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Latent Semantic
Similarity in
Unstructured, Initial
Dyadic Interactions
Vivian Ta, Meghan Babcock, Dr. William Ickes
Oral Presentation for ACES
March 26, 2014
Introduction
• How do people develop a basis of understanding each
other?
• Developing a “common-ground understanding1” or an
“intersubjective meaning context2”
 Using the same words in essentially the same way
 Involved behaviors:
 1) How much the interaction partners talk to each other
 2) How much the interaction partners look at each other
 3) How much the interaction partners acknowledge each other
1Abbeduto, Short-Meyerson, Benson, Dolish, & Weissman, 1998; Kecskes & Zhang, 2009; Krauss & Fussell, 1991; Schober &
Clark, 1989; Wilkes-Gibbs & Clark, 1992
2Gesn & Ickes, 1999; Morganti, 2008
Latent Semantic Analysis
• Program that determines the contextual meaning of any text
• Exams the relationships among words (Landauer &
Dumais, 1997; Landauer et al., 1998)
 Word/word pattern usage
• LSA Pairwise Comparison program
• Analyzes the similarity of 2 blocks of text
 Produces an index from -1 to 1 to indicate overall degree of latent
semantic similarity (LSS index)
 Measures overall semantic similarity
Hypothesis
• LSS will be positively correlated with
 1. How much dyad members talk to each other
 2. How much dyad members look at each other
 3. How much dyad members acknowledge each other
Participants
• Archival data from Ickes, Tooke, Stinson, Baker, Bissonnette
(1988)
• 46 dyads (92 students)
• Male-Male (20) & Female-Female (26)
• Strangers
• Undergraduate students
Procedure
• Participants came into Social Interaction Lab
• Experimenter left to retrieve important items
• Covertly audio-videotaped for 6 minutes
• Completed a post-interaction questionnaire (e.g., did you like your
partner, how smooth was the interaction, how awkward was the
interaction, etc.)
• Coded various behaviors (e.g., duration of mutual gazes, expressive
gestures, head nods, etc.)
• Transcripts of conversations were created
Procedure
• Transcripts were separated into 2 electronic text files; each
file contained only one dyad member’s portion of the
conversation
• These files were then transferred into the LSA program
Results
Significant Correlations of LSS with Dyad-Level Behavioral & Post-
Interaction Measures
Total number of conversation sequences 0.46**
Total number of speaking turns 0.45**
Total duration of speaking turns 0.60***
Total number of directed gazes 0.35*
Total number of mutual gazes 0.47**
Total number of nonverbal acknowledgements (head
nods)
0.43**
Note: * = p < .025; ** = p < .01; *** = p < .001
Results
Unique Significant Correlations of LSS with Dyad-Level Behavioral and Post-
Interaction Measures
Total word count 0.61*
Total number of questions asked 0.43*
Number of times dyad members talked about others -0.42*
Total percentage of positive entries 0.38*
Total frequency of positive affect 0.47*
Total frequency of expressive gestures 0.58**
Total duration of expressive gestures 0.44*
How smooth did you think the interaction was for your
partner?
0.36*
How awkward did you think the interaction was for your
partner?
-0.38*
How much did you like your partner? 0.35*
Note: * = p < .025; ** = p < .001
Mediation Analysis
• Factor analysis revealed 4 factors:
 1- Looking and acknowledging
 2- Gesturing while talking
 3- Using questions to advance/sustain conversation
 4- Smiling and laughing
Factors 1-4
% of repeated words
&
overall word count
LSS
+
+
+
Conclusion
• LSS develops from of a highly involving interaction in which
a lot of verbal information and nonverbal cues are
exchanged by both dyad members
• % of repeated words and total word count as mediator
between behaviors and LSS

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Latent Semantic Similarity in Unstructured, Initial Dyadic Interactions

  • 1. Latent Semantic Similarity in Unstructured, Initial Dyadic Interactions Vivian Ta, Meghan Babcock, Dr. William Ickes Oral Presentation for ACES March 26, 2014
  • 2. Introduction • How do people develop a basis of understanding each other? • Developing a “common-ground understanding1” or an “intersubjective meaning context2”  Using the same words in essentially the same way  Involved behaviors:  1) How much the interaction partners talk to each other  2) How much the interaction partners look at each other  3) How much the interaction partners acknowledge each other 1Abbeduto, Short-Meyerson, Benson, Dolish, & Weissman, 1998; Kecskes & Zhang, 2009; Krauss & Fussell, 1991; Schober & Clark, 1989; Wilkes-Gibbs & Clark, 1992 2Gesn & Ickes, 1999; Morganti, 2008
  • 3. Latent Semantic Analysis • Program that determines the contextual meaning of any text • Exams the relationships among words (Landauer & Dumais, 1997; Landauer et al., 1998)  Word/word pattern usage • LSA Pairwise Comparison program • Analyzes the similarity of 2 blocks of text  Produces an index from -1 to 1 to indicate overall degree of latent semantic similarity (LSS index)  Measures overall semantic similarity
  • 4. Hypothesis • LSS will be positively correlated with  1. How much dyad members talk to each other  2. How much dyad members look at each other  3. How much dyad members acknowledge each other
  • 5. Participants • Archival data from Ickes, Tooke, Stinson, Baker, Bissonnette (1988) • 46 dyads (92 students) • Male-Male (20) & Female-Female (26) • Strangers • Undergraduate students
  • 6. Procedure • Participants came into Social Interaction Lab • Experimenter left to retrieve important items • Covertly audio-videotaped for 6 minutes • Completed a post-interaction questionnaire (e.g., did you like your partner, how smooth was the interaction, how awkward was the interaction, etc.) • Coded various behaviors (e.g., duration of mutual gazes, expressive gestures, head nods, etc.) • Transcripts of conversations were created
  • 7. Procedure • Transcripts were separated into 2 electronic text files; each file contained only one dyad member’s portion of the conversation • These files were then transferred into the LSA program
  • 8.
  • 9. Results Significant Correlations of LSS with Dyad-Level Behavioral & Post- Interaction Measures Total number of conversation sequences 0.46** Total number of speaking turns 0.45** Total duration of speaking turns 0.60*** Total number of directed gazes 0.35* Total number of mutual gazes 0.47** Total number of nonverbal acknowledgements (head nods) 0.43** Note: * = p < .025; ** = p < .01; *** = p < .001
  • 10. Results Unique Significant Correlations of LSS with Dyad-Level Behavioral and Post- Interaction Measures Total word count 0.61* Total number of questions asked 0.43* Number of times dyad members talked about others -0.42* Total percentage of positive entries 0.38* Total frequency of positive affect 0.47* Total frequency of expressive gestures 0.58** Total duration of expressive gestures 0.44* How smooth did you think the interaction was for your partner? 0.36* How awkward did you think the interaction was for your partner? -0.38* How much did you like your partner? 0.35* Note: * = p < .025; ** = p < .001
  • 11. Mediation Analysis • Factor analysis revealed 4 factors:  1- Looking and acknowledging  2- Gesturing while talking  3- Using questions to advance/sustain conversation  4- Smiling and laughing Factors 1-4 % of repeated words & overall word count LSS + + +
  • 12. Conclusion • LSS develops from of a highly involving interaction in which a lot of verbal information and nonverbal cues are exchanged by both dyad members • % of repeated words and total word count as mediator between behaviors and LSS