Mysterious Stone Secrets in Saudi Arabia Uncovered

Mysterious stone structures known as ‘Mustatil’ in northwestern Saudi Arabia, are among the oldest archeological ruins in the world
Mysterious stone structures known as ‘Mustatil’ in northwestern Saudi Arabia, are among the oldest archeological ruins in the world
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Mysterious Stone Secrets in Saudi Arabia Uncovered

Mysterious stone structures known as ‘Mustatil’ in northwestern Saudi Arabia, are among the oldest archeological ruins in the world
Mysterious stone structures known as ‘Mustatil’ in northwestern Saudi Arabia, are among the oldest archeological ruins in the world

KAUST scientists have used deep learning algorithms to accelerate the examination of thousands of years old, giant, stone rectangles in the Saudi desert.

“An international study showed that the huge, mysterious stone structures known as ‘Mustatil’ (Arab word for ‘Rectangle’) in northwestern Saudi Arabia, are among the oldest archeological ruins in the world,” Saudi Minister of Culture, Prince Badr bin Abdullah bin Farhan, said in a tweet in 2021.

These historic sites, which are around 7,000 years old, bewildered researchers and scientists who have long sought to determine their nature and the reasons behind their construction. A recent study by the University of Cambridge suggested that these huge structures, comprising chambers, entrances, and seats, are more complicated than expected.

‘Smart’ archeological survey

For quicker results, researchers at the King Abdullah University of Science and Technology (KAUST) have used an artificial intelligence network to carry out a detailed geological survey in the region, which hasn’t been sufficiently studied so far.

The team is composed of Dr. Silvio Giancola, researcher at KAUST’s Image and Video Understanding Lab (IVUL) and the Artificial Intelligence Initiative; Dr. Laurence Hapiot, archaeological research and cultural outreach fellow at KAUST; and Prof. Bernard Ghanem, IVUL senior researcher, and vice president of the Artificial Intelligence Initiative. The project is funded by the president bureau, dean bureau, and IVUL at KAUST.

AI tools are among the best methods used to assess archaeological sites and process general archaeological data, especially when it comes to spatial analyses such as the view field, which can be highly complicated without computers.

Rectangles of the desert

In 2020, the Saudi Heritage Commission announced that a scientific team discovered stone structures in the Nefud Desert, and identified the discovery as the oldest animal traps in the world, dating to 7,000 years.

According to the commission, the findings confirmed that the northern regions of the kingdom witnessed a cultural evolution in around 5,000 years BC. At the time, inhabitants built hundreds of large, stone constructions, which indicates cultural advancement in the region.

The fieldwork explored the archeological and environmental contexts of the stone constructions, especially the rectangle-shaped structure described as animal traps. These stone rectangles played a similar role and reflected a behavioral evolution that suggests a competition over pastures in complex, unstable environments in the Arabian Peninsula, even in periods of humidity like the Holocene era, during which people struggled with drought.

New research field

Inspired by a new research field known as ‘Computational archaeology’, this initiative used an AI software to model the exploration of stone structures with the help of satellites images.

Computational archaeology uses accurate, computer-based analytical methods including geographical information systems (GIS) to study data on long-term human behavior and behavioral evolution. Over more than a decade, archaeologists used available sources to manually analyze satellite images, and tools like Google Maps to search for possible archaeological sites.

In this project, KAUST’s researchers used automation to scan the unfamiliar, large rectangular stones in the Saudi Nefud Desert, in addition to other archaeological sites of circular and triangular shapes. The approach relies on machine learning algorithms fed with data sorted by Dr. Hapiot. Once the algorithms were trained, scientists became able to filter hundreds of similar characteristics on a wide scale. Now, when archaeologists discover a new structure, they can use the tool to convert similar pixels into geodetic data via GPS, and then combine results in a digital map and database for analysis.

“This demonstrates that KAUST is a unique research facility that excels in different faculties. Few environments can achieve an accelerated integration of deep, technical approaches like Artificial Intelligence in cooperation with archaeologists. This helped reach a different understanding of Nefud’s stone structures,” said Hapiot.

The extensively studied field in Nefud features thousands of massive, stone structures. Given that Saudi Arabia’s area is approximately two million square kilometers, geological surveys using conventional research operations and exploration methods could take months, or maybe years. But the new AI-based approach used by KAUST’s team took only five hours.

Commenting on the modern techniques used in this field, Dr. Jaser Suleiman al-Harbash, executive director of the Saudi Heritage Commission, said: “AI and machine learning processed huge sets of data from the Saudi archeological sites with an amazing speed. The commission hails the efforts made by KAUST to use the latest techniques in studying those ancient, stone structures. This can help us find more about the stones’ function and distribution, as well as the ancient civilization that built them.”

