation, and Timing (PNT) Program] | ** [[U.S. Department of Homeland Security (DHS)]] ... [https://www.dhs.gov/science-and-technology/pnt-program Science and Technology (S&T) Positioning, Navigation, and Timing (PNT) Program] | ||
** [[Defense]] ... [https://www.cnmoc.usff.navy.mil/Our-Commands/United-States-Naval-Observatory/Precise-Time-Department/ Precise Time Department ... U.S. Naval Observatory has maintained a Time Service Department since 1880] | ** [[Defense]] ... [https://www.cnmoc.usff.navy.mil/Our-Commands/United-States-Naval-Observatory/Precise-Time-Department/ Precise Time Department ... U.S. Naval Observatory has maintained a Time Service Department since 1880] | ||
| + | * [[Perspective]] ... [[Context]] ... [[In-Context Learning (ICL)]] ... [[Transfer Learning]] ... [[Out-of-Distribution (OOD) Generalization]] | ||
* [https://www.npl.co.uk/ntc National Timing Centre] ... Assured Time and Frequency for the UK | * [https://www.npl.co.uk/ntc National Timing Centre] ... Assured Time and Frequency for the UK | ||
* [https://en.wikipedia.org/wiki/Time Time] ...[https://en.wikipedia.org/wiki/Coordinated_Universal_Time Coordinated Universal Time UTC] ... [https://en.wikipedia.org/wiki/Clock Clock] ...[https://en.wikipedia.org/wiki/History_of_timekeeping_devices Timekeeping | Wikipedia] | * [https://en.wikipedia.org/wiki/Time Time] ...[https://en.wikipedia.org/wiki/Coordinated_Universal_Time Coordinated Universal Time UTC] ... [https://en.wikipedia.org/wiki/Clock Clock] ...[https://en.wikipedia.org/wiki/History_of_timekeeping_devices Timekeeping | Wikipedia] | ||
| Line 39: | Line 42: | ||
* [https://spectrum.ieee.org/qa-creating-time-crystals-using-quantum-computers What’s a Time Crystal? | Charles Q. Choi - IEEE Spectrum] ... And how do Google researchers use quantum computers to make them? ... quantum system of many particles that organize themselves into a periodic pattern of motion—periodic in time rather than in space—that persists in perpetuity. | * [https://spectrum.ieee.org/qa-creating-time-crystals-using-quantum-computers What’s a Time Crystal? | Charles Q. Choi - IEEE Spectrum] ... And how do Google researchers use quantum computers to make them? ... quantum system of many particles that organize themselves into a periodic pattern of motion—periodic in time rather than in space—that persists in perpetuity. | ||
* [https://spectrum.ieee.org/time-reversal-interface This Mirror Reverses How Light Travels in Time There are already applications in wireless, radar, and optical-computing | Charles Q. Choi - IEEE Spectrum] ... There are already applications in wireless, radar, and optical-computing ... These applications often reverse the order of signals to help process them. | * [https://spectrum.ieee.org/time-reversal-interface This Mirror Reverses How Light Travels in Time There are already applications in wireless, radar, and optical-computing | Charles Q. Choi - IEEE Spectrum] ... There are already applications in wireless, radar, and optical-computing ... These applications often reverse the order of signals to help process them. | ||
| + | * [https://www.nist.gov/news-events/news/2025/03/nist-advances-optical-lattice-clock-standards-global-timing | NIST - March 2025] | ||
| + | ** NIST and USNO report successful integration of next-generation optical lattice clocks, marking the beginning of the transition away from cesium-based standards. | ||
| + | * [https://www.nature.com/articles/s41586-025-08992-w AI-Optimized Synchronization for Global Atomic Networks | Nature - June 2025] | ||
| + | ** New research demonstrates how machine learning models reduce jitter in distributed atomic clock networks by 40%. | ||
| + | * [https://www.gpsworld.com/ai-driven-pnt-resilience-against-spoofing-2026/ AI-Driven PNT Resilience in Critical Infrastructure | GPS World - January 2026] | ||
| + | ** Detailed analysis of how neural-network-based signal processing identifies and mitigates GPS spoofing in real-time. | ||
| − | = | + | = Recent Developments = |
| − | + | As of 2025 and 2026, the field of metrology is undergoing a paradigm shift. The NIST Time and Frequency Division, in collaboration with the U.S. Naval Observatory (USNO), has accelerated the deployment of optical lattice clocks. These systems utilize lasers to trap atoms in a lattice structure, allowing for measurement precision orders of magnitude higher than traditional cesium fountain clocks. This transition is essential for the next generation of global timing standards, which require sub-nanosecond stability to support advanced quantum communication and deep-space navigation. | |
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | + | Furthermore, AI-optimized synchronization has become a cornerstone of modern timing infrastructure. By applying deep learning to the noise characteristics of atomic clocks, researchers can now predict and compensate for environmental drift in real-time, ensuring that distributed networks remain synchronized even when satellite-based reference signals are temporarily unavailable. | |
