Abstract
This research explores consumer preferences for materials in different clothing product categories, using web-crawling and text mining techniques. Specifically, the study focuses on the material-related terms found in consumer reviews across three distinct product categories: functional clothing, formal shirts, and knit sweaters. Top-selling products within each category were identified on the Naver Shopping website based on the volume of reviews, and the four most-reviewed products were selected. Six hundred reviews per product were analyzed using the Textom big-data analysis software to determine the frequency of material-related mentions and word associations. The analysis utilized two comparative metrics: product category and usage duration. Our findings reveal notable variations in the material preferences mentioned by consumers across different product categories. The study suggests a need to re-evaluate existing standardized review criteria to better reflect consumer interests specific to each product category. Additionally, an increase in material-related terms in reviews over one month indicates the potential importance of extending the duration of product reviews to enhance the accuracy of information that reflects longer-term consumer experiences with material quality.
| Original language | English |
|---|---|
| Pages (from-to) | 729-743 |
| Number of pages | 15 |
| Journal | Journal of the Korean Society of Clothing and Textiles |
| Volume | 48 |
| Issue number | 4 |
| DOIs | |
| Publication status | Published - 2024 |
Bibliographical note
Publisher Copyright:© (2024), (Korean Society of Clothing and Textiles). All rights reserved.
Keywords
- Big data
- Clothing material
- Online shopping
- Product reviews
- Text mining
- 빅데이터
- 상품평
- 온라인 쇼핑
- 의류 소재
- 텍스트 마이닝
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