Showing posts with label navigation. Show all posts
Showing posts with label navigation. Show all posts

Friday, March 21, 2025

Levy Things and Data Management

 

There's a whole bag of words referring to this one phenomenon we call foraging behavior. Animals poke around for food, poke, poke, poke, and then move to another spot, and poke, poke, poke. A big jump followed by a bunch of little jumps, followed by a big jump, etc. The explore-exploit heuristic it's also called. This behavior is found in many other places, from the way people look for a job to the way atoms move. That's called Brownian motion, or the Drunkard's Walk. It's found in the unconscious  uncontrollable way our eyes move when we look at things, and it's kind of even related to the way we choose baby names over decades. 

The following articles are mostly tangentially related to this phenomenon; they're about navigation and vision, and information theory in general. 
 
A new mechanism for animal food caching behavior discovered
Aug 2024, phys.org

Contrary to the long-held belief that scatter-hoarding animals rely on memory to retrieve cached food items, the researchers propose a static mechanism similar to hash functions used in computing. Hash functions in computing are algorithms that convert input data of any size into a fixed-size string of characters, which typically represents the data in a unique and efficient manner.

The researchers' mathematical model aligns with the activity of hippocampal spatial cells, which respond to an animal's positional attention. The remapping ensures that these cells activate consistently across subsequent visits to the same area but differ between areas.

This remapping, combined with unique cognitive maps, generates persistent hash functions that can aid both food caching and retrieval.

In other words: Both layers are arranged in a two-dimensional grid, with each cell corresponding to a specific location. The cache site is determined by the activity level of the output neurons, known as the cache score.

via Department of Cognition and Brain Sciences and The Department of Animal Sciences at Hebrew University of Jerusalem: Sharon Mordechay et al, A non-memory-based functional neural framework for animal caching behavior, Scientific Reports (2024). DOI: 10.1038/s41598-024-68003-8



Grid cells' rhythmic sweeps reshape understanding of brain's spatial navigation
Feb 2025, phys.org

Grid cells alternate between tracking an animal's real-time position and scanning the environment ahead in a highly regular pattern—sweeping 30 degrees to the right, then 30 degrees to the left—at a rapid pace of ten times per second.

These rhythmic sweeps create a more efficient way to anchor locations relative to one another, providing a richer and more adaptable navigation system than previously imagined.

So it's not exactly the eyes sweeping but the brain?

via Kavli Institute at the Norwegian University of Science and Technology: Abraham Z. Vollan et al, Left–right-alternating theta sweeps in entorhinal–hippocampal maps of space, Nature (2025). DOI: 10.1038/s41586-024-08527-1


How eye saccades enable mammals to simultaneously chase prey and navigate through complex environments
Feb 2025, phys.org

It's almost like we're not designed to look at static images:

Researchers reconstructed the visual fields of freely moving ferrets that were chasing a fleeing target and discovered that eye saccades (very rapid coordinated eye movements) align the world motion—and not the actual thing they are chasing—to the retina and retinal specializations used for high-acuity vision.

Saccades achieve this by countering head rotations to align the area of the sharpest vision with the direction of intended travel and the area of the least motion-induced blur. 

via Max Planck Institute for Neurobiology of Behavior and Max Planck Florida Institute for Neuroscience: Eye saccades align optic flow with retinal specializations during object pursuit in freely moving ferrets, Current Biology (2025). DOI: 10.1016/j.cub.2024.12.032.


Thursday, January 11, 2024

Dematerialization and the Race for Asynchronicity


'Swarmalators' better envision synchronized microbots
Mar 2023, phys.org

The researchers simplified their model to work with just four mathematical constants linked together to produce diverse emergent behaviors, such as aggregation, dispersion, vortices, traveling waves, and bouncing clusters.

The new model can mimic particles in nature that each operate at different natural frequencies, as some objects move slower and faster around a trajectory than others. The researchers also added chirality, or the ability for a particle to move in a circle, because many examples in nature, such as sperm, swim in circles and in vortices. And particles in the model exhibit local coupling, so they sense and respond only to their local neighbors.

