Using Lasers, Fiber Optics, and Subtle Vibrations to Develop Earthquake Warning Systems

When the Mendocino earthquake erupted off the California coast in 2024, it shook structures from their very foundations, triggered a 3-inch tsunami, and sparked intriguing scientific investigations in the server room of a nearby police station.

More than two years prior to the quake, scientists had installed a device known as the “Dispersed Acoustic Sensing Interrogation Room” at the Alcata Police Station located near the coast. This device utilizes a laser directed through a fiber optic cable that provides internet connectivity to the station, detecting how the laser light bends as it returns.

Recently, researchers revealed in a study published in the Journal Science that data collected from fiber optic cables can effectively be used to “image” the Mendocino earthquake.

This research demonstrates how scientists can convert telecommunication cables into seismometers, providing detailed earthquake data at the speed of light. Experts noted that this rapidly advancing technology has the potential to enhance early earthquake warning systems, extending the time available for individuals to take safety measures, and could be critical for predicting major earthquakes in the future.

James Atterholt, a research geophysicist for the US Geological Survey and lead author of the study, stated, “This is the first study to image the seismic rupture process from such a significant earthquake. It suggests that early earthquake warning alerts could be improved using telecom fibers.”

The study proposes equipping seismometers with devices capable of gathering sparse data from the extensive network of telecommunications cables utilized by companies such as Google, Amazon, and AT&T, making monitoring submarine earthquakes—often costly—more affordable.

Emily Brozky, a professor of geoscience at the University of California, Santa Cruz, asserted that “early earthquake warnings could be dramatically improved tomorrow” if scientists can establish widespread access to existing communication networks.

“There are no technical barriers to overcome, and that’s precisely what Atterholt’s research emphasizes,” Brozky mentioned in an interview.

In the long term, leveraging this technology through fiber optic cables could enable researchers to explore the possibility of forecasting some of the most devastating earthquakes in advance.

Scientists have observed intriguing patterns in underwater subduction zones prior to significant earthquakes, including Chile’s magnitude 8.1 quake in 2014 and the 2011 Tohoku earthquake and tsunami in Japan.

Both of these major earthquakes were preceded by what are known as “slow slip” events that gradually release energy over weeks or months without causing noticeable shaking.

The scientific community is still uncertain about what this pattern signifies, as high-magnitude earthquakes (8.0 or greater) are rare and seldom monitored in detail.

Effective monitoring of seismic activity using telecommunications networks could enable scientists to accurately document these events and assess whether discernible patterns exist that could help predict future disasters.

Brodsky remarked, “What we want to determine is whether the fault will slip slowly before it gives way entirely. We keep observing these signals from afar, but what we need is an up-close and personal instrument to navigate the obstacles.”

While Brodsky emphasized that it’s still unclear whether earthquakes in these extensive subduction zones can be predicted, she noted that the topic is a major source of scientific discussion, with the new fiber optic technology potentially aiding in resolving this issue.

For nearly 10 years, researchers have been investigating earthquake monitoring through optical fiber cables. Brodsky stated that the study highlights the need for collaboration among the federal government, scientific community, and telecommunications providers to negotiate access.

“There are valid concerns; they worry about people installing instruments on their highly valuable assets and about the security of cables and privacy,” Brozky explained regarding telecom companies. “However, it is evident that acquiring this data also serves the public’s safety interests, which makes it a regulatory issue that needs to be addressed.”

Atterholt clarified that fiber optic sensing technology is not intended to replace traditional seismometers, but rather to complement existing data and is more cost-effective than placing seismometers on the seabed. Generally, using cables for earthquake monitoring does not interfere with their primary function of data transmission.

Jiaxuan Li, an assistant professor of geophysics and seismology at the University of Houston, noted he was not involved in the study but mentioned that there are still technical challenges to the implementation of distributed acoustic sensing (DAS) technology, which currently functions over distances of approximately 90 miles.

Li also pointed out that similar methods are being employed in Iceland to monitor magma movements in volcanoes.

“We utilized DAS to facilitate early warnings for volcanic eruptions,” Li explained. “The Icelandic Meteorological Office is now using this technology for issuing early alerts.”