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
= What Time Is It? = | = What Time Is It? = | ||
* [https://www.darpa.mil/news-events/2019-08-20 DARPA Making Progress on Miniaturized Atomic Clocks for Future PNT Applications | ][[Defense#US Defense Advanced Research Projects Agency (DARPA)|US Defense Advanced Research Projects Agency (DARPA)]] | * [https://www.darpa.mil/news-events/2019-08-20 DARPA Making Progress on Miniaturized Atomic Clocks for Future PNT Applications | ][[Defense#US Defense Advanced Research Projects Agency (DARPA)|US Defense Advanced Research Projects Agency (DARPA)]] | ||
| − | |||
| − | |||
{|<!-- T --> | {|<!-- T --> | ||
| Line 110: | Line 61: | ||
{| class="wikitable" style="width: 550px;" | {| class="wikitable" style="width: 550px;" | ||
|| | || | ||
| − | <youtube> | + | <youtube>hzLTgtFaPLY</youtube> |
| − | <b> | + | <b>Atomic Clocks Are Reinventing Time |
| − | </b><br> | + | </b><br>Though humans don't experience it in their daily lives, gravity and movement can change how time elapses. Ultra-precise atomic clocks are now able to measure these tiny changes, known as time dilation. It's a technological advance that could revolutionize our understanding of time. |
|} | |} | ||
|<!-- M --> | |<!-- M --> | ||
| Line 217: | Line 168: | ||
<hr> | <hr> | ||
| + | |||
| + | |||
| + | <br> | ||
| + | |||
| + | <youtube>FBaZQtKaHs0</youtube> | ||
| + | |||
| + | == <span id="Light Clock 1905 - Einstein's Thought Experiment"></span>Light Clock 1905 - Einstein's Thought Experiment == | ||
| + | |||
| + | Imagine you have a special clock that works with light. This clock has two mirrors facing each other, and a beam of light bounces up and down between them. Every time the light goes from the bottom mirror to the top and back down, it counts as one tick of the clock. Einstein's light clock thought experiment shows that when things move fast, time slows down for them. This surprising idea helps us understand the nature of time and motion in our universe. Now, let's think about this clock in two different situations. | ||
| + | |||
| + | |||
| + | <b>Situation 1: Standing Still: </b>First, picture the clock sitting on a table, not moving at all. The light goes straight up to the top mirror and straight back down to the bottom mirror. If you measured the time it takes for the light to do this, you would see it takes a certain amount of time for one tick. | ||
| + | |||
| + | <b>Situation 2: Moving Clock: </b>Now, imagine you place the clock on a skateboard and push it so it's moving. As the clock moves, the light beam has to travel a different path. Instead of going straight up and down, it now has to go in a diagonal path because the mirrors are moving while the light is traveling. It's like when you throw a ball to a friend while running; the ball has to cover more distance because both of you are moving. | ||
| + | |||
| + | |||
| + | <i>What This Means</i> ... Because the light in the moving clock has to travel a longer, diagonal path, it takes more time for one tick to happen compared to when the clock is standing still. This means that for someone watching the moving clock, time appears to run slower for the moving clock compared to a clock that's not moving. This idea is called time dilation. It means that time actually passes at different rates depending on how fast something is moving. If you were riding on the skateboard with the clock, you wouldn't notice anything different about the clock's ticks. But someone standing still and watching you would see that your clock ticks more slowly. | ||
| + | |||
| + | |||
| + | </i>Why It Matters</i> ... This thought experiment helps us understand that time isn't the same everywhere and can be different depending on how fast things are moving. This concept is a key part of Einstein's theory of special relativity, which helps scientists understand how the universe works, especially when things are moving very fast, like spaceships or particles in a collider. | ||
| + | |||
| + | {| style="width: 100%; text-align: center;" | ||
| + | |- | ||
| + | | <youtube width="400" height="225">b2Vd9HGB5XQ</youtube> | ||
| + | | <youtube width="400" height="225">lNCcdYYa8fg</youtube> | ||
| + | |} | ||
| + | |||
| + | = What Powers An Electron? = | ||
| + | Sir Roger Penrose draws a fascinating connection between the electron’s constant motion and the nature of time itself (23:30). Here is the breakdown of that relationship: | ||
| + | |||
| + | * '''The Asymmetry of Time:''' While the Schrödinger equation (the math that describes quantum waves) is perfectly time-symmetric meaning it works exactly the same whether you run time forward or backward our daily experience of reality is not (24:10-24:25). We experience an "arrow of time" where heat flows from hot to cold, and shattered objects don't spontaneously reassemble. | ||