At its core, the model combines swarming behaviors with synchronization in time. 
"Swarmalators"

via Cornell University: Steven Ceron et al, Diverse behaviors in non-uniform chiral and non-chiral swarmalators, Nature Communications (2023). DOI: 10.1038/s41467-023-36563-4



Drones navigate unseen environments with liquid neural networks
Apr 2023, phys.org

First, a retronym in the making:
"Inspired by the adaptable nature of organic brains, researchers have introduced..."

You start referring to regular human brains as "organic brains" once some other kind of brain becomes important enough to force a distinction. 

The liquid neural networks can continuously adapt to new data inputs to make reliable decisions in unknown domains like forests, urban landscapes, and environments with added noise, rotation, and occlusion.

The new class of machine-learning algorithms captures the causal structure of tasks from high-dimensional, unstructured data, such as pixel inputs from a drone-mounted camera to extract crucial aspects of a task and ignore irrelevant features.

"Our experiments demonstrate that we can effectively teach a drone to locate an object in a forest during summer, and then deploy the model in winter, with vastly different surroundings. These flexible algorithms could one day aid in decision-making based on data streams that change over time, such as medical diagnosis and autonomous driving applications."

Unlike traditional neural networks that only learn during the training phase, the liquid neural net's parameters can change over time, making them not only interpretable, but more resilient to unexpected or noisy data.

Note, these are not the liquid neural networks described by others, where the "liquid" part of the analogy, or neologism, is literally a fluid that transports neurotransmitters, like hormones in the bloodstream or even antibodies in the immune system, and this differs from the idea of a neural network as one made of electric circuits. 

via MIT's Computer Science and Artificial Intelligence Laboratory: Makram Chahine et al, Robust flight navigation out of distribution with liquid neural networks, Science Robotics (2023). DOI: 10.1126/scirobotics.adc8892


In sync brainwaves predict learning, study shows
Apr 2023, phys.org

Students whose brainwaves are more in sync with their classmates and teacher are likely to learn better than those lacking this "brain-to-brain synchrony"

The researchers found that as students were listening to the lecture, their brainwaves became in sync with one another. Moreover, the researchers observed such "brain-to-brain synchrony"—similar brain-activity patterns over time—between the students' brainwaves and when comparing students' brainwaves to the teacher's brainwaves.

via NYU: The Temporal Dynamics of Brain-to-Brain Synchrony Between Students and Teachers Predict Learning Outcomes, Psychological Science (2023). DOI: 10.1177/09567976231163872

Post Script: If you look at the thumbnail for this story, it shows a woman wearing what looks like the Emotiv EEG headset. I bought one of those ten years ago for my high school students to try out, so they could experience playing video games with their minds. Immediately I realized that my students with tight curls (like "black people hair" vs "white people hair") definitely did not get the same connection -- the headset reads brainwaves via electrical currents, and if the headset can't make contact with the scalp, it can't read the electricity. That pissed me off and I stopped using it. Maybe they fixed that problem since ten years ago; maybe they didn't. That's what makes me wonder how science can perpetuate systemic racism, even though science is supposed to be blind to these things. In fact, some might say that the sole purpose of the scientific method is to reduce the bias of your investigation to the smallest amount possible, thus revealing as much of the truth as possible. 

Image credit: AI Art - Multi Cassette Ghetto Blaster Robot Head - 2023

Swarming microrobots self-organize into diverse patterns
Jun 2023, phys.org

The microrobots in this case are 3D-printed polymer discs, each roughly the width of a human hair, that have been sputter-coated with a thin layer of a ferromagnetic material and set in a 1.5-centimeter-wide pool of water.

The researchers applied two orthogonal external oscillating magnetic fields and adjusted their amplitude and frequency, causing each microrobot to spin on its center axis and generate its own flows. This movement in turn produced a series of magnetic, hydrodynamic and capillary forces.

"By changing the global magnetic field, we can change the relative magnitudes of those forces, " Petersen said. "And that changes the overall behavior of the swarm."

But wait -- "The reason why we're always excited when the systems are capable of caging and expulsion is that you could, for example, drink a vial with little microrobots that are completely inert to your human body, have them cage and transport medicine, and then bring it to the right point in your body and release it," Petersen said. "It's not perfect manipulation of objects, but in the behaviors of these microscale systems we're starting to see a lot of parallels to more sophisticated robots despite their lack of computation, which is pretty exciting."

(Yes, drinking a glass of microbot swarms does sound like the ideal method of drug delivery, yes it does.)

