KNOWLEDGE DISTILLATION AND SIAMESE NETWORK ADOPTION FOR SEMANTIC SEGMENTATION USING SEMI- SUPERVISED LEARNING

The demand for large amounts of labeled data and large computations is a common problem in semantic segmentation. Semi-supervised answers the problem by utilizing data without labels in the training process, but choosing the right method in the unsupervised learning process is a challenge in itself....

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Bibliographic Details
Main Author: Abdurrohman, Harits
Format: Theses
Language:Indonesia
Online Access:https://digilib.itb.ac.id/gdl/view/69104
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Institution: Institut Teknologi Bandung
Language: Indonesia