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demo: “using ratings to profile your health”




@neal_lathia
university of cambridge
collect     #recsys   recommend
preferences
user profiles for health
(gastrointestinal app)

“review” interaction: ratings, tags,
text

 recommendations as tailored
 health information

 personalised vs. global health fact
Research Questions
●   How can recommender systems be used in
    (everyday) health domains?
     ● Prof ling, tracking, being “normal”
          i
●   How can recommender systems give tailored
    information without diagnosing?
     ● Ethics? False positives? False negatives?
code                                   app
https://github.com/nlathia/PooReview.Android
mood-based mobile
(recommender)

sensing + experience sampling

preferences:
linking behaviour ~ moods

 just finished: data collection trial
 with ~40 participants
(co)
            location
movement               phone
                       social

           sensing
            implicit


mic


      proximity




                                experience
                                 sampling
                                   explicit
Research Questions
●   How can we recommend activities based on
    your mood and sensed context?
    ●   How do sensor patterns ~ moods?
    ●   How can this be measured?
public transport ratings
(recommender)

“review” interaction: ratings, text


“recommendations” as aggregated
recent ratings
Research Questions
●   How can the system be bootstrapped?
    ●   Cold-start: f lter bots
                    i             social media
●   How can the system solicit/incentivise
    contributing ratings?
●   How can we measure the quality and effect of
    this information?
www.tubestar.co.uk   android app

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RecSys 2012 Demo (Long)

  • 1. demo: “using ratings to profile your health” @neal_lathia university of cambridge
  • 2. collect #recsys recommend preferences
  • 3.
  • 4. user profiles for health (gastrointestinal app) “review” interaction: ratings, tags, text recommendations as tailored health information personalised vs. global health fact
  • 5.
  • 6.
  • 7. Research Questions ● How can recommender systems be used in (everyday) health domains? ● Prof ling, tracking, being “normal” i ● How can recommender systems give tailored information without diagnosing? ● Ethics? False positives? False negatives?
  • 8.
  • 9.
  • 10.
  • 11. code app https://github.com/nlathia/PooReview.Android
  • 12. mood-based mobile (recommender) sensing + experience sampling preferences: linking behaviour ~ moods just finished: data collection trial with ~40 participants
  • 13. (co) location movement phone social sensing implicit mic proximity experience sampling explicit
  • 14.
  • 15. Research Questions ● How can we recommend activities based on your mood and sensed context? ● How do sensor patterns ~ moods? ● How can this be measured?
  • 16. public transport ratings (recommender) “review” interaction: ratings, text “recommendations” as aggregated recent ratings
  • 17.
  • 18. Research Questions ● How can the system be bootstrapped? ● Cold-start: f lter bots i social media ● How can the system solicit/incentivise contributing ratings? ● How can we measure the quality and effect of this information?
  • 19. www.tubestar.co.uk android app