Also, just a reminder: The Swarmalator is swarming oscillator model

via Cornell and Max Planck Institute for Intelligent Systems: Steven Ceron et al, Programmable self-organization of heterogeneous microrobot collectives, Proceedings of the National Academy of Sciences (2023). DOI: 10.1073/pnas.2221913120


COVID lockdown - Are high-income earners more resistant to returning to the office?
Aug 2023, phys.org

I'm just here because this is the first paper published by Northeastern's Network Science Institute program in London: Northeastern expanded its world leading Network Science Institute to the university's campus in London this summer (2023) in a move to establish a new European hub in the fast-growing research field of network science.

But I stayed for the word synchronicity: High-income workers have the leverage to negotiate more for remote work, Di Clemente says. "They are the ones that can actually change their synchronicity," he says, adding that part of that workforce "might never come back" to physical offices full time.

via Northeastern University: Clodomir Santana et al, COVID-19 is linked to changes in the time–space dimension of human mobility, Nature Human Behaviour (2023). DOI: 10.1038/s41562-023-01660-3


A system to keep cloud-based gamers in sync
Aug 2023, phys.org

Listen up, writers of interplanetary science fiction:

Their system, called Ekho, adds inaudible white noise sequences to the game audio streamed from the cloud server. Then it listens for those sequences in the audio recorded by the player's controller.

Ekho uses the mismatch between these noise sequences to continuously measure and compensate for the interstream delay.

via MIT and Microsoft: Ekho: Synchronizing Cloud Gaming Media Across Multiple Endpoints. Pouya Hamadanian, D Gallatin, M Alizadeh, K Chintalapudi

Image credit: TPUv3 Pod - Google Labs - 2018

Making sense of life's random rhythms: Team suggests universal framework for understanding 'oscillations'
Aug 2023, phys.org

Studying stochastic, random oscillations like the synchronized blinking of fireflies, the back-and-forth motion of a child's swing, slight variations in the the human heartbeat. "If your heart cells aren't synchronized, you die of atrial fibrillation," Thomas said. "But if your brain cells synchronize too much, you have Parkinson's disease, or epilepsy,

"We turned the problem of comparing oscillators into a linear algebra problem"

Most oscillations are irregular; a natural variation of 5-10% in the heartbeat is considered healthy. "In San Francisco, modern skyscrapers sway in the wind, buffeted by randomly shifting air currents—they're pushed slightly out of their vertical posture, but the mechanical properties of the structure pull them back. This combination of flexibility and resilience helps high-rise buildings survive shaking during earthquakes. You wouldn't think this process could be compared with brain waves, but our new formalism lets you compare them."

via Case Western: Alberto Pérez-Cervera et al, A universal description of stochastic oscillators, Proceedings of the National Academy of Sciences (2023). DOI: 10.1073/pnas.2303222120


Fireflies, brain cells, dancers: Synchronization research shows nature's perfect timing is all about connections
Sep 2023, phys.org

They figured out a way to predict the synchronization between coupled oscillators by the network structure that connects them, and have revealed the impact of patterns of network connections among small groups of nodes (motifs) on the whole of network synchronizability. Results implicate the prevalence of clustered structure such as feedforward and feedback loops as the most important factor in synchronizability.

"Clustered structure"

"We present an analytic technique to directly measure the relative synchronizability of noise-driven time-series processes on networks, in terms of the directed network structure, and reveal subtle differences between the motifs involved for discrete or continuous-time dynamics.  

via University of Sydney and Max Planck Institute for Mathematics in the Sciences in Leipzig: Joseph T. Lizier et al, Analytic relationship of relative synchronizability to network structure and motifs, Proceedings of the National Academy of Sciences (2023). DOI: 10.1073/pnas.2303332120


Adaptive optical neural network connects thousands of artificial neurons
Oct 2023, phys.org

A network consisting of almost 8,400 optical neurons made of waveguide-coupled phase-change material; the connection between two each of these neurons can indeed become stronger or weaker (synaptic plasticity), and that new connections can be formed, or existing ones eliminated (structural plasticity). 

These synapses were not hardware elements but were coded as a result of the properties of the optical pulses -- in other words, as a result of the respective wavelength and of the intensity of the optical pulse. This made it possible to integrate several thousand neurons on one single chip and connect them optically. 