Additionally, the technique indicated that the Mendocino tremors were rare “supershear” earthquakes, which occur when fault fractures advance quicker than seismic waves can travel. Atterholt likened it to a fighter jet exceeding the speed of sound.

New research has serendipitously uncovered patterns associated with Mendocino, providing fresh insights into this phenomenon.

“We still have not fully grasped why some earthquakes become supershear while others do not,” Atterholt reflected. “This could potentially alter the danger level of an earthquake, but the correlation remains unclear.”

Source: www.nbcnews.com

The Subtle Tactics Narcissists Use to Manipulate Your Personality

Do you identify as an empathetic individual who prefers to stay out of the limelight? Have you found it challenging to articulate your own thoughts and feelings, often listening to others instead? Have you experienced a long-term relationship with a narcissist? If any of this resonates with you, you might be an echoist.

Echoism stands in contrast to extreme narcissism. Though this might seem favorable, a high degree of echoism can complicate one’s life significantly.

Echoists often do not perceive themselves as special and frequently neglect their own needs.

What is an echo?

Individuals with echoism typically shy away from or reject attention. They are deeply empathetic and attuned to the emotions of others, yet often engage in self-criticism and struggle with low self-esteem.

They may also be hesitant to express their own thoughts and feelings, often stemming from a fear of rejection and criticism.

The echoist might say, “I lead my life by the principle that the less attention I attract, the better.” Dr. Craig Malkin, author of Rethinking Narcissism.

“A defining characteristic of an echoist is a fear of appearing narcissistic in any way.”

Individuals with echoism tend to actively avoid or reject attention – Photo credit: Solvin Zankl/Naturepl.com

But where does the term “echoist” originate? To grasp this, let’s look back at Greek mythology.

Echo is named after the mountain nymph who fell in love with a hunter named Narcissus. Echo was spurned by Narcissus, who was doomed to only repeat the last words spoken to her.

The term echoism symbolizes the loss of Echo’s voice and identity as depicted in mythology.

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Are narcissism and echoism linked?

Many echoists grow up with narcissistic parents or find themselves in relationships with narcissistic partners. Navigating the whims of a narcissist can take an emotional toll. Research indicates that living with a pathologically narcissistic partner or family member can be quite burdensome.

Malkin explains that, as a child, the echoist was often afraid of losing her mother if she did not appease her frequent outbursts of tears and anger. The fear of rejection from loved ones is a common trait among echoists.

Malkin also notes that echoists are often drawn to narcissists due to fears of burdening others or appearing inadequate. Being involved with someone who enjoys the spotlight can provide a sense of security for echoists.

However, echoism can emerge even in the absence of malicious narcissism, particularly if echoist parents instill phrases like “Don’t get a big head” or “Don’t show off.”

Continually absorbing these negative messages can foster a child’s disproportionate sense of shame, hindering their ability to take pride in their achievements.

While society tends to discourage prideful behavior in children (and adults), it is important to recognize that taking pride in accomplishments is crucial for developing the self-esteem that echoists often lack.

About our experts

Dr. Craig Malkin is a psychologist and lecturer in psychology at Harvard Medical School, USA, as well as an author. He has published two books: Rethinking Narcissism and Narcissist Test.


This article addresses the question from Helena Howard of Torkey: “How did living with a narcissist affect me?”

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Source: www.sciencefocus.com

Face ID: A Useful Resource or a Source of Concern? The Subtle Integration of Facial Recognition in Law Enforcement

The future is arriving ahead of schedule in Croydon. While it may not initially seem like the UK’s forefront, North End is a pedestrian-friendly high street filled with typical pawn shops, fast-food restaurants, and a blend of branded clothing stores. It’s anticipated that this area will host one of the UK’s first permanent fixed facial recognition cameras.

Digital images of passersby will be captured discreetly and processed to derive biometric data, which includes facial measurements. This data will be rapidly compared against a watchlist via artificial intelligence, and a match will trigger an alert that might lead to an arrest.

As per the latest violence reduction strategy from the South London Borough, North End and its adjacent streets are identified as “major crime hotspots.” However, they do not rank among the most hazardous routes in the capital.

The crime rate here is the 20th worst among the 32 London Boroughs, excluding the City of London. Plans to launch permanent cameras for a trial phase later this summer are not an emergency measure; instead, North End and nearby London Roads might soon see more surveillance.

