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QuickPic AAC: An AI-Based Application to Enable Just-in-Time Generation of Topic-Specific Displays for Persons Who Are Minimally Speaking
by
Shane, Howard C.
, Fontana de Vargas, Maurício
, Yu, Christina
, Schlosser, Ralf W.
, Koul, Rajinder
, White, Leigh Anne
in
Algorithms
/ Artificial Intelligence
/ Clinical medicine
/ Communication
/ Computational linguistics
/ Focus groups
/ Humans
/ Language
/ Language processing
/ Natural language interfaces
/ Product development
/ Questionnaires
/ Speaking
/ Speech
/ Speech therapists
/ Speech-Language Pathology
/ Telemedicine
/ Usability testing
/ Vocabulary
2024
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QuickPic AAC: An AI-Based Application to Enable Just-in-Time Generation of Topic-Specific Displays for Persons Who Are Minimally Speaking
by
Shane, Howard C.
, Fontana de Vargas, Maurício
, Yu, Christina
, Schlosser, Ralf W.
, Koul, Rajinder
, White, Leigh Anne
in
Algorithms
/ Artificial Intelligence
/ Clinical medicine
/ Communication
/ Computational linguistics
/ Focus groups
/ Humans
/ Language
/ Language processing
/ Natural language interfaces
/ Product development
/ Questionnaires
/ Speaking
/ Speech
/ Speech therapists
/ Speech-Language Pathology
/ Telemedicine
/ Usability testing
/ Vocabulary
2024
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QuickPic AAC: An AI-Based Application to Enable Just-in-Time Generation of Topic-Specific Displays for Persons Who Are Minimally Speaking
by
Shane, Howard C.
, Fontana de Vargas, Maurício
, Yu, Christina
, Schlosser, Ralf W.
, Koul, Rajinder
, White, Leigh Anne
in
Algorithms
/ Artificial Intelligence
/ Clinical medicine
/ Communication
/ Computational linguistics
/ Focus groups
/ Humans
/ Language
/ Language processing
/ Natural language interfaces
/ Product development
/ Questionnaires
/ Speaking
/ Speech
/ Speech therapists
/ Speech-Language Pathology
/ Telemedicine
/ Usability testing
/ Vocabulary
2024
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QuickPic AAC: An AI-Based Application to Enable Just-in-Time Generation of Topic-Specific Displays for Persons Who Are Minimally Speaking
Journal Article
QuickPic AAC: An AI-Based Application to Enable Just-in-Time Generation of Topic-Specific Displays for Persons Who Are Minimally Speaking
2024
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Overview
As artificial intelligence (AI) makes significant headway in various arenas, the field of speech–language pathology is at the precipice of experiencing a transformative shift towards automation. This study introduces QuickPic AAC, an AI-driven application designed to generate topic-specific displays from photographs in a “just-in-time” manner. Using QuickPic AAC, this study aimed to (a) determine which of two AI algorithms (NLG-AAC and GPT-3.5) results in greater specificity of vocabulary (i.e., percentage of vocabulary kept/deleted by clinician relative to vocabulary generated by QuickPic AAC; percentage of vocabulary modified); and to (b) evaluate perceived usability of QuickPic AAC among practicing speech–language pathologists. Results revealed that the GPT-3.5 algorithm consistently resulted in greater specificity of vocabulary and that speech–language pathologists expressed high user satisfaction for the QuickPic AAC application. These results support continued study of the implementation of QuickPic AAC in clinical practice and demonstrate the possibility of utilizing topic-specific displays as just-in-time supports.
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