Showing posts with label wetware. Show all posts
Showing posts with label wetware. Show all posts

Thursday, July 16, 2026

Be Afraid


We are not ready for this. 

Lab-grown brain-spinal cord model shows 'irreversible' nerve damage may be reversed
May 2026, phys.org

It's a miniature lab-grown brain and spinal cord, but they simply call it "miniature circuits".

via University of Cambridge: George M. Gibbons et al, A human corticospinal organoid-slice connectoid model informs enhancer strategies for post-injury axon regrowth, Cell Reports (2026). DOI: 10.1016/j.celrep.2026.117399

Post Script for those who believe we ARE ready for this:
New bioreactor turns stem cells into an immune-cell factory, producing 40 million human macrophages per week
Apr 2026, phys.org

Researchers at Hannover Medical School (MHH) have developed a method for the efficient production of human immune cells, such as macrophages, in medium-sized bioreactors

"Medium-sized", for now

via Hannover Medical School: Fawaz Saleh et al, Harnessing intermediate-scale bioreactors for next-generation macrophage production and application, Nature Protocols (2026). DOI: 10.1038/s41596-025-01313-x

Tuesday, November 25, 2025

Remote Control I Work From Home


It's not like this is a new idea or anything, but the sheer volume of remote controlled living creatures is getting me a little worried about my own control of my own living self. Today it's a cicada, tomrrow ... (I can see remote control eyelids being really important for example).


Exploring cyborg cicada bioacoustic modulations for insect-based communication
May 2025, phys.org

Insect-Computer Hybrids - A hybrid biological-electronic speaker was produced using live cicadas controlled through precise voltage, capable of producing variable sound frequencies.

via University of Tsukuba: Yuga Tsukuda et al, Insect-Computer Hybrid Speaker: Speaker using Chirp of the Cicada Controlled by Electrical Muscle Stimulation, arXiv (2025). DOI: 10.48550/arxiv.2504.16459



Light-driven cockroach cyborgs navigate without wires or surgery
May 2025, phys.org

The system uses a small ultraviolet light helmet to steer cockroaches by taking advantage of their natural tendency to avoid bright light, especially in the UV range. 

via University of Osaka: Chowdhury Mohammad Masum Refat et al, Autonomous Navigation of Bio‐Intelligent Cyborg Insect Based on Insect Visual Perception, Advanced Intelligent Systems (2025). DOI: 10.1002/aisy.202400838


'In-insect synthesis': Caterpillar factories produce fluorescent nanocarbons
Jun 2025, phys.org

"We suddenly wondered—what would happen if we fed nanocarbons to insects?" 

Caterpillar factories - "Successfully used insects as mini molecule-making factories"; referred to as "in-insect synthesis"

To test their concept, the team fed tobacco cutworm caterpillars a diet containing a belt-shaped molecular nanocarbon known as [6]MCPP. Two days later, analysis of the caterpillar poo revealed a new molecule, [6]MCPP-oxylene, which is [6]MCPP that has incorporated an oxygen atom. This subtle change caused the molecule to become fluorescent.

via RIKEN because who else: Atsushi Usami et al, In-insect synthesis of oxygen-doped molecular nanocarbons, Science (2025). DOI: 10.1126/science.adp9384.


'Cyborg' beetles could revolutionize urban search and rescue
Jul 2025, phys.org

This time using video game controllers.

via University of Queensland School of Mechanical and Mining Engineering Biorobotics Lab: Lachlan Fitzgerald et al, Zoborg: On‐Demand Climbing Control for Cyborg Beetles, Advanced Science (2025). DOI: 10.1002/advs.202502095

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


Fundamental Organizational Principles and the Networking of Science

 

Do higher-order interactions promote synchronization?
Apr 2023, phys.org

Researchers use networks to model the dynamics of coupled systems ranging from food webs to neurological processes. Those models originally focused on pairwise interactions, or behaviors that emerge from interactions between two entities. But in the last few years, network theorists have been asking, what about phenomena that involve three or more?


Network theorists call these phenomena "higher-order interactions." Now scientists show how the choice of network representation can influence the observed effects, focusing on the phenomenon of synchronization, which emerges in systems from circadian clocks to vascular networks.

They compared hypergraphs of "hyperedges" to connect three or more nodes, and simplicial complexes, more structured and using triangles to represent  connections. 

