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ISKO 2010Marianne Lykke Royal School of Library and Information Science Susan L. Price and Lois M. L. Delcambre Portland State University ISKO 2010 Conference.

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Presentation on theme: "ISKO 2010Marianne Lykke Royal School of Library and Information Science Susan L. Price and Lois M. L. Delcambre Portland State University ISKO 2010 Conference."— Presentation transcript:

1 ISKO 2010Marianne Lykke Royal School of Library and Information Science Susan L. Price and Lois M. L. Delcambre Portland State University ISKO 2010 Conference Sapienza University of Rome, Faculty of Philosophy February 23 - 26, 2010 Using semantic components to represent and search domain-specific documents: An evaluation of indexing accuracy and consistency

2 ISKO 2010Marianne Lykke Agenda Problem and motivation Semantic component model Research questions Test design Results Conclusions

3 ISKO 2010Marianne Lykke Problem and motivation Challenges for information retrieval in domain-specific digital libraries : Domain-specific libraries often contain large sets of similar documents about few topics o Important to be able to distinguish between topical similar documents Domain experts often have specific information needs targeting a single right answer, specified by domain- specific facets. o Important to be able to limit search to domain-specific dimensions (e.g. Leckie et al., 1996; Fagin et al., 2003; Freund et al., 2005; Hearst et al., 2006)

4 ISKO 2010Marianne Lykke Problem and motivation Little time for information retrieval o Important that then relevant documents are highly ranked and retrieved by first query Distributed indexing, carried out by indexers with varied degree of indexing competence o Important to address classical indexing problems: quality, exhaustivity, specificity, consistency (e.g. Leckie et al., 1996; Fagin et al., 2003; Freund et al., 2005; Hearst et al., 2006)

5 ISKO 2010Marianne Lykke Semantic component model Semantic components model developed to facilitate formulation of specific, structured queries covering the search topic exhaustively by domain-specific dimensions Two-level model dividing a given collection into a set of document classes, each class with an associated set of semantic components Based on assumptions that o Domain experts know document genres within a certain domain: content and structure (Dillon, 1991; Orlikowski & Yates, 1994; Bishop, 1999; Vaughan & Dillon, 2005) o Domain-specific document content and structure correspond to domain-specific information needs (Ely et al, 1999,2000; Price, Delcambre, Nielsen, 2006)

6 HIO 2009Marianne Lykke SC: General information SC: Practical information Document class: Clinical method

7 HIO 2009Marianne Lykke SC: General information SC: Risk factors After treatment Document class: Clinical method

8 ISKO 2010Marianne Lykke Semantiske component model Document classSemantic componentDocument classSemantic component Clinical problemGeneral information Diagnosis Referral Treatment Clinical unitFunction and specialty Practical information Referral Staff and organization Clinical methodGeneral information Practical information Referral Aftercare Risks Expected results DrugsGeneral information Practical information Target group Effect Side effects ServicesGeneral information Practical information Referral NoticeGeneral information Practical information Qualification

9 HIO 2009Marianne Lykke

10 HIO 2009Marianne Lykke

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12 ISKO 2010Marianne Lykke Case study sundhed.dk: Danish, national health portal Active since 2001, 25.000 documents Two main target groups: citizens and medical professionals Combination of full-text indexing and controlled, assigned indexing: o ICPC, International Classification Primary Care o ICD-10, International Classification of Diseases o Home-grown Citizens Thesaurus Large and varied group of indexers o 5 regions o Up to 250 indexers per region Specific target group: family doctors

13 ISKO 2010Marianne Lykke Test design Comparative, experimental indexing study o Baseline: keyword indexing (controlled and free terms) o Experimental: semantic component indexing Test persons: 16 sundhed.dk indexers (convenience sample) Indexing task: 12 sundhed.dk documents o 6 documents were indexed with semantic components (SC) o 6 documents were indexed with keywords Random assignment of documents and indexing methods Training session Evaluation measures: o Accuracy o Consistency o Indexing time o Easiness

14 ISKO 2010Marianne Lykke Research questions Is semantic component indexing more accurate than keyword indexing compared to a reference standard? Is semantic component indexing more consistent than keyword indexing? Is semantic component indexing faster than keyword indexing? Is semantic component indexing easier than keyword indexing?

15 ISKO 2010Marianne Lykke Accuracy DocumentSemantic componentKeywords Recall macroaverage Precision macroaverage Recall macroaverage Precision macroaverage 10.74 ± 0.370.89 ± 0.260.14 ± 0.330.74 ± 0.43 20.56 ± 0.330.61 ± 0.390.35 ± 0.470.74 ± 0.42 30.59 ± 0.450.72 ± 0.380.10 ± 0.230.72 ± 0.42 40.33 ± 0.290.72 ± 0.410.16 ± 0.350.70 ± 0.45 50.74 ± 0.390.68 ± 0.470.38 ± 0.470.85 ± 0.30 60.59 ± 0.130.81 ± 0.350.01 ± 0.040.88 ± 0.31 70.63 ± 0.390.79 ± 0.310.28 ± 0.360.62 ± 0.41 80.70 ± 0.310.93 ± 0.170.01 ± 0.020.61 ± 0.49 90.66 ± 0.330.76 ± 0.430.21 ± 0.390.79 ± 0.39 100.61 ± 0.350.75 ± 0.260.25 ± 0.420.79 ± 0.39 110.65 ± 0.430.86 ± 0.310.12 ± 0.270.80 ± 0.36 120.63 ± 0.480.83 ± 0.300.03 ± 0.080.85 ± 0.34

