Motif finding

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[12] X. Liu, D.L. Brutlag, and J.S. Liu. Bioprospector: discovering conserved dna motifs in upstream regulatory regions of co-expressed genes. Pac Symp Biocomput, pages 127-38, 2001.
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[13] J. van Helden, A.F. Rios, and J. Collado-Vides. Discovering regulatory elements in non-coding sequences by analysis of spaced dyads. Nucleic Acids Res, 28(8):1808-18, Apr 2000.
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[15] Y.J. Hu, S. Sandmeyer, C. McLaughlin, and D. Kibler. Combinatorial motif analysis and hypothesis generation on a genomic scale. Bioinformatics, 16(3):222-32, Mar 2000.
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[16] J. van Helden, M. del Olmo, and J.E. Perez-Ortin. Statistical analysis of yeast genomic downstream sequences reveals putative polyadenylation signals. Nucleic Acids Res, 28(4):1000-10, Feb 2000.
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[17] J. van Helden, B. Andre, and J. Collado-Vides. A web site for the computational analysis of yeast regulatory sequences. Yeast, 16(2):177-87, Jan 2000.
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[18] G.D. Stormo. Dna binding sites: representation and discovery. Bioinformatics, 16(1):16-23, Jan 2000.
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[20] G.Z. Hertz and G.D. Stormo. Identifying dna and protein patterns with statistically significant alignments of multiple sequences. Bioinformatics, 15(7-8):563-77, Jul-Aug 1999.
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[21] J. van Helden, B. Andre, and J. Collado-Vides. Extracting regulatory sites from the upstream region of yeast genes by computational analysis of oligonucleotide frequencies. J Mol Biol, 281(5):827-42, Sep 1998.
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[22] W.N. Grundy, T.L. Bailey, C.P. Elkan, and M.E. Baker. Hidden markov model analysis of motifs in steroid dehydrogenases and their homologs. Biochem Biophys Res Commun, 231(3):760-6, Feb 1997.
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