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1. A Review of Recent Work in Transfer Learning and Domain Adaptation for Natural Language Processing of Electronic Health Records

2. Temporal information extraction from mental health records to identify duration of untreated psychosis

3. The portability of natural language processing methods to detect suicidality from unstructured clinical text in US and UK electronic health records

5. User Perspectives of Mood-Monitoring Apps Available to Young People: Qualitative Content Analysis

6. Generation and evaluation of artificial mental health records for Natural Language Processing

7. Enhancing predictions of patient conveyance using emergency call handler free text notes for unconscious and fainting incidents reported to the London Ambulance Service

8. Distinguishing between Dementia with Lewy bodies (DLB) and Alzheimer’s Disease (AD) using Mental Health Records: a Classification Approach

9. Relative and Incomplete Time Expression Anchoring for Clinical Text

10. Knowledge patterns for online health portal development

11. Annotating Temporal Information in Clinical Notes for Timeline Reconstruction: Towards the Definition of Calendar Expressions

12. Generating Positive Psychosis Symptom Keywords from Electronic Health Records

13. Risk assessment tools and data-driven approaches for predicting and preventing suicidal behavior

14. Is artificial data useful for biomedical Natural Language Processing algorithms?

15. The Development of the Military Service Identification Tool: Identifying Military Veterans in a Clinical Research Database Using Natural Language Processing and Machine Learning

16. Clinical Natural Language Processing in languages other than English: opportunities and challenges

17. Time Expressions in Mental Health Records for Symptom Onset Extraction

18. Identifying Suicide Ideation and Suicidal Attempts in a Psychiatric Clinical Research Database using Natural Language Processing

19. Normalizing acronyms and abbreviations to aid patient understanding of clinical texts: ShARe/CLEF eHealth Challenge 2013, Task 2

20. Don’t Let Notes Be Misunderstood: A Negation Detection Method for Assessing Risk of Suicide in Mental Health Records

21. Vocabulary Development To Support Information Extraction of Substance Abuse from Psychiatry Notes

22. UtahBMI at SemEval-2016 Task 12: Extracting Temporal Information from Clinical Text

23. Developing a standard for de-identifying electronic patient records written in Swedish: Precision, recall and F-measure in a manual and computerized annotation trial

24. Recent Advances in Clinical Natural Language Processing in Support of Semantic Analysis

25. Louhi 2014: Special issue on health text mining and information analysis

26. BluLab: Temporal Information Extraction for the 2015 Clinical TempEval Challenge

27. Overview of the ShARe/CLEF eHealth evaluation lab 2014

28. SCAN: A Swedish Clinical Abbreviation Normalizer

30. Improving Readability of Swedish Electronic Health Records through Lexical Simplification : First Results

31. Temporal Expressions in Swedish Medical Text – A Pilot Study

32. Overview of the ShARe/CLEF eHealth evaluation lab 2013

33. Fine-Grained Certainty Level Annotations Used for Coarser-Grained E-Health Scenarios

34. Characteristics of Finnish and Swedish intensive care nursing narratives: a comparative analysis to support the development of clinical language technologies

35. Louhi 2010: Special issue on Text and Data Mining of Health Documents

36. Semantic annotations in clinical documentation

37. Mixing and blending syntactic and semantic dependencies

38. Automatic construction of domain-specific dictionaries on sparse parallel corpora in the Nordic languages

39. De-identifying Swedish clinical text - refinement of a gold standard and experiments with Conditional random fields

40. The language of mental health problems in social media

41. Hierarchical neural model with attention mechanisms for the classification of social media text related to mental health

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