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Towards deep learning with segregated dendrites
by
Guerguiev, Jordan
, Lillicrap, Timothy P
, Richards, Blake A
in
Algorithms
/ Artificial Intelligence
/ Back propagation
/ Behavior
/ Brain
/ Computational and Systems Biology
/ credit assignment
/ Deep learning
/ Dendrites
/ dendritic morphology
/ Expected values
/ feedback alignment
/ Machine Learning
/ Models, Neurological
/ Neocortex
/ Neural Networks (Computer)
/ Neuroscience
/ Neurosciences
/ Pyramidal cells
/ Synaptic strength
/ target propagation
2017
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Towards deep learning with segregated dendrites
by
Guerguiev, Jordan
, Lillicrap, Timothy P
, Richards, Blake A
in
Algorithms
/ Artificial Intelligence
/ Back propagation
/ Behavior
/ Brain
/ Computational and Systems Biology
/ credit assignment
/ Deep learning
/ Dendrites
/ dendritic morphology
/ Expected values
/ feedback alignment
/ Machine Learning
/ Models, Neurological
/ Neocortex
/ Neural Networks (Computer)
/ Neuroscience
/ Neurosciences
/ Pyramidal cells
/ Synaptic strength
/ target propagation
2017
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Do you wish to request the book?
Towards deep learning with segregated dendrites
by
Guerguiev, Jordan
, Lillicrap, Timothy P
, Richards, Blake A
in
Algorithms
/ Artificial Intelligence
/ Back propagation
/ Behavior
/ Brain
/ Computational and Systems Biology
/ credit assignment
/ Deep learning
/ Dendrites
/ dendritic morphology
/ Expected values
/ feedback alignment
/ Machine Learning
/ Models, Neurological
/ Neocortex
/ Neural Networks (Computer)
/ Neuroscience
/ Neurosciences
/ Pyramidal cells
/ Synaptic strength
/ target propagation
2017
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Journal Article
Towards deep learning with segregated dendrites
2017
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Overview
Deep learning has led to significant advances in artificial intelligence, in part, by adopting strategies motivated by neurophysiology. However, it is unclear whether deep learning could occur in the real brain. Here, we show that a deep learning algorithm that utilizes multi-compartment neurons might help us to understand how the neocortex optimizes cost functions. Like neocortical pyramidal neurons, neurons in our model receive sensory information and higher-order feedback in electrotonically segregated compartments. Thanks to this segregation, neurons in different layers of the network can coordinate synaptic weight updates. As a result, the network learns to categorize images better than a single layer network. Furthermore, we show that our algorithm takes advantage of multilayer architectures to identify useful higher-order representations—the hallmark of deep learning. This work demonstrates that deep learning can be achieved using segregated dendritic compartments, which may help to explain the morphology of neocortical pyramidal neurons. Artificial intelligence has made major progress in recent years thanks to a technique known as deep learning, which works by mimicking the human brain. When computers employ deep learning, they learn by using networks made up of many layers of simulated neurons. Deep learning has opened the door to computers with human – or even super-human – levels of skill in recognizing images, processing speech and controlling vehicles. But many neuroscientists are skeptical about whether the brain itself performs deep learning. The patterns of activity that occur in computer networks during deep learning resemble those seen in human brains. But some features of deep learning seem incompatible with how the brain works. Moreover, neurons in artificial networks are much simpler than our own neurons. For instance, in the region of the brain responsible for thinking and planning, most neurons have complex tree-like shapes. Each cell has ‘roots’ deep inside the brain and ‘branches’ close to the surface. By contrast, simulated neurons have a uniform structure. To find out whether networks made up of more realistic simulated neurons could be used to make deep learning more biologically realistic, Guerguiev et al. designed artificial neurons with two compartments, similar to the ‘roots’ and ‘branches’. The network learned to recognize hand-written digits more easily when it had many layers than when it had only a few. This shows that artificial neurons more like those in the brain can enable deep learning. It even suggests that our own neurons may have evolved their shape to support this process. If confirmed, the link between neuronal shape and deep learning could help us develop better brain-computer interfaces. These allow people to use their brain activity to control devices such as artificial limbs. Despite advances in computing, we are still superior to computers when it comes to learning. Understanding how our own brains show deep learning could thus help us develop better, more human-like artificial intelligence in the future.
Publisher
eLife Sciences Publications Ltd,eLife Sciences Publications, Ltd
Subject
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