When approached about the surveillance initiative, most shopkeepers and visitors in the North End were unaware of the police’s plans or the underlying technology.

For many, the cameras appear as just another form of street furniture alongside signs promoting safe cycling. While some express concern, others reference studies indicating widespread exhaustion of the public facing rising crime rates.

The police began experimenting with facial recognition cameras in the UK and Wales in 2016. Recent documents released under the Freedom of Information Act (FOI) and police statistics shared with the Guardian reveal substantial growth in usage over the last year. This technology is evolving from a niche tool to a regular component of police strategies.

Last year, police scanned almost 4.7 million faces using live facial recognition cameras, with deployments more than doubling in 2023. In 2024, live facial recognition vans were utilized at least 256 times, up from 63 the previous year.

There’s speculation that mobile units of 10 live facial recognition vans may operate throughout the country.

Meanwhile, civil servants collaborate with law enforcement to develop a new national facial recognition system called strategic facial matchers. This platform will enable searches through various databases, including custody images and immigration files.

“The implementation of this technology could become a common sight in city centres and transit hubs across England and Wales,” states one funding document submitted by the South Wales police to the Home Department and released by Metropolitan Police under FOI.

Activists warn that this technology may disrupt everyday public life by subjecting individuals to impromptu identity checks facilitated by extensive facial recognition systems. Advocates of the technology acknowledge its risks but emphasize its importance for safety.

Recently, David Scheneller, a 73-year-old registered sex offender from Lewisham, who had served nine years for 21 offenses, was sentenced to two years in prison for breaching probation terms.

Officers were alerted by the live facial recognition cameras to Scheneller walking alone with his six-year-old child.

“He was on the watchlist due to his compliance conditions,” said Lindsay Chiswick, Metropolitan’s Intelligence Director and advisor to the National Police Chief of Facial Recognition.

“He formed a relationship with his mother over time and began picking up his daughter from school. If something went wrong that day, he was aware of the repercussions. This exemplifies how police could track him. Without facial recognition, recognizing him would have posed a challenge.”

Many see this as a compelling argument, but critics raise concerns about the unanticipated ramifications as law enforcement adopts technology without legislative guidance.

Madeline Stone from the NGO Big Brother Watch, who has observed mobile camera deployments, reported witnessing misidentifications of schoolchildren in uniforms undergoing “long, humiliating, and unnecessary police stops,” where they were compelled to verify their identities and provide fingerprints.

In these instances, the affected individuals were young Black boys, leaving them frightened and distressed, she noted.

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“The effectiveness diminishes as the threshold rises,” Stone added. “The police might not prefer employing it in specific environments. There are no legal mandates requiring them to do so. The notion that police could unilaterally create their own guidelines for usage is truly alarming.”

A judicial review was initiated by Londoner Sean Thompson, with backing from Big Brother Watch, after he was wrongly identified as a person of interest due to the technology and detained for 30 minutes upon returning from a volunteer shift with the anti-knife initiative Street Father.

Additionally, Dr. Dara Murray, tasked with an independent evaluation of the trials by the Met in 2019, highlights the potential “chilling” effect this technology might have on society, suggesting that considerations must go beyond just the technology’s implementation.

“It’s akin to police tailing you, recording your interactions, where you go, how often, and for how long,” he remarked. “I believe most would be uncomfortable with such reality. Democracy thrives on dissent and discourse; if surveillance stifles that, it risks entrenching the status quo and limiting future opportunities.”

Live facial recognition is being utilized to apprehend individuals for traffic violations, growing cannabis, and neglecting community orders. Is this truly justified?

Fraser Sampson, former biometrics and surveillance camera commissioner in England and Wales until his position was dissolved in October 2023, currently serves as a non-executive director for FaceWatch, the leading UK firm in retail security systems designed to prevent shoplifting.

While he acknowledges the technology’s potential, he expresses concern that independent regulations concerning surveillance haven’t kept pace with its deployment by the state.

Sampson commented: “There’s an abundance of information about the technology’s functionalities, yet in practical terms—its application, the reason for its use, and the avenues for challenges or complaints—those clarity elements seem lacking.”