In the paper, Zhang and his colleagues reported that networks modeled with hypergraphs easily give rise to synchronization, while simplicial complexes tend to complicate the process due to their highly heterogeneous structure. That suggests choices in higher-order representations can influence the outcome, and Zhang suspects the results can be extended to other dynamical processes such as diffusion or contagion.

"Structural heterogeneity is important not just in synchronization, but is fundamental to most dynamic processes," he says. "Whether we model the system as a hypergraph or simplicial complex can drastically affect our conclusions."

via Santa Fe Institute: Yuanzhao Zhang et al, Higher-order interactions shape collective dynamics differently in hypergraphs and simplicial complexes, Nature Communications (2023). DOI: 10.1038/s41467-023-37190-9



Researchers investigate the veracity of 'six degrees of separation'
Jun 2023, phys.org

I don't think I understand why 6 and not another number; but it appears that the big deal here is that the mechanism behind 'why 6' is based on a cost-benefit algorithm.

The intriguing phenomenon, they show, is linked to another social experience we all know too well -- the struggle of cost vs. benefit in establishing new social ties.

"6 Degrees" is from Stanley Milgram at Harvard in 1967 who used the United States Postal System to perform experiments on and model our social network.

(This point in itself is interesting to consider, in light of having the access to the electronic communications network that is the internet, and which later proved these experiments on the scale of millions not hundreds, that we did have already such a pervasive, well-functioning network at hand, in the form of the United States Postal Service.)  

Milgram sent letters to random people, with instructions to try and make it back to one of his professor-friends somewhere else across the country. The experiment found that it only takes about six handshakes to bridge between two random people.

So what is the common denominator?

The objective of using a social network for the individual, is not simply to pursue a large number of connections, but to obtain the right connections, for example, seeking a junction that bridges between many pathways, and hence funnels much of the flow of information in the network.

But social capital does not come for free. It requires constant maintenance. A constant buzz driven by the ambition for social centrality.

"We discovered an amazing result: this process always ends with social paths centered around the number six. This is quite surprising." (Dark side reminder: "Indeed, within six infection cycles, a virus can cross the globe.")

via Bar-Ilan University as well as collaborators from Israel, Spain, Italy, Russia, Slovenia and Chile: I. Samoylenko et al, Why Are There Six Degrees of Separation in a Social Network?, Physical Review X (2023). DOI: 10.1103/PhysRevX.13.021032

Post Script: The book Bursts by Albert-László Barabási does a great job of looking at these kinds of social network effects, following the travels of the Where's George campaign of dollar bills through the US for example. He took the incipient revelations of network science (the 6 degrees rule) and gave it a temporal dimension -- he showed how our activities can be measured in short bursts followed by not much activity at all. It's not just the '2-dimensional' shape of the network, but the extra time dimension that defines the salient behavior of the social network.
Bursts: The Hidden Pattern Behind Everything We Do
Albert-László Barabási, 2010


Researchers identify mathematical rule behind the distribution of neurons in our brains
Aug 2023, phys.org

I don't see the word network science in here but it is --

Researchers have uncovered the ubiquitous lognormal distribution of neuron densities across and within cortical areas in the mammalian brain, suggesting a fundamental organizational principle.

via Human Brain Project, Forschungszentrum Jülich and the University of Cologne: Aitor Morales-Gregorio et al, Ubiquitous lognormal distribution of neuron densities in mammalian cerebral cortex, Cerebral Cortex (2023). DOI: 10.1093/cercor/bhad160



Monday, March 14, 2022

Programmable Matter and Ubiquitous Intelligence


Intelligence is going to be embedded in everything -- smart clothes, smart furniture, smart air.

I still think of a computer as a piece of hardware, a metal box with "electronics" inside. But if you told me that a cup of water could also be a computer, I'd have a hard time imagining that. It's one of those paradigm shifts that separates us from the future. Like if you just discovered fire, but then someone tells you there's another way to "cook" food in the slow fire of fermentation.

You would realize that food is cooking all the time, without our intervention. We just learned how to control it. 

If I try to imagine that a river can be a computer, it's hard. You mean the weather itself can be a computer that we can then use to forecast the weather? Yes, something like that, but not really (Gödel might want a word). 

Image credit: Efoia via Fractal Forums - Pseudo-kleinian folded with sphere inversion rendered in Oak Fractal Sandbox with Monte Carlo path tracing - 2017 [link]


How simple liquids like water can perform complex calculations
Jan 2022, phys.org

Reservoir computing is a relatively recent idea in computing. Instead of traditional binary programs run on semiconductor chips, the reactions of a nonlinear dynamical system—the reservoir—are used to perform much of the calculation. Various nonlinear dynamical systems from quantum processes to optical laser components have been considered as reservoirs.