| + | * '''The Universe’s Restlessness:''' Just as the electron cannot stop moving because it would violate the geometric rules of quantum confinement, the universe as a whole cannot "stop" and settle into a state of maximum disorder (equilibrium) (25:40-25:55). | ||
| + | * '''The Cosmic Connection:''' Penrose suggests that the electron's inability to sit still is a local, miniature echo of the universe's own history (25:34). The universe began in an incredibly specific, low-entropy state, and the continuous "unfolding" of everything since the passage of time is essentially the process of the universe moving toward a more disordered state (24:40-25:15). | ||
| + | |||
| + | Ultimately, Penrose proposes that when we finally figure out why a quantum wave "collapses" into a definite particle, we might discover that the answer wasn't just about electrons, but about why time exists at all and why the universe is set up the way it is (31:09-31:34). | ||
| + | |||
| + | <youtube>QoGBAEd1xa0</youtube> | ||
= <span id="Precision Time Protocol (PTP)"></span>Precision Time Protocol (PTP) = | = <span id="Precision Time Protocol (PTP)"></span>Precision Time Protocol (PTP) = | ||
| Line 254: | Line 242: | ||
[https://www.google.com/search?q=Navigation+positioning+Aid+radar+waves+artificial+intelligence+ai ...Google search] | [https://www.google.com/search?q=Navigation+positioning+Aid+radar+waves+artificial+intelligence+ai ...Google search] | ||
| + | * [[Time]] ... [[Time#Positioning, Navigation and Timing (PNT)|PNT]] ... [[Time#Global Positioning System (GPS)|GPS]] ... [[Causation vs. Correlation#Retrocausality| Retrocausality]] ... [[Quantum#Delayed Choice Quantum Eraser|Delayed Choice Quantum Eraser]] ... [[Quantum]] | ||
* [[Case Studies]] | * [[Case Studies]] | ||
** [[Smart Cities]] | ** [[Smart Cities]] | ||
| Line 263: | Line 252: | ||
** [[Defense]] | ** [[Defense]] | ||
* [[Autonomous Drones]] | * [[Autonomous Drones]] | ||
| + | * [https://www.google.com/maps Google Maps] ... [https://wiki-map.com/map/?locale=en&lat=38.8416&lng=-75.2398 Wiki-Map] ... [https://www.marinetraffic.com/en/ais/home/centerx:-75.1/centery:38.9/zoom:11 Marine Traffic] ... [https://www.marinevesseltraffic.com/DELAWARE-BAY/ship-traffic-tracker Marine Vessel Traffic] ... [https://storymaps.arcgis.com/stories/36a7f6a6f5a9448496de641cf64bd375 Interactive Map: Russia's Invasion of Ukraine] | ||
* [https://thenextweb.com/artificial-intelligence/2019/03/04/deepmind-teaches-ai-to-follow-navigational-directions-like-humans/ Deepmind teaches AI to follow navigational directions like humans | Tristan Greene] | * [https://thenextweb.com/artificial-intelligence/2019/03/04/deepmind-teaches-ai-to-follow-navigational-directions-like-humans/ Deepmind teaches AI to follow navigational directions like humans | Tristan Greene] | ||
* [https://en.wikipedia.org/wiki/History_of_navigation History of Navigation | Wikipedia] | * [https://en.wikipedia.org/wiki/History_of_navigation History of Navigation | Wikipedia] | ||
| Line 271: | Line 261: | ||
Navigation is a field of study that focuses on the process of monitoring and controlling the movement of a craft or vehicle from one place to another.[1] The field of navigation includes four general categories: land navigation, marine navigation, aeronautic navigation, and space navigation. [https://en.wikipedia.org/wiki/Navigation Navigation | Wikipedia] | Navigation is a field of study that focuses on the process of monitoring and controlling the movement of a craft or vehicle from one place to another.[1] The field of navigation includes four general categories: land navigation, marine navigation, aeronautic navigation, and space navigation. [https://en.wikipedia.org/wiki/Navigation Navigation | Wikipedia] | ||
| + | |||
| + | In critical infrastructure, AI-driven signal processing is fundamentally enhancing PNT resilience. By utilizing deep learning models to analyze the spectral characteristics of incoming signals, systems can now distinguish between authentic satellite transmissions and malicious spoofing attempts. These AI models operate at the edge, processing raw radio frequency data to detect anomalies in signal arrival angles and timing offsets, providing a robust defense against jamming and spoofing in environments where GPS is contested. | ||
| + | |||
| + | <youtube>p-9wxYdJing</youtube> | ||
{|<!-- T --> | {|<!-- T --> | ||
| Line 312: | Line 306: | ||
[https://www.google.com/search?q=GPS+Global+Positioning+GNSS+clock+time+keeping+artificial+intelligence+ai ...Google search] | [https://www.google.com/search?q=GPS+Global+Positioning+GNSS+clock+time+keeping+artificial+intelligence+ai ...Google search] | ||
| + | * [[Time]] ... [[Time#Positioning, Navigation and Timing (PNT)|PNT]] ... [[Time#Global Positioning System (GPS)|GPS]] ... [[Causation vs. Correlation#Retrocausality| Retrocausality]] ... [[Quantum#Delayed Choice Quantum Eraser|Delayed Choice Quantum Eraser]] ... [[Quantum]] | ||
* [[Astronomy]] | * [[Astronomy]] | ||
