Author
Listed:
- Xia Wang
- Kalsom Salleh
- Liew Cheng Siang
Abstract
This study aims to address user experience problems on China's import cross-border e-commerce platforms through the implementation of smart technologies. A mixed methods approach was employed, comprising a survey (n=385), in-depth interviews, and comprehensive platform analysis. The research identified five major pain areas: product authenticity concerns (27.3%), logistical inefficiency (24.5%), payment security issues (18.7%), language barriers (16.2%), and inadequate after-sale service (13.3%). Five smart enhancement measures were developed: search and recommendation systems utilizing user profiling and cross-cultural semantics; multilingual NLP-powered customer service; predictive analytics and blockchain-driven logistics; trust frameworks with product validation systems; and personalized experience design for Chinese consumers. Implementation of these measures yielded significant improvements in conversion rate (77.8%), customer satisfaction (35.9%), delivery time (43.0%), and return rates (42.5%). The study establishes a strong correlation between platform intelligence and user satisfaction (r=0.79, p<0.01), confirming that integrated application of various intelligent algorithms substantially enhances cross-border e-commerce experiences. The proposed smart technology framework provides practical solutions for e-commerce platforms seeking to overcome cross-cultural challenges and optimize user experience in the Chinese import market.
Suggested Citation
Xia Wang & Kalsom Salleh & Liew Cheng Siang, 2025.
"Research on intelligent strategies for enhancing user experience in China’s import cross-border E-commerce platforms,"
Edelweiss Applied Science and Technology, Learning Gate, vol. 9(6), pages 2148-2167.
Handle:
RePEc:ajp:edwast:v:9:y:2025:i:6:p:2148-2167:id:8328
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