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Beyond the Scent: A Holistic NLP Study of the Fragrance World

  • Istanbul Technical University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

This paper presents a holistic NLP-based approach to the fragrance industry. Using a methodology based on online reviews, this study aimed to gain insights into customer sentiment and product preferences towards fragrance brands. In this study, analyses were conducted by creating a unique dataset by randomly selecting 13,828 reviews of 36 perfumes from a website specializing in the global perfume industry. By sentiment analysis, it is investigated how well user comments' sentiment compound scores and overall perfume evaluations correlate. Using Latent Dirichlet Allocation method, commonly used terms and topics are extracted from comments to provide insights into user sentiments. Moreover, Term Frequency-Inverse Document Frequency analysis helped to draw out keywords and word patterns from evaluations that are distinctive to a given brand. The most commonly used words in these comments were identified by examining user reviews. By bridging perfumes and language within user-generated content, we believe this study would contribute valuable insights to management practices in the fragrance industry.
Original languageEnglish
Title of host publicationIntelligent And Fuzzy Systems, Vol 3, Infus 2024
EditorsC Kahraman, SC Onar, S Cebi, B Oztaysi, AC Tolga, IU Sari
PublisherSpringer Nature
Pages11-19
Number of pages9
Volume1090
ISBN (Electronic)978-3-031-67192-0
ISBN (Print)978-3-031-67191-3
DOIs
Publication statusPublished - 2024
EventInternational Conference on Intelligent and Fuzzy Systems (INFUS) - Canakkale, Turkey
Duration: 16 Jul 202418 Jul 2024

Publication series

NameLecture Notes In Networks And Systems

Conference

ConferenceInternational Conference on Intelligent and Fuzzy Systems (INFUS)
Country/TerritoryTurkey
CityCanakkale
Period16/07/2418/07/24

Keywords

  • Fragrance
  • Latent Dirichlet Allocation
  • Machine Learning
  • Natural Language Processing
  • Perfume
  • Sentiment Analysis
  • Topic Modelling

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