In addition to accelerating archaeological exploration, the new technique could provide answers to many questions about the size, capacity, and distribution of the stones, as well as determining whether exploring an ancient structure in a given region can help find other similar or linked structures in neighboring regions.

Other benefits

The benefits of the new deep learning technique used by KAUST are not limited to exploring archaeologic sites, as they can also help achieve the Vision 2030 goals, by preserving and documenting the unique heritage of Saudi Arabia, and promoting tourism. The new technique can be used in other regions with similar soil characteristics and topography. An initiative should be launched to help enhance the benefits of AI in archaeology, so archaeologists and data scientists can exchange their knowledge and achieve promising results.

Archaeology studies the whole activity of our ancestors in a given place and time. These activities include the tools made by humans to meet basic needs, construction, social and economic behaviors, written texts and architecture, and artistic and scientific works.

Archaeology also focuses on studying the origins of human civilizations, using the latest techniques that analyze the tiniest details related to our ancestors. The second half of the 20th century saw the emergence of the “New Archaeology” term, which indicates studying the organization of human communities in their locations, and defining their social structure in order to connect all these findings in a universal system on human behavior.



AI Camp Kicks Off in Madinah with 120 Participants

AI Camp kicks off in Madinah with 120 participants. (SPA)
AI Camp kicks off in Madinah with 120 participants. (SPA)
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AI Camp Kicks Off in Madinah with 120 Participants

AI Camp kicks off in Madinah with 120 participants. (SPA)
AI Camp kicks off in Madinah with 120 participants. (SPA)

The AI Camp kicked off at the Madinah Chamber of Commerce and Industry on Sunday as part of the MED AI Forum, bringing together 120 participants and nine speakers over five days, the Saudi Press Agency said on Monday.

The camp aims to develop innovative solutions to real-world challenges through three tracks: sports, agriculture, and tourism, enabling participants to progress from identifying challenges and generating ideas to building prototypes and preparing for the hackathon.


Tokyo Residents Fight for More Trees

This picture taken on August 25, 2026 shows a woman crossing with her bike on a street in Tokyo. (Photo by Philip FONG / AFP)
This picture taken on August 25, 2026 shows a woman crossing with her bike on a street in Tokyo. (Photo by Philip FONG / AFP)
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Tokyo Residents Fight for More Trees

This picture taken on August 25, 2026 shows a woman crossing with her bike on a street in Tokyo. (Photo by Philip FONG / AFP)
This picture taken on August 25, 2026 shows a woman crossing with her bike on a street in Tokyo. (Photo by Philip FONG / AFP)

One sweltering day in Tokyo, Kaoru Morimoto told friends she wasn't sure she could endure another summer in her neighborhood, where tree cover and the crucial shade it provides is dwindling.

As Japan experiences ever more frequent extreme heat, tree cover that can help lower temperatures is shrinking rather than growing in Tokyo, bucking a trend among many major world capitals.

Morimoto wants that to change. Last year she launched a campaign urging officials to set a canopy cover target, a rare grassroots initiative focused on the issue.

"Everyone says the summer has become more intense," but public awareness about Tokyo's lack of tree cover is low, Morimoto told AFP.

In this picture taken on August 25, 2026 activist Kaoru Morimoto looks on while checking the temperature in Nakano district of Tokyo. (Photo by Philip FONG / AFP)

Together with Susumu Nirasawa, a fellow resident in her western Tokyo neighborhood of Nakano, the 66-year-old organizes expert talks, shares temperature data on social media, and attends local council meetings where she petitions officials. Around 30 others in the community have joined the cause.

"We want the ward government to take the issue seriously," Nirasawa, 71, said.

Japan saw its hottest summer on record in 2025, with warmer days on the rise globally due to climate change.

This year, the country recorded almost 120 heat-related deaths between May and August, while more than 73,000 people needed emergency care.

Although experts say greater tree cover can help lower air temperatures, a University of Tokyo study in 2024 showed the city lost canopy cover equivalent to three and a half times the size of New York's Central Park in under a decade.

Thermometers and notebook in hand, Morimoto and Nirasawa take their own temperature readings in Nakano, hoping hard data will help unite their neighbors behind the cause.

We "measured the shade under trees with large canopies and under trees that had been more heavily pruned," said Morimoto. "There was about a three-degree difference."

In the 2024 study, University of Tokyo researcher and urban forestry expert Kinya Shiraishi found that canopy cover in central Tokyo fell to 7.3 percent in 2022 from 9.2 percent in 2013, a loss of 12 square kilometers.

By comparison, canopy cover in New York stands at around 23 percent, with the city aiming to raise it to 30 percent by 2040.

London aims for a 10 percent increase from its current 20 percent by 2050, while Paris also plans to boost coverage from about 18 percent.

"If we want to improve the quality of urban life, canopy cover is one of the key factors," Shiraishi told AFP, adding that trees also lower flooding risks and can help city dwellers feel calmer.

