Transfer learning is a technique in artificial intelligence and machine learning where a model developed for one task is reused as the starting point for a new, related task. Instead of training a model from scratch, transfer learning leverages the knowledge the model has already learned—such as patterns, features, or weights—on a large, general dataset, and fine-tunes it for a more specific or smaller-scale task.
Training deep learning models from scratch often requires:
GPU クラウドの即時アクセスで、
人類の AI への挑戦を加速する。
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