deformers' work
training deformers
using deformers
new deformers
advanced deformers
researchers are developing new types of deformable neural networks, or deformers.
the use of deformers in protein folding prediction is showing great promise.
we need to fine-tune the deformer architecture for optimal performance.
deformers can effectively model long-range dependencies in sequential data.
the self-attention mechanism is a key component of many modern deformers.
compared to transformers, deformers often require less training data.
we are exploring the application of deformers to image recognition tasks.
the initial results with the new deformer model are very encouraging.
deformers offer a potential solution for handling variable-length sequences.
the team is investigating different deformer configurations for this problem.
scaling up the deformer model presents significant computational challenges.
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