Chiswick noted her understanding of the concerns while recognizing the potential advantages of regulatory measures. The Met is cautiously making “small strides” that are continually reviewed, she stated. With limited resources, law enforcement needs to adapt and capitalize on the possibilities brought by AI. They are cognizant of potential “chilling effects” on society and have made it clear that cameras will not be deployed in protest areas.

“Will this become common? I cannot say,” Chiswick remarked. “We need to approach that assumption with caution. There are numerous possible scenarios; areas like the West End? It’s conceivable, instead of the static trials we’re conducting in Croydon, we could utilize it there. However, that’s not our current plan.”

She added: “I believe the integration of technology, data, and AI will continue to rise in the coming years, as personally, that’s how we can improve our operations.”

Source: www.theguardian.com

Study Suggests All Humans Emit Subtle Light Until Death

All living beings, including you, emit subtle, etheric, semi-visible light that continues until death. Recent research supports this idea.

This mysterious luminescence might lead one to believe it is an indication of an aura or something similar.

However, Dr. Daniel Oblak, a physicist from the University of Calgary and the study’s lead author, explained to BBC Science Focus that while the concept of an aura is metaphysical and unscientific, the emitted light is not. Known as Ultraweak Photon Emission (UPE), it is a natural byproduct of metabolism.

“I would like to emphasize that UPE usually results from biochemical processes and is thus akin to what occurs with glow sticks.”

“UPE is so faint that it is imperceptible to the human eye and can be completely obscured by other light sources unless in total darkness.”

Don’t think that you can observe your own sparkle simply by closing the curtains and turning off the lights; this light is 1,000 to 1,000,000 times dimmer than what the human eye can detect.

These four mice emitted significantly more ultrweak photon emissions (UPEs) while alive (top) compared to after death (bottom). – Credits: Salari et al, The Journal of Physical Chemistry Letters, 2025

UPE arises when a chemical within a cell creates an unstable molecule, known as a reactive oxygen species (ROS), which is essentially a byproduct of metabolic activity.

As ROS levels increase, other molecules become “excited,” meaning they carry excess energy, and it is this energy that emits light.

The primary factor driving this phenomenon is oxidative stress, a kind of cellular damage caused by aging and disease. The greater the oxidative stress experienced by the body, the more ROS—and consequently, more light—is produced.

“When an organism ceases to live, it halts metabolism, thereby stopping the emission of ultrawave photons,” he remarked.

To investigate UPE, scientists in Calgary measured the UPE generated by immobilized and deceased mice and damaged leaves.

Using specialized cameras, they found that living mice emitted significantly more light than their deceased counterparts. Conversely, the leaves released more light in areas that were damaged compared to intact regions.

This is due to increased oxidative stress in the scratched areas. However, the dead mice did not emit light as their bodies no longer underwent metabolic processes.

The leaves of St. Stwhere were illuminated by scratches and chemical damage. – Credits: Salari et al, The Journal of Physical Chemistry Letters, 2025

Dr. Oblak highlighted that the significance of UPE lies in its ability to provide a non-invasive method to assess the health of living organisms.

“This technology could be utilized to monitor tissue status, such as in transplants, or to gauge crop and forest health, especially regarding the stress levels in organisms,” he explained.

Nonetheless, this field remains rife with uncertainties. For instance, Oblak pondered: “Perhaps UPE is not merely a byproduct of metabolic processes; it may also serve a purpose,” although scientists have yet to reach a consensus.

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About our experts

Dr. Daniel Oblak is an associate professor in the Faculty of Physics and Astronomy at the University of Calgary. He earned his PhD in Quantum Optics from the University of Copenhagen in 2010, having previously completed his Bachelor of Science and Master’s degrees at Aarhus University. Currently, his research interests encompass quantum information science, long-range encryption, quantum networks, and quantum light interfaces.

Source: www.sciencefocus.com

Unraveling Subtle Mysteries with “Donut” Rays

Researchers at the University of Boulder have advanced the field of ptychography by innovating a new imaging method using donut-shaped light beams. This technique enables detailed imaging of small regularly patterned structures such as semiconductors, overcoming previous limitations of conventional microscopy. This advance promises significant improvements in nanoelectronics and biological imaging. (Artist’s concept) Credit: SciTechDaily.com

In a new study, researchers at the University of Boulder used a donut-shaped beam of light to take detailed images of objects too small to be seen with traditional microscopes.

