other,11-2-P82-1035,bq natural language texts </term> e.g. , <term> memos </term> , rough <term> drafts </term> , <term>
other,26-4-P82-1035,bq words with multiple meanings </term> ( <term> ambiguity </term> ) , fill in <term> missing words </term>
other,16-2-P82-1035,bq </term> , rough <term> drafts </term> , <term> conversation transcripts </term> etc. , have features that differ
other,47-2-P82-1035,bq poor syntactic construction </term> , <term> missing periods </term> , etc . Our solution to these problems
other,17-3-P82-1035,bq </term> , based both on knowledge of <term> surface English </term> and on <term> world knowledge </term>
other,21-4-P82-1035,bq possible <term> word-senses </term> of <term> words with multiple meanings </term> ( <term> ambiguity </term> ) , fill in
other,10-5-P82-1035,bq </term> to aid the understanding of <term> scruffy texts </term> has been incorporated into a working
other,14-2-P82-1035,bq </term> e.g. , <term> memos </term> , rough <term> drafts </term> , <term> conversation transcripts </term>
other,40-2-P82-1035,bq such as <term> misspelled words </term> , <term> missing words </term> , <term> poor syntactic construction
other,13-1-P82-1035,bq under the assumption that the input <term> text </term> will be in reasonably neat form ,
other,25-5-P82-1035,bq <term> NOMAD </term> , which understands <term> scruffy texts </term> in the domain of Navy messages .
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