* GPS has been copied by [[Government Services#Russia|Russia's]] [https://en.wikipedia.org/wiki/GLONASS GLONASS], Europe’s [https://en.wikipedia.org/wiki/Galileo_(satellite_navigation) Galileo], [[Government Services#China|China's]] [https://en.wikipedia.org/wiki/BeiDou BeiDou], India’s IRNSS, and Japan’s [https://en.wikipedia.org/wiki/Quasi-Zenith_Satellite_System QZSS] | * GPS has been copied by [[Government Services#Russia|Russia's]] [https://en.wikipedia.org/wiki/GLONASS GLONASS], Europe’s [https://en.wikipedia.org/wiki/Galileo_(satellite_navigation) Galileo], [[Government Services#China|China's]] [https://en.wikipedia.org/wiki/BeiDou BeiDou], India’s IRNSS, and Japan’s [https://en.wikipedia.org/wiki/Quasi-Zenith_Satellite_System QZSS] | ||
| Line 321: | Line 316: | ||
* [https://wtop.com/science/2020/11/spacex-launches-third-generation-gps-navigation-satellite/ SpaceX launches third-generation GPS navigation satellite | CBS News] ...GPS-3 satellite — the fourth in a series of more powerful third-generation navigation stations built by Lockheed Martin — was expected to be deployed about a 90 minutes after liftoff. Assuming tests and checkout go well, it will join a globe-spanning constellation of 31 GPS satellites. | * [https://wtop.com/science/2020/11/spacex-launches-third-generation-gps-navigation-satellite/ SpaceX launches third-generation GPS navigation satellite | CBS News] ...GPS-3 satellite — the fourth in a series of more powerful third-generation navigation stations built by Lockheed Martin — was expected to be deployed about a 90 minutes after liftoff. Assuming tests and checkout go well, it will join a globe-spanning constellation of 31 GPS satellites. | ||
* [https://www.militaryaerospace.com/sensors/article/14187009/navigation-and-guidance-asic-gps Air Force asks three U.S. contractors to develop miniature ASIC technology for next-gen GPS receivers | John Keller - Military & Aerospace Electronics] ...small low-power-consumption GPS enabling technologies to include a next-generation ASIC for secure GPS land navigation. | * [https://www.militaryaerospace.com/sensors/article/14187009/navigation-and-guidance-asic-gps Air Force asks three U.S. contractors to develop miniature ASIC technology for next-gen GPS receivers | John Keller - Military & Aerospace Electronics] ...small low-power-consumption GPS enabling technologies to include a next-generation ASIC for secure GPS land navigation. | ||
| − | * [https://spectrum.ieee.org/tech-talk/aerospace/satellites/final-piece-of-chinas-beidou-navigation-satellite-system-comes-online | + | * [https://spectrum.ieee.org/tech-talk/aerospace/satellites/final-piece-of-chinas-beidou-navigation-satellite-system-comes-online [Government Services#China|China] Launches Beidou, Its Own Version of GPS | Andrew Jones - IEEE Spectrum] ...[[Government Services#China|China]] places the final Beidou navigation system satellite into orbit |
* [https://eurasiantimes.com/the-indian-navigation-satellite-system-irnss-approved-by-imp-for-global-operations/ Big News For ISRO! Indian Navigation System (IRNSS) Gets Approval By IMP For Global Operations | Smriti Chaudhary - The EurAsuan Times] | * [https://eurasiantimes.com/the-indian-navigation-satellite-system-irnss-approved-by-imp-for-global-operations/ Big News For ISRO! Indian Navigation System (IRNSS) Gets Approval By IMP For Global Operations | Smriti Chaudhary - The EurAsuan Times] | ||
| Line 373: | Line 368: | ||
{| class="wikitable" style="width: 550px;" | {| class="wikitable" style="width: 550px;" | ||
|| | || | ||
| − | <youtube> | + | <youtube>0k2QdX6yZiw</youtube> |
| − | <b> | + | <b>Brian Cox Just Announced Mind-Bending Theory Of Time |
| − | </b><br> | + | </b><br>Everything in our universe seems perfect. There are laws governing the entire universe, but certain mysteries have remained unsolved despite decades of research. Why does time travel in one direction? What is the nature of reality? Why does Gravity exist? Why does time slow down when we travel at the speed of light? These are questions that have fascinated us for millennia. |
|} | |} | ||
|}<!-- B --> | |}<!-- B --> | ||
| Line 390: | Line 385: | ||
{| class="wikitable" style="width: 550px;" | {| class="wikitable" style="width: 550px;" | ||
|| | || | ||
| − | <youtube> | + | <youtube>8eOEhphQz6k</youtube> |
| − | <b> | + | <b>Using AI to get city and weather from GPS |
| − | </b><br> | + | </b><br>A quick demo of how Noodl AI and the Function Co-pilot node can be used to call different API's from a simple text prompts to gather location and weather data from location coordinates. |
|} | |} | ||
|}<!-- B --> | |}<!-- B --> | ||
| Line 399: | Line 394: | ||
[https://www.youtube.com/results?search_query=outer+space+Positioning+Navigation+Timing+PNT+GPS+artificial+intelligence+ai YouTube search...] | [https://www.youtube.com/results?search_query=outer+space+Positioning+Navigation+Timing+PNT+GPS+artificial+intelligence+ai YouTube search...] | ||
