Decoding Brain Waves Helps Identify Music, New Study Suggests

This undated image of the human brain was taken through scanning technology. REUTERS/FILE
This undated image of the human brain was taken through scanning technology. REUTERS/FILE
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Decoding Brain Waves Helps Identify Music, New Study Suggests

This undated image of the human brain was taken through scanning technology. REUTERS/FILE
This undated image of the human brain was taken through scanning technology. REUTERS/FILE

A new technique created by researchers at the University of Essex for monitoring brain waves can identify the music someone is hearing. The study was published on January 19, in the journal Scientific Reports.

The researchers hope the project could lead to helping people with severe communication disabilities such as locked-in syndrome or stroke sufferers by decoding language signals within their brains through non-invasive techniques.

Dr. Ian Daly from Essex's School of Computer Science and Electronic Engineering, who led the research, said, “This method has many potential applications. We have shown we can decode music, which suggests that we may one day be able to decode language from the brain.”

While there have been successful previous studies monitoring and reconstructing acoustic information from brain waves, many have used more invasive methods such as electrocortiography (ECoG), which involves placing electrodes inside the skull to monitor the actual surface of the brain.

Essex scientists wanted to find a less invasive way of decoding acoustic information from signals in the brain to identify and reconstruct a piece of music someone was listening to.

The research used a combination of two non-invasive methods—fMRI, which measures blood flow through the entire brain, and electroencephalogram (EEG), which measures what is happening in the brain in real time—to monitor a person's brain activity while they are listening to a piece of music.

Using a deep learning neural network model, the data was translated to reconstruct and identify the piece of music. Music is a complex acoustic signal, sharing many similarities with natural language, so the model could potentially be adapted to translate speech.

The eventual goal of this strand of research would be to translate thought, which could offer an important aid in the future for people who struggle to communicate, such as those with locked-in syndrome.

During the study, the participants listened to a series of 40-second pieces of simple piano music from a set of 36 pieces differing in tempo, pitch, harmony and rhythm. Using these combined data sets, the model was able to accurately identify the piece of music with a success rate of 71.8 percent.



Croatia's Scientists Seek to Ward Off Threat to Posidonia Seagrass

Salema porgy swim near seagrass in the protected area of France's Porquerolles National Park ahead of the UN Ocean Conference on Friday, June 6, 2025. (AP Photo/Annika Hammerschlag)
Salema porgy swim near seagrass in the protected area of France's Porquerolles National Park ahead of the UN Ocean Conference on Friday, June 6, 2025. (AP Photo/Annika Hammerschlag)
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Croatia's Scientists Seek to Ward Off Threat to Posidonia Seagrass

Salema porgy swim near seagrass in the protected area of France's Porquerolles National Park ahead of the UN Ocean Conference on Friday, June 6, 2025. (AP Photo/Annika Hammerschlag)
Salema porgy swim near seagrass in the protected area of France's Porquerolles National Park ahead of the UN Ocean Conference on Friday, June 6, 2025. (AP Photo/Annika Hammerschlag)

At Croatia’s Dugi Otok island in the Adriatic Sea, scientists, demanding action to protect environmentally important meadows of seagrass, have been on a diving mission to assess the damage inflicted by human activity.

Named after Poseidon, the ancient Greek god of the sea, Posidonia oceanica, commonly known as Mediterranean tapeweed, provides food and shelter for fish, protects coasts from erosion, purifies sea water and can play a vital role in helping to tackle global warming.

A meadow of Posidonia can annually soak up to 15 times more carbon dioxide than a similar sized piece of the Amazon rainforest, scientific research has found.

But the scientists say much more needs to be done to protect it from tourist anchoring and from trawlers dragging fishing nets in the waters of the Adriatic Sea off Dugi Otok and the surrounding Kornati archipelago national park.

They have urged tougher regulations and fines for anyone breaching them.

Dominik Mihaljevic, a biologist at the national park, said the park had begun to install anchorages that would not harm the seagrass.

"Our ultimate goal is to completely prohibit anchoring at the 19 anchorage locations that are currently in use," Reuters quoted him as saying.

Matea Spika, a senior associate at Croatia’s Sunce environmental protection association, told Reuters Mediterranean Posidonia, endemic to the Mediterranean Sea, had declined by 30% in the last 30-to-40 years.

Apart from the issue of anchors and fishing nets, she said chemicals, excess nutrients from farms and cities, warmer waters due to climate change, and invasive species had caused further damage.

New ports and artificial beaches have also blocked sunlight essential for Posidonia’s growth.