"It turns out that deionized water is best for solving second-order nonlinear problems." The good performance of these solutions demonstrates their potential for more complicated tasks, such as handwriting font recognition, isolated word recognition, and other classification tasks", says Professor Akai-Kasaya.


I'm having visions of Stanislaw Lem's Solaris (1961), which featured an extra-terrestial intelligent terrestrial, aka a planetary superorganism. Considering that Lem intended to explore "the limitations of human rationality", I imagine he would enjoy seeing this branch of science develop.

via Osaka University: Shaohua Kan et al, Physical Implementation of Reservoir Computing through Electrochemical Reaction, Advanced Science (2021). DOI: 10.1002/advs.202104076


Researchers find a single-celled slime mold with no nervous system that remembers food locations
Feb 2021, phys.org

The researchers discovered that the organism weaves memories of food encounters directly into the architecture of the network-like body and uses the stored information when making future decisions.

"Past feeding events are embedded in the hierarchy of tube diameters, specifically in the arrangement of thick and thin tubes in the network," says Mirna Kramar, first author of the study. 

via Max Planck Institute for Dynamics and Self-Organization and Technical University of Munich: Mirna Kramar et al. Encoding memory in tube diameter hierarchy of living flow network, Proceedings of the National Academy of Sciences (2021). DOI: 10.1073/pnas.2007815118


Thinking without a brain - Studies in brainless slime molds reveal that they use physical cues to decide where to grow
Jul 2021, phys.org

Physarum polycephalum uses its body to sense mechanical cues in its surrounding environment, and performs computations similar to what we call "thinking".

via Wyss Institute at Harvard University and the Allen Discovery Center at Tufts University: Advanced Materials (2021). DOI: 10.1002/adma.202008161

Thursday, July 1, 2021

Climate Change Makes Robowrapper More Than Just Fashion

I don't know about you, but I'm ok wearing a spacesuit while still on Earth, as long as it has air conditioning. And persistent surveillance of my health data, of course. 

Not that I want to, but I'm ok with it. And I'm not talking Apollo marshmallow man spacesuit. This suit is actually integrated into your own skin. At some point, it will be hard to distinguish between our clothes and our skin. To "wear" something will have a different meaning, and you won't be able to function without a nano-networked-supercomputer covering your entire body (never mind not being able to live without an air-conditioned bodysuit simply because it's too hot). 

Emerging wearable technology uses tiny fibers that can track your blood pressure, heart rate, and more
Dec 2020, phys.org
"It could be a handkerchief which you put on your wrist and it starts giving data."

via American Institute of Physics: "Micro/nano fiber-based non-invasive devices for health monitoring diagnosis and rehabilitation," Applied Physics Reviews, aip.scitation.org/doi/10.1063/5.0010766
Researchers create powerful unipolar carbon nanotube muscles
Jan 2021, phys.org

"Electrochemically driven carbon nanotube (CNT) muscles" sound like a morph suit that's also an exoskeleton.

via University of Texas at Dallas: "Unipolar stroke, electroosmotic pump carbon nanotube yarn muscles" Science (2021). https://science.sciencemag.org/content/371/6528/494

Wearable plasmonic-metasurface sensor for universal molecular fingerprint detection on biointerfaces
Feb 2021, phys.org
The system contained a flexible sweat extraction process to noninvasively extract and fingerprint analytes inside the body based on their unique Raman scattering spectra. 
Light-emitting tattoo engineered for the first time
Feb 2021, phys.org
The technology, which uses organic light-emitting diodes (OLEDs), is applied in the same way as water transfer tattoos. That is, the OLEDs are fabricated on to temporary tattoo paper and transferred to a new surface by being pressed on to it and dabbed with water. ... could be combined with other tattoo electronics to, for instance emit light when an athlete is dehydrated, or when we need to get out of the sun to avoid sunburn. OLEDs could be tattooed on packaging or fruit to signal when a product has passed its expiry date or will soon become inedible, or used for fashion in the form of glowing tattoos.

via University College London: Jonathan Barsotti et al. Ultrathin, Ultra‐Conformable, and Free‐Standing Tattooable Organic Light‐Emitting Diodes, Advanced Electronic Materials (2021). DOI: 10.1002/aelm.202001145
'Smart clothes' that can measure your movements
Mar 2021, phys.org

via MIT: Yiyue Luo et al. Learning human–environment interactions using conformal tactile textiles, Nature Electronics (2021). DOI: 10.1038/s41928-021-00558-0

