A report at the boundary between artificial and organoid intelligence 2024-06-04T00 Open Science

BrAIn - next generation neurons?

A game-changing publication?

11th December 2023 may seem a normal day to most people, and if you are one of them, prepare to be surprised: a breakthrough publication was indeed issued on Nature Electronic, and it happened to put the foundations for a field that will be crucial in the next future - the title? "Brain organoid reservoir computing for artificial intelligence".

I bet that everyone can somewhat grasp the idea behind the title, but it is worth introducing some key concepts for those who may be unfamiliar with the biological notions behind the brain.

Biological concepts

Explaining the breakthrough

Now that we have all the concepts we need, let's dive into understanding what happened in the paper we mentioned in the first paragraph, and in general what is going on in the field.

1. The core: organoid intelligence

Organoid Intelligence (OI) is a dynamic and growing field in bio-computing, whose base idea is to harness the power of human neurons, arranged into brain organoids, to speed up computing, ease training and provide a cheap and reliable alternative to artificial neural networks, to run AI algorithms and perform tasks. The ultimate aim of this field is to build a "wet-ware" (as opposed to the already-existent hardware), a concept that the mentioned paper describes as brainoware, with which we'll be able to implement brain-machine interfaces and dramatically increase our power.

2. The findings: speech recognition and comparison with ANNs

In "Brain organoid reservoir computing for artificial intelligence", the team behind the paper built a small brain organoid, loaded onto a multielectrode array (MAE) chip.

The organoid was trained to recognized the speech of 8 people with 240 recordings, showing different neural patterns of activation when different people were speaking and achieving a 78% accuracy in recognizing them. This may sound pretty unsurprising, unless you consider the size of the training dataset: 240 recordings are a really small-sized set of data, considered that AI algorithms would need thousands of examples to achieve similar accuracy scores.

After that, some other tests were performed, but one was really important, because it encompassed the comparison among the ONN (organoid neural netowrk), ANNs with a Long-Short Term Memory (LSTM) unit and ANNs without it. Brain cells were trained through impulses for four days (four 'epochs') on solving a 200-data point map. ONN outperformed ANNs without LSTMs, while ANNs+LSTM only were able to prove a little bit more accurate than the organoid only with 50 epochs of training, which means that ONNs yield similar results to their artificial counterparts with >90% less training.

3. Advantages and limitations

There are big advantages linked to OI:

Despite the promising perspectives, there are still some obstacles we need to overcome:

Conclusion

Organoid Intelligence is undoubtedly the forefront of biocomputing, which will be able to revolutionize the way we understand and (probably) even think of our brain, unlocking novel and unexpected discoveries on how we learn notions and shape our memory. On the other hand, it will provide a powerful hardware, which will capture huge conceptual, computational and representational power in small brain-like engines, reducing learning times and expenses for our new AI models. All of this, obviously, is subjected to the condition that we invest resources and time in building new organoids, algorithms and data facilities: the future of brAIn is close, we just need to put some effort to reach it.

References