[https://www.google.com/search?q=outer+space+Positioning+Navigation+Timing+PNT+GPS+artificial+intelligence+ai ...Google search] | [https://www.google.com/search?q=outer+space+Positioning+Navigation+Timing+PNT+GPS+artificial+intelligence+ai ...Google search] | ||
| − | + | * [[Computer_Networks#Space-based Data Centers|Space-based Data Centers]] | |
* [https://futurism.com/the-byte/planetary-navigation-nasa-space-gps NASA is Making An AI-Based GPS For Space | Kristin Houser] | * [https://futurism.com/the-byte/planetary-navigation-nasa-space-gps NASA is Making An AI-Based GPS For Space | Kristin Houser] | ||
* [https://frontierdevelopmentlab.org/#!/ Frontier Development Lab (FDL)] ...Artificial Intelligence Research for Space Science, Exploration & All Humankind | * [https://frontierdevelopmentlab.org/#!/ Frontier Development Lab (FDL)] ...Artificial Intelligence Research for Space Science, Exploration & All Humankind | ||
| Line 552: | Line 547: | ||
<b>PULP-DroNet -- Autonomous Artificial Intelligence-powered Nano-Drone | <b>PULP-DroNet -- Autonomous Artificial Intelligence-powered Nano-Drone | ||
</b><br>PULP-DroNet is a [[Deep Learning]]-powered visual navigation engine that enables autonomous navigation of a pocket-size quadrotor in a previously unseen environment. | </b><br>PULP-DroNet is a [[Deep Learning]]-powered visual navigation engine that enables autonomous navigation of a pocket-size quadrotor in a previously unseen environment. | ||
| − | Thanks to PULP-DroNet the nano-drone can explore the environment, avoiding collisions also with dynamic obstacles, in complete autonomy -- no human operator, no ad-hoc external signals, and no remote laptop! This means that all the complex computations are done directly aboard the vehicle and very fast. The visual navigation engine is composed of both a software and a hardware part. The former is based on the previous DroNet [1] project developed by the RPG [2] from the University of Zürich (UZH). DroNet is a shallow convolutional neural network (CNN) which has been used to control a standard-size quadrotor in a set of environments via remote computation. The hardware soul of PULP-DroNet is embodied by the PULP-Shield an ultra-low power visual navigation module featuring a Parallel Ultra-Low-Power (PULP) GAP8 System-on-Chip (SoC) from GreenWaves Technologies [3], an ultra-low power camera, and off-chip Flash/DRAM memory; the shield is designed as a pluggable PCB for the Crazyflie 2.0 [4] nano-drone. Then, we developed a general methodology for deploying state-of-the-art [[Deep Learning]] algorithms on top of ultra-low power embedded computation nodes, like a miniaturized drone. Our novel methodology allowed us first to deploy DroNet on the PULP-Shield, and then demonstrating how it enables the execution the CNN on board the CrazyFlie 2.0 within only 64-284mW and with a throughput of 6-18 frame-per-second! Finally, we field-prove our methodology presenting a closed-loop fully working demonstration of vision-driven autonomous navigation relying only on onboard resources, and within an ultra-low power budget. We release here, as open source, all our code, hardware designs, datasets, and trained networks. Reference: D. Palossi, F. Conti, and L. Benini An Open Source and Open Hardware [[Deep Learning]]-powered Visual Navigation Engine for Autonomous Nano-UAVs Preprint: https://arxiv.org/abs/1905.04166 PULP-Platform Project Webpage: https://www.pulp-platform.org/ | + | Thanks to PULP-DroNet the nano-drone can explore the environment, avoiding collisions also with dynamic obstacles, in complete autonomy -- no human operator, no ad-hoc external signals, and no remote laptop! This means that all the complex computations are done directly aboard the vehicle and very fast. The visual navigation engine is composed of both a software and a hardware part. The former is based on the previous DroNet [1] project developed by the RPG [2] from the University of Zürich (UZH). DroNet is a shallow convolutional neural network (CNN) which has been used to control a standard-size quadrotor in a set of environments via remote computation. The hardware soul of PULP-DroNet is embodied by the PULP-Shield an ultra-low power visual navigation module featuring a Parallel Ultra-Low-Power (PULP) GAP8 System-on-Chip (SoC) from GreenWaves Technologies [3], an ultra-low power camera, and off-chip Flash/DRAM [[memory]]; the shield is designed as a pluggable PCB for the Crazyflie 2.0 [4] nano-drone. Then, we developed a general methodology for deploying state-of-the-art [[Deep Learning]] algorithms on top of ultra-low power embedded computation nodes, like a miniaturized drone. Our novel methodology allowed us first to deploy DroNet on the PULP-Shield, and then demonstrating how it enables the execution the CNN on board the CrazyFlie 2.0 within only 64-284mW and with a throughput of 6-18 frame-per-second! Finally, we field-prove our methodology presenting a closed-loop fully working demonstration of vision-driven autonomous navigation relying only on onboard resources, and within an ultra-low power budget. We release here, as open source, all our code, hardware designs, datasets, and trained networks. Reference: D. Palossi, F. Conti, and L. Benini An Open Source and Open Hardware [[Deep Learning]]-powered Visual Navigation Engine for Autonomous Nano-UAVs Preprint: https://arxiv.org/abs/1905.04166 PULP-Platform Project Webpage: https://www.pulp-platform.org/ |