Post Script:
Researchers find space station's surface microbial profile resembles skin of its crew members
May 2020, phys.org

We will be the spaceship. It will become our bodies, rather, our bodies will become a ship.

via Lawrence Livermore National Laboratory: Aram Avila-Herrera et al. Crewmember microbiome may influence microbial composition of ISS habitable surfaces, PLOS ONE (2020). DOI: 10.1371/journal.pone.0231838

Fungal ghosts protect skin, fabric from toxins, radiation
Mar 2021, phys.org

There's a fungus that naturally makes melanin, which is protective against ultraviolet radiation, and so they grow the melanin, then etch away the fungus, leaving only the melanin cell. The leftovers are called fungal ghosts, and can become a kind of artificial skin. And also for, you know, "potential for applications in long distance space flight."

via Northwestern University: "Allomelanin: A Biopolymer of Intrinsic Microporosity." Journal of the American Chemical Society.

Wednesday, July 8, 2020

I'm the Computer Now


Wave physics as an analog recurrent neural network
Jan 2020, phys.org

This story is the craziest thing I've ever heard -- mind-numbing omnipotent future-speak. Computing with physical wave media in virtual dimensions? I'm in.

The electronic engineering department at Stanford "trained" physical wave systems to "learn" temporal data features.

If you see the word "train" these days you can bet they're talking about deep learning / neural networks. Usually, the way you train a network is to let it watch thousands and thousands of hours of youtube videos. Or any other data set you have available. (The Alcohol Language Corpus of drunk speech, perhaps?)

The network itself learns certain things about all the data you give it, and it assembles itself, arranges itself, to be able to detect those features in other images, let's say. Or you could have it learn what a "Vietnamese sandwich" is, and then synthesize Vietnamese sandwich versions of other sandwiches. Or you could have it show you the eignevector, the essence of a Vietnamese sandwich. (Spoiler, the essence of youtube is the face of a cat. That's what the network learned most by watching a several lifetime's worth of internet-video).

How is eigencat not a thing? Try that search for yourself, "youtube eigencat"

But these guys are talking about teaching not a network, but a wave of air. Not only is it not alive, it's not even a computer! Then again, the waves are the computer:
As proof of principle, they demonstrated an inverse-designed, inhomogeneous medium to perform English vowel classification based on raw audio signals as their waveforms scattered and propagated through it.
-source
You read that correctly. There are no circuits, no electricity. The physical system itself performs a recurrent processing dynamic, based on the way the waves move through space.

It's the new thing, analog machine learning.

Check out this old news on computers made of other stuff that's not computers, like the Magic Dust SupercomputerSlime Mold ComputerCrystal Calculators, and of course, the DNA computer.

Growing crystals to generate random numbers
Feb 2020, phys.org

Generating random numbers has always been a tricky problem for computer engineers because computers were designed to be as predictable as possible. 

One of the more pressing applications of random number generation is data encryption—most existing schemes rely on the constant generation of random numbers. 

The process of crystallization is random due to many factors that come into play as chemicals in a liquid solution evolve from a disordered state to one that is very organized. 

A camera took a picture of each of the cups as crystal formation began. Each of the pictures was converted to a zero or a one based on nothing but the geography of the crystal. The zeros and ones were then strung together to form a random number.

New study allows brain and artificial neurons to link up over the web
Mar 2020, phys.org

Novel Nanoelectronics has enabled brain neurons and artificial neurons to communicate with each other using brain-computer interfaces, artificial neural networks and advanced memory technologies (also known as memristors).

Cultivated lab rat neurons from Padova were distributed into memristive synapses in Southampton, and then connected to artificial silicon neurons in Zurich. 
-Alexantrou Serb et al. Memristive synapses connect brain and silicon spiking neurons, Scientific Reports (2020). DOI: 10.1038/s41598-020-58831-9

Advanced 'super-planckian' material exhibits LED-like light when heated
Mar 2020, phys.org

"We believe the light is coming from within the crystal, but there are so many planes within the structure, so many surfaces acting as oscillators, so much excitation, that it behaves almost like an artificial laser material," Lin said. "It's just not a conventional surface."

The robot that grips without touching
Jan 2020, phys.org

Acoustic waves -- method that makes it possible to lift and manipulate small objects entirely without touching them.

