
[09] Kenneth Stanley - Efficient Evolution of Neural Networks through Complexification
The Thesis Review
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Exploring Creativity and Accessibility in AI
This chapter delves into the scaling hypothesis in neural networks, discussing the need for substantial computational power versus the potential of smaller models. It emphasizes the importance of creativity and exploration in AI research while advocating for equitable access to resources to foster innovation beyond corporate giants. The conversation highlights the significance of long-term vision and the pursuit of unconventional methods over rigid adherence to mainstream benchmarks.
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