|} | |} | ||
|}<!-- B --> | |}<!-- B --> | ||
| Line 591: | Line 586: | ||
|} | |} | ||
|}<!-- B --> | |}<!-- B --> | ||
| + | |||
| + | Something is jamming GPS over Europe... | ||
| + | |||
| + | <youtube>tz23G_UXCGA</youtube> | ||
=== <span id="Geolocation: Locating GPS/GNSS Jamming and Spoofing"></span>Geolocation: Locating GPS/GNSS Jamming and Spoofing === | === <span id="Geolocation: Locating GPS/GNSS Jamming and Spoofing"></span>Geolocation: Locating GPS/GNSS Jamming and Spoofing === | ||
| Line 676: | Line 675: | ||
[https://www.google.com/search?q=Long+Range+Navigation+Loran+artificial+intelligence+ai ...Google search] | [https://www.google.com/search?q=Long+Range+Navigation+Loran+artificial+intelligence+ai ...Google search] | ||
| − | * [https://www.intelligent-aerospace.com/home/article/14181475/eloran-loran-c-gps-gnss Public- | + | * [https://www.intelligent-aerospace.com/home/article/14181475/eloran-loran-c-gps-gnss Public- |
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
| − | |||
Latest revision as of 18:37, 5 September 2026
YouTube ... Quora ...Google search ...Google News ...Bing News
- Time ... PNT ... GPS ... Retrocausality ... Delayed Choice Quantum Eraser ... Quantum
- Government Services:
- National Institute of Standards and Technology (NIST) ... Time and Frequency Division, Physical Measurement Laboratory
- U.S. Department of Homeland Security (DHS) ... Science and Technology (S&T) Positioning, Navigation, and Timing (PNT) Program
- Defense ... Precise Time Department ... U.S. Naval Observatory has maintained a Time Service Department since 1880
- Perspective ... Context ... In-Context Learning (ICL) ... Transfer Learning ... Out-of-Distribution (OOD) Generalization
- National Timing Centre ... Assured Time and Frequency for the UK
- Time ...Coordinated Universal Time UTC ... Clock ...Timekeeping | Wikipedia
- The Very Long and Fascinating History of Clocks | Christopher McFadden - Interesting Engineering
- What Is a Leap Second? | Konstantin Bikos and Anne Buckle - timeanddate.com
- Atomic clocks ...Tide Clock | Amazon
- Clock synchronization
- Time: Do the past, present, and future exist all at once? | BigThink (video) ... astrophysicist Michelle Thaller, science educator Bill Nye, author James Gleick, and neuroscientist Dean Buonomano discuss how the human brain perceives of the passage of time, the idea in theoretical physics of time as a fourth dimension, and the theory that space and time are interwoven.
- Cybersecurity
- Crown Sterling ... changing the face of digital security with its non-integer-based algorithms that leverage time, AI and irrational numbers.
- Quantum cryptography ... the infosec industry looks to quantum cryptography and quantum key distribution (QKD)
- What’s a Time Crystal? | Charles Q. Choi - IEEE Spectrum ... And how do Google researchers use quantum computers to make them? ... quantum system of many particles that organize themselves into a periodic pattern of motion—periodic in time rather than in space—that persists in perpetuity.
- This Mirror Reverses How Light Travels in Time There are already applications in wireless, radar, and optical-computing | Charles Q. Choi - IEEE Spectrum ... There are already applications in wireless, radar, and optical-computing ... These applications often reverse the order of signals to help process them.
- | NIST - March 2025
- NIST and USNO report successful integration of next-generation optical lattice clocks, marking the beginning of the transition away from cesium-based standards.
- AI-Optimized Synchronization for Global Atomic Networks | Nature - June 2025
- New research demonstrates how machine learning models reduce jitter in distributed atomic clock networks by 40%.
- AI-Driven PNT Resilience in Critical Infrastructure | GPS World - January 2026
- Detailed analysis of how neural-network-based signal processing identifies and mitigates GPS spoofing in real-time.
Recent Developments
As of 2025 and 2026, the field of metrology is undergoing a paradigm shift. The NIST Time and Frequency Division, in collaboration with the U.S. Naval Observatory (USNO), has accelerated the deployment of optical lattice clocks. These systems utilize lasers to trap atoms in a lattice structure, allowing for measurement precision orders of magnitude higher than traditional cesium fountain clocks. This transition is essential for the next generation of global timing standards, which require sub-nanosecond stability to support advanced quantum communication and deep-space navigation.
