Tracking the Evolution of Technology and Science using Patent and Publication Data
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IISER Mohali
Abstract
Abstract
Today, much effort is being put into tracking the changes in Technology and Science.
This is because the results produced are not only informative but also useful, as is in the
case with figuring out Emerging Technologies. In this work, we approach the problem from
the perspective of Graph Theory or Network Science. We design a way to construct key-
word networks and identifying groups of communities within them using the techniques
of Graph Convolutional Neural Network, Random Walks and Louvain Method for Com-
munity Detection. Each major community identified represents a hot topic of research or
sub-field in the field for which data has been taken. These sub-fields have been identified
using the modern approaches of Large Language Models - BERT and GPT-3.5.
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