Title :
New Results for Learning Noisy Parities and Halfspaces
Author :
Feldman, Vitaly ; Gopalan, Parikshit ; Khot, Subhash ; Ponnuswami, Ashok Kumar
Author_Institution :
Harvard Univ., Cambridge, MA
Abstract :
We address well-studied problems concerning the learn-ability of parities and halfspaces in the presence of classification noise. Learning of parities under the uniform distribution with random classification noise, also called the noisy parity problem is a famous open problem in computational learning. We reduce a number of basic problems regarding learning under the uniform distribution to learning of noisy parities. We show that under the uniform distribution, learning parities with adversarial classification noise reduces to learning parities with random classification noise. Together with the parity learning algorithm of Blum et al. (2003), this gives the first nontrivial algorithm for learning parities with adversarial noise. We show that learning of DNF expressions reduces to learning noisy parities of just logarithmic number of variables. We show that learning of k-juntas reduces to learning noisy parities of k variables. These reductions work even in the presence of random classification noise in the original DNF or junta. We then consider the problem of learning halfspaces over Qopfn with adversarial noise or finding a halfspace that maximizes the agreement rate with a given set of examples. We prove an essentially optimal hardness factor of 2 - epsi, improving the factor of (85/84) - epsi due to Bshouty and Burroughs (2002). Finally, we show that majorities of halfspaces are hard to PAC-learn using any representation, based on the cryptographic assumption underlying the Ajtai-Dwork cryptosystem
Keywords :
Boolean functions; computational complexity; cryptography; learning (artificial intelligence); pattern classification; Ajtai-Dwork cryptosystem; classification noise; computational learning; cryptographic assumption; halfspaces; k-juntas; noisy parities learning; uniform distribution; Computer science; Cryptography; Decoding; Distributed computing; Error correction; Error correction codes; Gaussian noise; Linear code; Noise generators; Noise reduction;
Conference_Titel :
Foundations of Computer Science, 2006. FOCS '06. 47th Annual IEEE Symposium on
Conference_Location :
Berkeley, CA
Print_ISBN :
0-7695-2720-5
DOI :
10.1109/FOCS.2006.51