Furthermore, AI-optimized synchronization has become a cornerstone of modern timing infrastructure. By applying deep learning to the noise characteristics of atomic clocks, researchers can now predict and compensate for environmental drift in real-time, ensuring that distributed networks remain synchronized even when satellite-based reference signals are temporarily unavailable.
What Time Is It?
- DARPA Making Progress on Miniaturized Atomic Clocks for Future PNT Applications | US Defense Advanced Research Projects Agency (DARPA)
|
|
|
|
|
|
|
|
|
|
The Earth's rotation is so accurate it varies only in milliseconds ...do you feel the Earth rotation slowing down?
Light Clock 1905 - Einstein's Thought Experiment
Imagine you have a special clock that works with light. This clock has two mirrors facing each other, and a beam of light bounces up and down between them. Every time the light goes from the bottom mirror to the top and back down, it counts as one tick of the clock. Einstein's light clock thought experiment shows that when things move fast, time slows down for them. This surprising idea helps us understand the nature of time and motion in our universe. Now, let's think about this clock in two different situations.
Situation 1: Standing Still: First, picture the clock sitting on a table, not moving at all. The light goes straight up to the top mirror and straight back down to the bottom mirror. If you measured the time it takes for the light to do this, you would see it takes a certain amount of time for one tick.
Situation 2: Moving Clock: Now, imagine you place the clock on a skateboard and push it so it's moving. As the clock moves, the light beam has to travel a different path. Instead of going straight up and down, it now has to go in a diagonal path because the mirrors are moving while the light is traveling. It's like when you throw a ball to a friend while running; the ball has to cover more distance because both of you are moving.
What This Means ... Because the light in the moving clock has to travel a longer, diagonal path, it takes more time for one tick to happen compared to when the clock is standing still. This means that for someone watching the moving clock, time appears to run slower for the moving clock compared to a clock that's not moving. This idea is called time dilation. It means that time actually passes at different rates depending on how fast something is moving. If you were riding on the skateboard with the clock, you wouldn't notice anything different about the clock's ticks. But someone standing still and watching you would see that your clock ticks more slowly.
Why It Matters ... This thought experiment helps us understand that time isn't the same everywhere and can be different depending on how fast things are moving. This concept is a key part of Einstein's theory of special relativity, which helps scientists understand how the universe works, especially when things are moving very fast, like spaceships or particles in a collider.
What Powers An Electron?
Sir Roger Penrose draws a fascinating connection between the electron’s constant motion and the nature of time itself (23:30). Here is the breakdown of that relationship:
- The Asymmetry of Time: While the Schrödinger equation (the math that describes quantum waves) is perfectly time-symmetric meaning it works exactly the same whether you run time forward or backward our daily experience of reality is not (24:10-24:25). We experience an "arrow of time" where heat flows from hot to cold, and shattered objects don't spontaneously reassemble.
- The Universe’s Restlessness: Just as the electron cannot stop moving because it would violate the geometric rules of quantum confinement, the universe as a whole cannot "stop" and settle into a state of maximum disorder (equilibrium) (25:40-25:55).
- The Cosmic Connection: Penrose suggests that the electron's inability to sit still is a local, miniature echo of the universe's own history (25:34). The universe began in an incredibly specific, low-entropy state, and the continuous "unfolding" of everything since the passage of time is essentially the process of the universe moving toward a more disordered state (24:40-25:15).
Ultimately, Penrose proposes that when we finally figure out why a quantum wave "collapses" into a definite particle, we might discover that the answer wasn't just about electrons, but about why time exists at all and why the universe is set up the way it is (31:09-31:34).
Precision Time Protocol (PTP)
YouTube search... ...Google search
- Precision Time Protocol PTP-1588 | IEEE ...High precision clock synchronization that computes latency and offset
- How Precision Time Protocol is being deployed at Meta | Oleg Obleukhov & Ahmad Byagowi - CONNECTIVITY, NETWORKING & TRAFFIC, OPEN SOURCE, PRODUCTION ENGINEERING, UNCATEGORIZED, WEB
- PTP IEEE 1588v2 | Juniper Networks ...Time Management Administration Guide
The Precision Time Protocol (PTP) is a protocol used to synchronize clocks throughout a computer network. On a local area network, it achieves clock accuracy in the sub-microsecond range, making it suitable for measurement and control systems.[1] PTP is currently employed to synchronize financial transactions, mobile phone tower transmissions, sub-sea acoustic arrays, and networks that require precise timing but lack access to satellite navigation signals.Wikipedia
Overall, its structure is similar to NTP in that there are different levels within it and GPS satellites can serve as its time source. However, the major difference between Network Time Protocol (NTP) and PTP is that PTP is accurate to microseconds, meaning that it is more exact than NTP
|
|
YouTube search... ...Google search
- Time ... PNT ... GPS ... Retrocausality ... Delayed Choice Quantum Eraser ... Quantum
- Case Studies
- Autonomous Drones
- Google Maps ... Wiki-Map ... Marine Traffic ... Marine Vessel Traffic ... Interactive Map: Russia's Invasion of Ukraine
- Deepmind teaches AI to follow navigational directions like humans | Tristan Greene
- History of Navigation | Wikipedia
- Department of Homeland Security (DHS) Science and Technology (S&T) Positioning, Navigation, and Timing (PNT) Program
- Navigation Aids | Department of Transportation, Federal Aviation Administration
- VN-300 | Vectornav ...miniature, high-performance Dual Antenna Global Navigation Satellite Systems (GNSS)-Aided Inertial Navigation System (INS) that combines micro-electromechanical systems (MEMS) inertial sensors, two high-sensitivity GNSS receivers, and advanced Kalman filtering algorithms to provide optimal estimates of position, velocity, and orientation.
