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.



Riyadh Becomes First City in Region to Receive Global Active City Certification

General view of Riyadh, Saudi Arabia. (SPA)
General view of Riyadh, Saudi Arabia. (SPA)
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Riyadh Becomes First City in Region to Receive Global Active City Certification

General view of Riyadh, Saudi Arabia. (SPA)
General view of Riyadh, Saudi Arabia. (SPA)

The Royal Commission for Riyadh City (RCRC) announced that the capital has been awarded the Global Active City (GAC) certification, becoming the first city in the Middle East to attain this designation, in recognition of its efforts to promote healthy lifestyles, physical activity, and community well-being for all.

According to a press release issued by the commission Monday, CEO of the RCRC Eng. Ibrahim bin Mohammed Al-Sultan explained that this achievement reflects the continued support and ambitious vision of the Kingdom’s leadership, which has enabled Riyadh to make significant progress in improving quality-of-life indicators across the city, in line with the targets of Saudi Vision 2030, SPA reported.

Eng. Al-Sultan expressed appreciation to the main partners, Ministry of Sport and Saudi Sports for All Federation, whose active contributions played a vital role in securing this international recognition. He also acknowledged the efforts of relevant entities, noting that their collaboration highlights the Kingdom’s regional and global leadership in enhancing quality of life.

The release added that the Active Well-being Initiative, founded by Association for International Sport for All (TAFISA) and Evaleo Organization, and supported by the International Olympic Committee (IOC), awards the Global Active City certification to cities that excel in creating active living opportunities and implementing targeted systems and standards aimed at encouraging physical activity across all segments of society.

This achievement reaffirms RCRC’s commitment to transforming the capital into a city that enables residents and visitors to live healthier, more active lifestyles. This approach aligns with the goals of Saudi Vision 2030 and the Quality of Life Program through an integrated, citywide strategy that expands access to public spaces, walking and cycling paths, sports facilities, and community programs that inspire active living.

Riyadh’s approach brings together the sport, health, transport, education, and urban planning sectors to build a supportive urban environment that enhances well-being and ensures inclusivity for all members of the community.

The certification process was led by RCRC, with the support and participation of Ministry of Sport, Saudi Sports for All Federation, and more than 20 relevant entities. This collaborative effort has made physical activity an essential and accessible part of Riyadh’s urban vision.

The Global Active City classification reflects Riyadh’s progress in infrastructure, programs, governance systems, and policy frameworks dedicated to improving quality of life, strengthening community participation, and supporting sustainable well-being. It also recognizes the city’s measurable advancements in promoting physical activity and public health.


Interstellar Comet Keeps Its Distance as It Makes Its Closest Approach to Earth

This image, provided by NASA, shows the interstellar comet 3I/Atlas captured by the Hubble Space Telescope on Nov. 30, 2025, about 178 million miles (286 million kilometers) from Earth. (NASA, ESA, STScI, D. Jewitt (UCLA), M.-T. Hui (Shanghai Astronomical Observatory), J. DePasquale (STScI) via AP)
This image, provided by NASA, shows the interstellar comet 3I/Atlas captured by the Hubble Space Telescope on Nov. 30, 2025, about 178 million miles (286 million kilometers) from Earth. (NASA, ESA, STScI, D. Jewitt (UCLA), M.-T. Hui (Shanghai Astronomical Observatory), J. DePasquale (STScI) via AP)
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Interstellar Comet Keeps Its Distance as It Makes Its Closest Approach to Earth

This image, provided by NASA, shows the interstellar comet 3I/Atlas captured by the Hubble Space Telescope on Nov. 30, 2025, about 178 million miles (286 million kilometers) from Earth. (NASA, ESA, STScI, D. Jewitt (UCLA), M.-T. Hui (Shanghai Astronomical Observatory), J. DePasquale (STScI) via AP)
This image, provided by NASA, shows the interstellar comet 3I/Atlas captured by the Hubble Space Telescope on Nov. 30, 2025, about 178 million miles (286 million kilometers) from Earth. (NASA, ESA, STScI, D. Jewitt (UCLA), M.-T. Hui (Shanghai Astronomical Observatory), J. DePasquale (STScI) via AP)

A stray comet from another star swings past Earth this week in one last hurrah before racing back toward interstellar space.