16 ISKO 2010Marianne Lykke Consistency DocumentSemantic componentKeywords Mean K ± SD (of all semantic components in the document) Binary K (all vocabularies) Traditional 1 ± SD consistency = c / (a + b – c) 10.46 ± 0.35 -0.080.05 ± 0.13 20.21 ± 0.16 0.0010.18 ± 0.19 30.25 ± 0.30 -0.080.05 ± 0.11 40.35 ± 0.23 0.020.19 ± 0.30 50.50 ± 0.30 0.320.33 ± 0.23 60.05 ± 0.11 -0.070.23 ± 0.41 70.40 ± 0.48 0.260.27 ± 0.18 80.66 ± 0.11 -0.080.05 ± 0.11 90.04 ± 0.24 -0.020.09 ± 0.14 100.44 ± 0.16 0.270.29 ± 0.13 110.48 ± 0.41 -0.060.04 ± 0.09 120.01 ± 0.07 -0.120.08 ± 0.24

17 Time to index

18 Easiness

19 ISKO 2010Marianne Lykke Conclusions Varied accuracy for both indexing methods, but data suggests that semantic component indexing might be more accurate Indications that feasibility and easiness of indexing methods are similar Semantic component indexing may be preferable alternative if no appropriate controlled vocabulary is available due to short time for development and easy customization to specific document collection Limitations: o Small sample and a single domain o Not directly comparable evaluation measure Retrieval test shows improvement of document ranking of 25.6% by nDCG (normalized Discounted Cumulative Gain)

20 ISKO 2009Marianne Lykke Future research Development of model: o Simpler version o Up-marking by users (social tagging) o Automatic up-marking o Up-marking by XML Larger scale evaluation Evaluation in other domains

21 HIO 2009Marianne Lykke Litteratur Dillon, M (1991). Readers model of text structures: the case of academic articles. International Journal of Man-Machine Studies, 35. 913 – 925. Ely, J, Osheroff, J, Ebell, M, Bergus, G, Levy, B Chambliss, M & Evans, E (1999). Analysis of wquestions asked by family doctors regarding patient care. BMJ, 310 (7206). 358 – 361. Ely, J, Osheroff, J, Gorman, P, Ebell, M, Bergus, G, Levy, B Chambliss, M, Pifer, E & Stavri, P (2000). A taxonomy of generic clinical questions: classification study. BMJ, 321 (7278). 429 - 432. Fagin, R., Kumar, R., McCurley, K S., Novak, J., Sivakumar, D., Tomlin, J.A. & Williamson, D.P. (2003). Searching the workplace web. In: Proceedings of the 12th International World Wide Web Conference (WWW 03), Budapest, Hungary, May 20-24, 2003. 366-375. Freund, L., Toms, E. & Waterhouse, J. (2005). Modeling the information behaviour of software engineers using a work-task framework. In: Grove, A (ed.) ASIS&T 05 Proceedings of the 68th Annual meeting, Charlotte, NC, October 28-ember 2, 2005. Hearst, M & Plaunt, C (1993). Subtopic structuring for full length document access. Proceedings of the ACM SIGIR Conference on Research and Development in Information Retrieval. 59 – 69. Leckie, G.J., Pettigrew, K.E. & Sylvain, C. (1996). Modeling the information seeking of professionals. Library Quarterly, 66 (2). 161-193. Orlikowaki, W J & Yates, J (1994). Genre repertoire: the structuring of communicative practices in organizations. Administrative Science Quarterly, 39. 541 – 574. Price, S, Delcambre, L & Nielsen, M L (2006). Using semantic components to express questions against document collections. Proceedings International Workshop on Health Information and Knowledge Management (HIKM 2006), Arlington (VA). Price, S, Nielsen, M L, Delcambre, L & Vedsted, P (2007). Semantic components enhance retrieval of domain-specific documents. Proceedings of the ACM Sixteenth Conference on Information and Knowledge Management (CIKM), Lisboa, November 6 - 8, 2007.

22 HIO 2009Marianne Lykke Search term should appear in specified semantic component Search term

23 HIO 2009Marianne Lykke Semantic component should appear in document

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26 Time to index Indexing Type Total Documents Indexed (max = 96) Mean Num. Docs Indexed Per Indexer (max = 6) Mean Time (min:sec) Min Time (min:sec) Max Time (min:sec) Semantic Components 835.207:0300:2427:05 Keywords885.505:5601:0631:26 Time required for indexing documents

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28 HIO 2009Marianne Lykke Research team General practice Peter Vedsted MD, Ph.D. Research Unit general Practice, Århus University Jens Rubak MD Praksis.dk, Region Midt Information and computer science Lois Delcambre, Ph.D., Professor Susan Price, MD, Ph.D. student Computer Science Department Portland State University, USA Marianne Lykke, Ph.D., Associate professor Information Interaktion and Information Arkitecture Danmarks Bibliotekskole sundhed.dk Vibeke Luk Frans la Cour Information specialist IT consultant sundhed.dkAutonomy Supported by grants from the National Science Foundation, grant numbers 0514238, 0511050 and 0534762, the National Library of Medicine Training Grant 5- T15-LM07088 and Kvalitetsudviklingsudvalget for Almen Praksis, Aarhus Amt


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