He said the decline was driven largely by the loss of private residential gardens, with ageing landowners selling their properties and mature trees often felled as large plots are subdivided to meet housing demand in the capital.

Many roads in Tokyo are also narrow and have little space for greenery, while authorities are wary of trees toppling over in extreme weather.

A Tokyo metropolitan government official told AFP that the city "is currently working to expand tree canopies through careful pruning, focusing on roads where the pavements are wide and the trees can grow".

Without proper management, trees threaten the visibility of traffic lights and are at risk of falling during typhoons, he said, adding that Tokyo uses a benchmark for measuring greenery which includes farmland and grassland found in its outer reaches.

But on a hot, sunny day in the city center, there was little shade along a street home to the finance ministry. One plane tree stood almost bare, its upper branches cut back close to the trunk.

"Unless we promptly make efforts to increase canopy cover and shift our policies, we'll run out of time," said Eijiro Fujii, professor emeritus at Chiba University who specializes in horticulture, glancing at a group of heavily pruned trees in Tokyo's central district of Kasumigaseki.

In this picture taken on August 25, 2026 Eijiro Fujii, professor emeritus at Chiba University, speaks during an interview with AFP in the Kasumigaseki neighbourhood, where most government ministries are located, in Tokyo. (Photo by Philip FONG / AFP)

Fujii blames overpruning, developed to manage trees in limited spaces, as well as the frequent rotation of public officials overseeing street greenery, for the decrease in canopy cover.

In Nakano, Morimoto and Nirasawa say the ward's mayor has recently begun to emphasize the importance of tree shade, but neighborhood officials have so far failed to set a target for canopy cover.

"Deaths from heat stroke are rapidly increasing in Japan," Fujii said. "We need to act before it's too late."


KAUST, Oxford Develop Electronic Sensor to Detect Parkinson’s Markers in Blood

The study was published in Science Advances. SPA
The study was published in Science Advances. SPA
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KAUST, Oxford Develop Electronic Sensor to Detect Parkinson’s Markers in Blood

The study was published in Science Advances. SPA
The study was published in Science Advances. SPA

Researchers at King Abdullah University of Science and Technology (KAUST), in collaboration with the University of Oxford, have developed a blood-based electronic sensor capable of detecting molecular signatures associated with Parkinson’s disease.

The study was published in Science Advances. The technology uses a highly sensitive electronic sensor developed at KAUST to simultaneously detect three different forms of alpha-synuclein, a protein closely associated with Parkinson’s disease. The sensor can detect these proteins at extremely low concentrations that are difficult to measure using conventional analytical techniques.

The approach first isolates tiny packages released by nerve cells into the bloodstream before their protein contents are analyzed using the electronic sensor. At the heart of the technology is a transistor that amplifies very small biological signals into much larger electronic signals, allowing all three forms of alpha-synuclein to be measured within 40 minutes.

Parkinson’s damages dopamine-producing neurons, leading to problems with movement, balance, and other bodily functions. It is currently diagnosed largely through clinical assessment, often after characteristic movement symptoms have emerged.

Detecting disease-related proteins originating from the brain could offer an earlier window into the disease but measuring them in blood is extremely difficult because more than 95 percent of circulating alpha-synuclein originates from red blood cells, creating heavy background noise.

Saudi Arabia’s healthcare system is placing increasing emphasis on prevention and earlier detection as people live longer. Life expectancy in the Kingdom has risen to 79.7 years, approaching the Saudi Vision 2030 target of 80, while the proportion of older people is expected to grow significantly in the coming decades.

Against this backdrop, technologies that could eventually help identify age-related diseases such as Parkinson’s earlier could become increasingly relevant to long-term healthcare.

In a blinded evaluation involving 59 participants from the Oxford Discovery cohort, the platform achieved 90.9 percent accuracy in distinguishing disease-associated profiles from healthy controls.

The study included people diagnosed with Parkinson’s disease, healthy controls, and individuals with isolated REM sleep behavior disorder, a condition which is associated with an increased risk of developing Parkinson’s or related neurological disorders.

Researchers found distinct patterns in the different forms of alpha-synuclein across the groups, suggesting that measuring them together could provide more useful diagnostic information than relying on a single marker.

Associate Professor of Bioengineering at KAUST Sahika Inal said: “Changes associated with Parkinson’s can begin long before a clinical diagnosis, but detecting those changes through something as accessible as blood remains extremely challenging.”

“Our approach allows us to detect several forms of alpha-synuclein together at extremely low concentrations. These early results are encouraging, and the next step is to validate the technology in much larger groups of patients,” he added.

The researchers caution that the technology is not yet a standalone clinical blood test. The current study represents a retrospective evaluation in an initial cohort, and larger, prospective, multicenter clinical studies will be needed to establish its long-term predictive value before the platform could be used routinely in healthcare.