Chilling out - Physicists create exotic “fifth form of matter” on board the ISS
June 2020, Ars Technica

Algorithm quickly simulates a roll of loaded dice
May 2020, phys.org

Random number generation:
The algorithm, called the Fast Loaded Dice Roller (FLDR), was created by MIT graduate students and research scientists. 
FLDR can use up to 10,000 times less memory storage space than the Knuth-Yao approach, while taking no more than 1.5 times longer per operation.
Growing crystals to generate random numbers
Feb 2020, phys.org

Friday, January 31, 2020

Babybots


'Grow and prune' AI mimics brain development, slashes energy use
Dec 2019, phys.org

Coming soon -- autobiographical biobots designed to learn from birth. And after that, finally, a robot nose.

Sunday, December 8, 2019

Light Hype, Crystal Prediction, and Cerebral Diamonoids


Energy-free superfast computing invented by scientists using light pulses
May 2019, phys.org

Researchers demonstrate all-optical neural network for deep learning
Sep 2019, phys.org

Researchers teleport information within a diamond
June 2019, phys.org

Diamonds in your devices - Powering the next generation of energy storage
Dec 2019, phys.org

Boron-doped nanodiamond to be specific.

Crystal with a twist - scientists grow spiraling new material
Jun 2019, phys.org

"No one expected 2-D materials to grow in such a way. It's like a surprise gift," said Jie Yao, an assistant professor of materials science and engineering at UC Berkeley.

"While the shape of the crystals may resemble that of DNA, whose helical structure is critical to its job of carrying genetic information, their underlying structure is actually quite different. Unlike "organic" DNA, which is primarily built of familiar atoms like carbon, oxygen and hydrogen, these "inorganic" crystals are built of more far-flung elements of the periodic table, in this case, sulfur and germanium. And while organic molecules often take all sorts of zany shapes, due to unique properties of their primary component, carbon, inorganic molecules tend more toward the straight and narrow."

Cyborg organoids offer rare view into early stages of development
Aug 2019, phys.org

"If we can develop nanoelectronics that are so flexible, stretchable, and soft that they can grow together with developing tissue through their natural development process, the embedded sensors can measure the entire activity of this developmental process," said Jia Liu, Assistant Professor of Bioengineering at SEAS and senior author of the study. "

Brain waves detected in mini-brains grown in a dish
Sep 2019, phys.org

World first as artificial neurons developed to cure chronic diseases
Dec 2019, phys.org

Optimal solid state neurons, Nature Communications (2019).
DOI: 10.1038/s41467-019-13177-3 


***
We will all live inside diamonds.
Optical intelligentities in neuromorphic cerebral organoid diamonds, to be specific.

***

Scientists create a 'crystal within a crystal' for new electronic devices
Dec 2019, phys.org

Storing data in everyday objects
Dec 2019, phys.org
A method for marking products with a DNA "barcode" embedded in miniscule glass beads -- These nanobeads are used in industry as tracers for geological tests or as markers for high-quality food products, thus distinguishing them from counterfeits using a relatively short barcode consisting of a 100-bit code. This technology has now been commercialized by ETH spin-off Haelixa. 
They call the storage-form "DNA of Things" 
"All other known forms of storage have a fixed geometry: A hard drive has to look like a hard drive, a CD like a CD. You can't change the form without losing information," Erlich says. "DNA is currently the only data storage medium that can also exist as a liquid, which allows us to insert it into objects of any shape." 
A further application of the technology would be to conceal information in everyday objects, a technique experts refer to as steganography. 
Grass, Erlich and their colleagues used the technology to store a short film about this archive (1.4 megabytes) in glass beads, which they then poured into the lenses of ordinary glasses. "It would be no problem to take a pair of glasses like this through airport security and thus transport information from one place to another undetected," Erlich says. In theory, it should be possible to hide the glass beads in any plastic objects that do not reach too high a temperature during the manufacturing process.
Substance found in fossil fuels can transform into pure diamond
Mar 2020, phy.org

Sunday, June 3, 2018

Vision, Accuracy, and the Right Brain


In a TED talk I can't seem to forget, Iain McGilchrist, in RSA fashion, animates the two sides of ourselves. These are the two sides of our brains, the two hemispheres. I don't think I need to explain the Left Brain - Right Brain distinction on account of its general popularity. I will only say that this is not an absolute thing; it's a heuristic for understanding how our complicated heads run all that bugged out code up there.