Navigation is a field of study that focuses on the process of monitoring and controlling the movement of a craft or vehicle from one place to another.[1] The field of navigation includes four general categories: land navigation, marine navigation, aeronautic navigation, and space navigation. Navigation | Wikipedia
In critical infrastructure, AI-driven signal processing is fundamentally enhancing PNT resilience. By utilizing deep learning models to analyze the spectral characteristics of incoming signals, systems can now distinguish between authentic satellite transmissions and malicious spoofing attempts. These AI models operate at the edge, processing raw radio frequency data to detect anomalies in signal arrival angles and timing offsets, providing a robust defense against jamming and spoofing in environments where GPS is contested.
|
|
|
|
Global Positioning System (GPS)
YouTube search... ...Google search
- Time ... PNT ... GPS ... Retrocausality ... Delayed Choice Quantum Eraser ... Quantum
- Astronomy
- GPS has been copied by Russia's GLONASS, Europe’s Galileo, China's BeiDou, India’s IRNSS, and Japan’s QZSS
- Artificial intelligence in GPS navigation systems | Jeffrey L. Duffany
- RoadTagger: GPS system upgrade utilizes AI to make sure you're in the right lane | David Nield - New Atlas ...Artificial intelligence to update digital maps and improve GPS navigation | Amit Malewar - InceptiveMind
- GPS.gov ...Timing
- Inside GNSS ...Global Navigation Satellite Systems
- Navstar | Space.com ...is a network of U.S. satellites that provide GPS services
- SpaceX launches third-generation GPS navigation satellite | CBS News ...GPS-3 satellite — the fourth in a series of more powerful third-generation navigation stations built by Lockheed Martin — was expected to be deployed about a 90 minutes after liftoff. Assuming tests and checkout go well, it will join a globe-spanning constellation of 31 GPS satellites.
- Air Force asks three U.S. contractors to develop miniature ASIC technology for next-gen GPS receivers | John Keller - Military & Aerospace Electronics ...small low-power-consumption GPS enabling technologies to include a next-generation ASIC for secure GPS land navigation.
- [Government Services#China|China Launches Beidou, Its Own Version of GPS | Andrew Jones - IEEE Spectrum] ...China places the final Beidou navigation system satellite into orbit
- Big News For ISRO! Indian Navigation System (IRNSS) Gets Approval By IMP For Global Operations | Smriti Chaudhary - The EurAsuan Times
GPS receivers that use the L5 band can pinpoint to within 30 centimeters or 11.8 inches. The GPS concept is based on time and the known position of GPS specialized satellites. The satellites carry very stable atomic clocks that are synchronized with one another and with the ground clocks. Any drift from time maintained on the ground is corrected daily. In the same manner, the satellite locations are known with great precision. GPS receivers have clocks as well, but they are less stable and less precise. Each GPS satellite continuously transmits a radio signal containing the current time and data about its position. Since the speed of radio waves is constant and independent of the satellite speed, the time delay between when the satellite transmits a signal and the receiver receives it is proportional to the distance from the satellite to the receiver. A GPS receiver monitors multiple satellites and solves equations to determine the precise position of the receiver and its deviation from true time. At a minimum, four satellites must be in view of the receiver for it to compute four unknown quantities (three position coordinates and clock deviation from satellite time). Global Positioning System | Wikipedia
|
|
|
|
|
|
|
|
Deep-Space Positioning System (DPS)
YouTube search... ...Google search
- Space-based Data Centers
- NASA is Making An AI-Based GPS For Space | Kristin Houser
- Frontier Development Lab (FDL) ...Artificial Intelligence Research for Space Science, Exploration & All Humankind
|
Jamming and Spoofing
YouTube search... ...Google search
- The Resilient Navigation and Timing Foundation
- Department of Homeland Security (DHS) Science and Technology (S&T) Resilient Positioning, Navigation, and Timing (PNT) Conformance Framework
- The Space Force: A Conversation With United States Secretary Of The Air Force Barbara Barrett | Steve Forbes - Forbes ... We are vulnerable. For example, the U.S. and the global economy are totally dependent on satellites, most especially the GPS, which is operated by the Space Force.
|