(btw) The researchers tested the performance of the neural network by using an evolutionary algorithm to train it to distinguish between German and English texts. The recognition parameter they used was the number of vowels in the text. 

via Collaborative Research Center 1459 (Intelligent Matter) at University of Münster and Universities of Exeter and Oxford: Frank Brückerhoff-Plückelmann et al, Event-driven adaptive optical neural network, Science Advances (2023). DOI: 10.1126/sciadv.adi9127


Thursday, March 17, 2022

Guilty as Charged


Consciousness is clickbait, and quantum consciousness is mega-clickbait, so I usually avoid it, but fractal quantum consciousness? They got me. 

Image credit: Fractal Forums, 2018

First let's talk about fractals in real life.

I have the same thing happen in my dreams that you do. I'm trying to leave the house, and I forget something, and now I'm on a side mission to get that thing, but then I forget something else I need for the side thing, and now I'm on a side-side mission, but then I forget something else, ... and it repeats until I wake up. (I never make it out of the house.) 

This happens in real life, at least in New Jersey it does -- you're on a main road and need to make a left, but you have to first make a right, in order to get on an overpass (like a jughandle, aka Jersey left). But when you make the first right, you realize you can't turn from there to the overpass; you instead have to make another right, onto a road parallel to the first main road you were on, but now going in the opposite direction. But even still, you find you can't make a left off this road, so you have to make another right, ad infinitum.

The trajectory of your quest has collapsed into a fractal dimension, from which you might never make it back. 


This year, the recursive nature of consciousness is showing up in some interesting studies. It's beginning to look like those psychedelic images of the Mandelbrot set aren't just a good visual metaphor, they might underlie actual brain patterns, and get us closer to understanding what consciousness is. 


Fractal brain networks support complex thought
Oct 2021, phys.org

A Dartmouth study has found a new way to look at brain networks using the mathematical notion of fractals, to convey communication patterns between different brain regions as people listened to a short story.

Researchers show that brain networks organize in a similar way: patterns of brain interactions are mirrored simultaneously at different scales.

When people engage in complex thoughts, their networks seem to spontaneously organize into fractal-like patterns. When those thoughts are disrupted, the fractal patterns become scrambled and lose their integrity.

The study shows that when people listened to an audio recording of a 10-minute story, their brain networks spontaneously organized into fourth-order [fractal] network patterns. ... However, this organization was disrupted when the story's paragraphs were randomly shuffled.

"The more finely the story was shuffled, the more the fractal structures of the network patterns were disrupted,"
-Lucy Owen, first author and graduate student in psychological and brain sciences at Dartmouth, link
""
And it works just like you think it would:

The results show that the smallest scale (first-order) interactions occurred in brain regions that process raw sounds. Second-order interactions linked these raw sounds with speech processing regions, and third-order interactions linked sound and speech areas with a network of visual processing regions. The largest-scale (fourth-order) interactions linked these auditory and visual sensory networks with brain structures that support high-level thinking. 

via Dartmouth College: High-level cognition during story listening is reflected in high-order dynamic correlations in neural activity patterns, Nature Communications (2021). DOI: 10.1038/s41467-021-25876-x

3D Fractal w Fragmentarium - Adam Majewski on Fractal Forums - 2018


Can consciousness be explained by quantum physics? Research is closer to finding out
Jul 2021, phys.org

The Penrose-Hameroff theory of quantum consciousness argues that microtubules are structured in a fractal pattern which would enable quantum processes to occur.

First they created a quantum fractal by arranging electrons in a  Sierpiński triangle. But now they're using photonics to watch the electrons move in real time. And this means that quantum fractals behave differently than classical fractals. So now they think it's time to revisit.

via Cristiane de Morais Smith and Xian-Min Jin at Shanghai Jiaotong University: Xu, XY., Wang, XW., Chen, DY. et al. Quantum transport in fractal networks. Nat. Photon. (2021).



Now that you've been primed on the potential fractal nature of consciousness, it's time to enter the n-dimensional world. 

This next study should make your head spin, literally --


New research finds that collective neural activity is shaped like the surface of a doughnut
Jan 2022, phys.org

We already know about grid cells, they were discovered not long ago. Grid cells are the types of brain cells that map where you are in space -- your brain keeps a map in your head that's compressed by a layer of hexagonal grid coordinates. 

