TY - GEN
T1 - Multiclass learning approaches
T2 - 26th Annual Conference on Neural Information Processing Systems 2012, NIPS 2012
AU - Daniely, Amit
AU - Sabato, Sivan
AU - Shalev-Shwartz, Shai
PY - 2012
Y1 - 2012
N2 - We theoretically analyze and compare the following five popular multiclass classification methods: One vs. All, All Pairs, Tree-based classifiers, Error Correcting Output Codes (ECOC) with randomly generated code matrices, and Multiclass SVM. In the first four methods, the classification is based on a reduction to binary classification. We consider the case where the binary classifier comes from a class of VC dimension d, and in particular from the class of halfspaces over Rd. We analyze both the estimation error and the approximation error of these methods. Our analysis reveals interesting conclusions of practical relevance, regarding the success of the different approaches under various conditions. Our proof technique employs tools from VC theory to analyze the approximation error of hypothesis classes. This is in contrast to most previous uses of VC theory, which only deal with estimation error.
AB - We theoretically analyze and compare the following five popular multiclass classification methods: One vs. All, All Pairs, Tree-based classifiers, Error Correcting Output Codes (ECOC) with randomly generated code matrices, and Multiclass SVM. In the first four methods, the classification is based on a reduction to binary classification. We consider the case where the binary classifier comes from a class of VC dimension d, and in particular from the class of halfspaces over Rd. We analyze both the estimation error and the approximation error of these methods. Our analysis reveals interesting conclusions of practical relevance, regarding the success of the different approaches under various conditions. Our proof technique employs tools from VC theory to analyze the approximation error of hypothesis classes. This is in contrast to most previous uses of VC theory, which only deal with estimation error.
UR - http://www.scopus.com/inward/record.url?scp=84877772139&partnerID=8YFLogxK
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AN - SCOPUS:84877772139
SN - 9781627480031
T3 - Advances in Neural Information Processing Systems
SP - 485
EP - 493
BT - Advances in Neural Information Processing Systems 25
Y2 - 3 December 2012 through 6 December 2012
ER -