Multiclass learning with margin: exponential rates with no bias-variance trade-off
We study the behavior of error bounds for multiclass classification under suitable margin conditions. For a wide variety of methods we prove that the classification error under a hard-margin condition decreases exponentially fast without any bias-variance trade-off. Different convergence rates can b...
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Zusammenfassung: | We study the behavior of error bounds for multiclass classification under
suitable margin conditions. For a wide variety of methods we prove that the
classification error under a hard-margin condition decreases exponentially fast
without any bias-variance trade-off. Different convergence rates can be
obtained in correspondence of different margin assumptions. With a
self-contained and instructive analysis we are able to generalize known results
from the binary to the multiclass setting. |
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DOI: | 10.48550/arxiv.2202.01773 |