Recognizing when a model stops improving
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What often happens to an older algorithm as more and more data is added?
Adding more data always guarantees that an older learning algorithm will keep improving.
Older Algorithms and Added Data
Recognizing when a model stops improving
What happens when a legacy model gets more data
Why older models stop gaining from more data
Explaining why a linear classifier stops improving with more data
What Happens to an Older Model with More Data
Which model is most likely to level off early as more labeled data is added?
A stalled learning curve indicates a plateau