Discovered over the summer, the comet known as 3I/Atlas will pass within 167 million miles (269 million kilometers) of our planet on Friday, the closest it gets on its grand tour of the solar system.

NASA continues to aim its space telescopes at the visiting ice ball, estimated to be between 1,444 feet (440 meters) and 3.5 miles (5.6 kilometers) in size. But it’s fading as it exits, so now’s the time for backyard astronomers to catch it in the night sky with their telescopes, The AP news reported.

The comet will come much closer to Jupiter in March, zipping within 33 million miles (53 million kilometers). It will be the mid-2030s before it reaches interstellar space, never to return, said Paul Chodas, director of NASA’s Center for Near Earth Object Studies.

It’s the third known interstellar object to cut through our solar system. Interstellar comets like 3I/Atlas originate in star systems elsewhere in the Milky Way, while home-grown comets like Halley's hail from the icy fringes of our solar system.

A telescope in Hawaii discovered the first confirmed interstellar visitor in 2017. Two years later, an interstellar comet was spotted by a Crimean amateur astronomer. NASA’s sky-surveying Atlas telescope in Chile spotted comet 3I/Atlas in July while prowling for potentially dangerous asteroids.

Scientists believe the latest interloping comet, also harmless, may have originated in a star system much older than ours, making it a tantalizing target.


Japan’s Only Two Pandas to Be Sent Back to China 

Giant panda Lei Lei eats bamboo at Ueno Zoological Gardens in Tokyo, Japan, 28 November 2025. (EPA)
Giant panda Lei Lei eats bamboo at Ueno Zoological Gardens in Tokyo, Japan, 28 November 2025. (EPA)
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Japan’s Only Two Pandas to Be Sent Back to China 

Giant panda Lei Lei eats bamboo at Ueno Zoological Gardens in Tokyo, Japan, 28 November 2025. (EPA)
Giant panda Lei Lei eats bamboo at Ueno Zoological Gardens in Tokyo, Japan, 28 November 2025. (EPA)

Two pandas at a Tokyo zoo will be returned to China in January, the Tokyo government said on Monday, potentially leaving Japan without the beloved animals for the first time in half a century.

Loaned out as part of China's "panda diplomacy" program, the distinctive black-and-white animals have symbolized friendship between Beijing and Tokyo since the normalization of diplomatic ties in 1972.

Japan currently has only two pandas, Lei Lei and Xiao Xiao, at Tokyo's Zoological Gardens in the Ueno neighborhood.

But the twins are now set to be repatriated a month before their loan period expires in February, said Tokyo Metropolitan Government, which operates the Ueno zoo.

Tokyo's regional government has been asking for the immensely popular mammals to remain at the zoo -- where they attract huge crowds -- but China didn't agree, according to the Nikkei business daily.

In September last year, animal lovers in Tokyo bid farewell to the parents of Lei Lei and Xiao Xiao who returned home.

Just before they left, thousands of tearful fans came out to catch a final glimpse and take photographs of the beloved bears.

The Asahi Shimbun reported that Tokyo is seeking the loan of a new pair, although their arrival before the return of Lei Lei and Xiao Xiao is seen as unlikely.

Ties between Asia's two largest economies are fast deteriorating after Japan's conservative premier Sanae Takaichi hinted that Tokyo could intervene militarily in the event of any attack on Taiwan.

Her comment provoked the ire of Beijing, which regards the island as its own territory.

Japan's top government spokesman Minoru Kihara said pandas have helped ties with China.

"Exchanges through pandas have contributed to improving the feelings between the people of Japan and China. We hope such exchanges will continue," Kihara told a regular press briefing.

He said that "several local governments and zoos have expressed interest in receiving pandas on loan" but did not state whether the national government was asking China for new animals.

The Ueno zoo has long been the beneficiary of panda diplomacy, having cooperated with facilities in China and the United States to successfully breed giant pandas.

Lei Lei and Xiao Xiao were delivered in 2021 by their mother Shin Shin, who arrived in 2011 and was returned to China last year.

Breeding pandas in a zoo environment is fiendishly tricky due to their difficulties mating, false pregnancies and high mortality rates of newborn cubs.