Advances in Nanoelectronic Imaging

This new technology could help scientists improve the inner workings of a variety of ‘nanoelectronics’, including miniature ones. The semiconductor inside a computer chip. This discovery was featured in a special issue on December 1st. Optics and Photonics News called Optics in 2023.

Ptychography: A Lens into the Microscopic World

This research is the latest advance in the field of ptychography, a challenging yet powerful technique for seeing very small things. Unlike traditional microscopes, ptychography tools do not directly observe small objects. Instead, it shines a laser at a target and measures how the light is scattered. This is a bit like making shadow puppets on a wall when viewed through a microscope.

A scattering pattern produced by donut-shaped rays of light reflecting off an object with a regularly repeating structure. Credit: Wang et al., 2023, optica

Overcoming Ptychography Challenges

So far, the approach has worked surprisingly well, with one major exception, said Margaret Mahne, the study’s lead author and distinguished professor of physics.

“Until recently, we had been completely unsuccessful with highly periodic samples or objects with regularly repeating patterns,” says the UW-Boulder and National Institute of Standards and Technology (NIST) collaboration. Margaret, a fellow at JILA, said, “That’s a problem because this has a lot of nanoelectronics in it.”

She pointed out that many important technologies, such as some semiconductors, are made up of atoms such as silicon and carbon bonded in regular patterns, like small grids or meshes. So far, it has proven difficult for scientists to observe these structures up close using ptychography.

Donut-shaped beams of light scatter from incredibly small structures. Credit: Wang et al., 2023, optica

A Breakthrough in Donut-Shaped Light

But in a new study, Murunet and colleagues have come up with a solution. Instead of using a traditional laser in a microscope, they generated a donut-shaped beam of extreme ultraviolet light.

The researchers’ new approach can collect precise images of small, delicate structures that are around 10 to 100 nanometers in size, or many times smaller than a millionth of an inch. In the future, researchers expect to be able to zoom in and observe even smaller structures. The donut beam, or angular momentum beam of light, also does not damage small electronic equipment during the process, as existing imaging tools such as electron microscopes do.

“In the future, this method could be used to inspect polymers used in semiconductor manufacturing and printing for defects without damaging the structure during the process,” Mahne said. Stated.

Bin Wang and Nathan Brooks, who received their PhDs from JILA in 2023, are the lead authors of this new study.

Pushing the Limits of Microscopy

Mahne said this research pushes the fundamental limits of microscopy. Because of the physics of light, lens-based imaging tools can only see the world to a resolution of about 200 nanometers, which is not precise enough to capture many viruses. For example, those that infect humans. Although scientists can freeze viruses to death and view them with powerful cryo-electron microscopes, they still cannot capture the activity of these pathogens in real time.

Ptychography, developed in the mid-2000s, could help researchers break through that limit.

How ptychography works
To understand how, go back to shadow puppets. Imagine that a scientist wants to collect stylized images of very small structures, perhaps the letters that spell “CU.” To do this, they first shine a laser beam on the text and scan the text multiple times. When light hits “C” and “U” (in this case the dolls), the light rays break and scatter, creating a complex pattern (shadow). Scientists record those patterns using sensitive detectors and analyze them using a series of mathematical formulas. Given enough time, they will perfectly recreate the shape of the doll from the shadow it casts, Mahne explained.

Evolution to Finer Details

Stated. Bin Wang and Nathan Brooks, who received their PhDs from JILA in 2023, are the lead authors of this new study. Other co-authors of the new study include physics professor and JILA fellow Henry Kaptein, current and former JILA graduate students Peter Johnsen, Nicholas Jenkins, Yuka Esashi, Iona Binney, Includes Michael Tanksalvara.

Reference: “High-fidelity ptychographic imaging of highly periodic structures enabled by vortex harmonic beams” Michael Tanksalvala, Henry C. Kapteyn, Bin Wang, Peter Johnsen, Yuka Esashi, Iona Binnie, Margaret M. Murnane, Nicholas W. Jenkins, and Nathan J. Brooks, September 19, 2023, optica.
DOI: doi:10.1364/OPTICA.498619

Source: scitechdaily.com