The part of McGilchrist's talk I can't forget lies in his premonition that humans have been heading in the Left direction since as far back as we can remember, but it may soon be time for the pendulum to turn the other direction. It's hard to believe. We can't have megacities without the Left Brain. No spaceships, no biodomes, no nanofabricated body modifications.

Or can we? If you read about contemporary advances in artificial intelligence, you might be thinking that it's quite possible.

Much of the new things happening in this field (which are actually old ideas running on new hardware) are based on a pretty revolutionary paradigm.  I'm referring here to deep learning neural nets and more generally the idea of machine learning. This semantically refers to an approach to computing that uses a kind of brute force instead of a superintelligent program. It's kind of like a Wisdom of the Crowds thing plus computers; instead of one thousand guesses, there's 100 trillion guesses. (I say 'a kind of brute force' because in other instances, some would could the traditional method a brute force of computation.)

So the answer they come up with isn't exact, it's approximate. But when you have to query petabytes of data, you can no longer expect an exact answer.

Check out for example this new thing where scientists Frankenstein a neural net and a cell phone together to makeshift a microscope as powerful as one in a high grade laboratory. We no longer need to see every micropixel to get a clear picture of what we're looking at. Instead we teach an algorithm to see, and it does something that in theory is similar to what our brain does when we see. We make stuff up, we fill in the dots, we approximate. (In actuality, the algorithm is taught not how to see, but how to learn to see.)

We live in this post-truth world, right? Facts don't matter; belief matters. Being right is not as important as convincing people that you're right. That's a tangent. But we do live in a world of Big Data, so big we really don't know what to do with it all. We simply can't make computers powerful enough to handle all of it. But we have this new approach that can scale-up. It approximates, which is not what we're used to, but it does reach the scale of Big Data.

Have we reached this inflection point where our technology is starting to act more like our brain (the whole brain, not just the left side)? Is there where we find out, after hundreds of years (after the Enlightenment / Scientific Revolution) that absolute certainty is not the ultimate goal in all knowledge-gathering endeavors? Just speculating here, but it sure seems like we're headed for a future that looks more like a wet biological mess than a crystallized spreadsheet.

Notes

Deep learning transforms smartphone microscopes into laboratory-grade devices
May 2018, phys.org

Iain McGilchrist, The Divided Brain, 2011
this is a TED talk based on his book

Bicameralism 
Julian Jaynes, The Origin of Consciousness and the Breakdown of the Bicameral Mind, 1976

Thursday, June 8, 2017

Liquid Crystals


I'm thinking the shapeshifting liquid nitrogen guy from Terminator, but this time it's made of crystals.

New quantum liquid crystals may play role in future of computers
Apr 2017, phys.org

"Liquid crystals fall somewhere in between a liquid and a solid: they are made up of molecules that flow around freely as if they were a liquid but are all oriented in the same direction, as in a solid. Liquid crystals can be found in nature, such as in biological cell membranes. Alternatively, they can be made artificially—such as those found in the liquid crystal displays commonly used in watches, smartphones, televisions, and other items that have display screens."

Sunday, June 12, 2016

The Flesh Engine Revs Up


distributed artificial intelligence, aka the swarm

Watch out Skynet, the Flesh Engine is starting to flex its wet muscles. Or should I say - watch out future, because we're about to know the shit out of you.

A swarm AI predicted the Kentucky Derby. The overall field of predictive analysis is taking strides. First there was the guy who predicted the Obama election, over at Nate Silver's 538.

His was all-algorithm though. Good algos, but not this good. As expected, it turns out that people are still better. James Surowiecki, in his book The Wisdowm of Crowds (2004), asserts that large groups of regular people are better at making decisions, and at predictions, than anything. They're better than a small group of experts, and they're better than anything an algorithm can do. As individuals, we're fallible, but as a group, we cross-cancel each other. In Surowiecki's opening example, taken from statistician Francis Galton, a large group of people were asked to guess the weight of an ox. Nobody got it right, but the average of every person's guess was the correct weight.

Surowiecki points out that the stock market predicted the culprit behind the Challenger disaster way before anyone else, because the day after the accident, the stocks in a company that made rubber O-rings went way down. Not until famed scientist Richard Feynman dropped one of those O-rings in a glass of water during a high profile testimony did the groupthinking stock market's "prediction" come true.

China has been plugging in the flesh engine for some time now.

What is the value of living, breathing humans? Stinking, thinking humans? Hopefully we will find out before it's too late, before they're all gone.

Post Script
Yahoo Finance, April 2016