But now, they found that the grid itself is not a never-ending expanse of hexagons that surrounds us in two dimensions. Instead, it's a grid superimposed on a toroid (but you might call it a donut). That means the map is not two-dimensional, but multidimensional. 

This is because the grid cells do not form as a result of our motor activity as we travel over the  two-dimensional surface of the Earth. Instead these cells form based on their own innate tendencies to arrange in a way that represents a toroid more than a flat grid. Note this is the shape of the data we're talking about, not the shape of the cluster of cells themselves. It's the way the cells interact, not how they're actually laid out. (Kind of like thinking of the difference between actual distance and Hamming distance.)

The big deal though, is that it hints to us how the brain orchestrates all these subregions, coordinating together to create the complexities of higher-order functioning (the kind referenced above as "4th order"). It lies in the network structures, and in this case, those structures are part of continuous attractor networks. (They did get a lot of help from a new tool called Neuropixels, which allows access to raw output from neurons from all over the brain, all at the same time.)

So network theory will become a bigger part of understanding how the brain works. And meanwhile, we can just trip out on the idea that even when walking in a straight line, our brain is superimposing that data on a toroid model. 

Tl;dr -- The brain thinks the landscape is a toroid. (Even in your dreams; or especially in your dreams).

via Norwegian University of Science and Technology's Kavli Institute for Systems Neuroscience: Richard J. Gardner et al, Toroidal topology of population activity in grid cells, Nature (2022). DOI: 10.1038/s41586-021-04268-7


Further Reading:

Isaac Asimov's Robot Dreams -- a robot named Elvex (LVX-1) is updated with "fractal geometry" because the offending young scientist though it would "produce a brain pattern with more complexity, possibly closer to that of a human". The robot begins to dream about self-preservation, in direct opposition to the Laws of Robots, and is subsequently killed ("killed"?).

Maertens, James W. , Donald E. Palumbo. "Chaos Theory, Asimov's Foundations and Robots, and Herbert's Dune: the Fractal Aesthetic of Epic Science Fiction." Utopian Studies, vol. 14, no. 1, winter 2003, pp. 244+. Penn State University Press. https://www.jstor.org/stable/20718595

The Hyperbolic Geometry of DMT Experiences at the Harvard Science of Psychedelics Club in the year 2020, with Andrés Gómez Emilsson from the Qualia Research Institute

Quantum Fractals, 2019

Tuesday, February 4, 2020

Private Places

Christo and Jean Claud Wrapped Reichstag, 1995.

How 3D technology is capturing the world
Oct 2019, BBC News

Photogrammetry - making 3-D models out of laser-photographs by simultaneously capturing visual and spatial information. Think of LIDAR, the sonar-like laser beams shooting from the Google maps car in all directions to create a 3-D model.

They're getting good at this, to the point that physical inspections are being done on the models and not the real thing. Which makes sense, what if you want to inspect a bridge for cracks, but it's spanning the Hudson River. You can now make a model of it, and inspect the model instead, and at any scale.

Imagine recreating via 3D printer a scaled version of something that needs to be inspected. Enemy territory, home interior, or just a bit of infrastructure that needs to be inspected for safety. Anything you want to look at, investigate, explore, or immerse yourself in, can be scanned and recreated either in 3D or in virtual reality.

Even other people's bodies? Are we going on tours of people's digestive systems? Somebody brings "back to life" Elvis's colon, models it in 3-D, and prints it out so we can walk through it like a museum?

Post Script
Living skin can now be 3-D-printed with blood vessels included
Nov 2019, phys.org

Bio-inks
In this paper, the researchers show that if they add key elements—including human endothelial cells, which line the inside of blood vessels, and human pericyte cells, which wrap around the endothelial cells—with animal collagen and other structural cells typically found in a skin graft, the cells start communicating and forming a biologically relevant vascular structure within the span of a few weeks.

They're taking two kinds of blood vessel cells, adding them to animal collagen, and printing them onto a substrate.

Within weeks, the cells start working with each other, and spontaneously generating blood vessels.

***
If you thought deepfake pornography was twisted...

Image source: Christo and Jean Claud Wrapped Reichstag 1995, photo by txmx 2