参考文献/References:
[1] 中华人民共和国国家发展和改革委员会. “十四五”扩大内需战略实施方案[EB/OL].(2022-12-15)[2025-05-15]. https: //www.gov.cn/xinwen/2022-12/15/content_5732127.htm.
[2] 工业和信息化部.物联网新型基础设施建设三年行动计划(2021—2023年)[EB/OL].(2021-09-10)[2025-05-15].https://www.gov.cn/zhengce/zhengceku/2021-09/29/content_5640204.htm.
[3] 诺曼. 情感化设计[M]. 何笑梅, 欧秋杏,译.2版. 北京: 中信出版社, 2015.
[4] 陈永康, 江雨豪, 何人可, 等. 基于文献计量学的情感化设计研究进展、热点与趋势分析[J]. 包装工程, 2022, 43(6): 32- 40.
Chen Yongkang, Jiang Yuhao, He Renke, et al. Emotional design trends and research progress: a scientometric analysis-based study[J]. Packaging Engineering, 2022, 43(6): 32- 40.(in Chinese)
[5] 丁俊武, 杨东涛, 曹亚东, 等. 情感化设计的主要理论、方法及研究趋势[J]. 工程设计学报, 2010, 17(1): 12-18, 29.
Ding Junwu, Yang Dongtao, Cao Yadong, et al. Theory, method, and trend of emotional design[J]. Journal of Engineering Design, 2010, 17(1): 12-18, 29.(in Chinese)
[6] 田心如, 谢云峰, 赵项. 基于用户需求的智能家具产品设计路径研究[J]. 家具与室内装饰, 2023, 30(11): 15-21.
Tian Xinru, Xie Yunfeng, Zhao Xiang. Research on design path of intelligent furniture products under user demand[J]. Furniture and Interior Design, 2023, 30(11): 15-21.(in Chinese)
[7] 吴越, 俞书伟, 张铭, 等. 基于Kano-AHP的智能穿戴首饰产品设计研究[J]. 包装工程, 2024, 45(S1): 220-227.
Wu Yue, Yu Shuwei, Zhang Ming, et al. Research on product design of smart wearable jewelry based on Kano-AHP[J]. Packaging Engineering, 2024, 45(S1): 220-227.(in Chinese)
[8] 孙园园, 刘飞, 李丽. 基于Kano-QFD的个性化产品属性指标重要度确定方法[J]. 计算机集成制造系统, 2014, 20(11): 2697-2704.
Sun Yuanyuan, Liu Fei, Li Li. Importance determining method of personalized product attributes based on Kano-QFD integration model[J]. Computer Integrated Manufacturing Systems, 2014, 20(11): 2697-2704.(in Chinese)
[9] 杨鑫鑫, 郭清, 王晓迪, 等. 近十年我国可穿戴设备在健康管理领域的研究现状及发展趋势[J]. 中国全科医学, 2023, 26(12): 1513-1519.
Yang Xinxin, Guo Qing, Wang Xiaodi, et al. Recent 10-year research status and development trend of wearable devices in health management in China[J]. Chinese General Practice, 2023, 26(12): 1513-1519.(in Chinese)
[10] 李安安, 石萍. 人体日常健康管理可穿戴设备研究进展[J]. 北京生物医学工程, 2021, 40(4): 430- 436.
Li An’an, Shi Ping. Research progress of wearable devices in human daily health management[J]. Beijing Biomedical Engineering, 2021, 40(4): 430- 436.(in Chinese)
[11] Hickey B A, Chalmers T, Newton P, et al. Smart devices and wearable technologies to detect and monitor mental health conditions and stress: a systematic review[J]. Sensors, 2021, 21(10): 3461.
[12] 张金荣, 玄泽阳. 医患关系技术化的伦理困境及其治理[J]. 道德与文明, 2024(6): 150-157.
Zhang Jinrong, Xuan Zeyang. Ethical dilemmas of technicalization of doctor-patient relationship and its governance[J]. Morality and Civilization, 2024(6): 150-157.(in Chinese)
[13] Williams R C, Lim Y. Designing positive emotional experiences of wearable medical technology for type 1 diabetes[J]. Proceedings of the Design Society, 2024, 4: 1697-1706.
[14] 江英婵, 张勇勤, 张琦, 等. 数字健康技术在缓解围生期女性负性情绪中应用的研究进展[J]. 护理研究, 2024, 38(17): 3087-3093.
Jiang Yingchan, Zhang Yongqin, Zhang Qi, et al. Research progress on application of digital health technology in relieving negative emotions among perinatal women[J]. Chinese Nursing Research, 2024, 38(17): 3087-3093.(in Chinese)
[15] Andrade R D A P, Oshiro H E, Miyazaki C K, et al. A nano-meter resolution wearable wireless medical device for non invasive intracranial pressure monitoring[J]. IEEE Sensors Journal, 2021, 21(20): 22270-22284.
[16] 赵艳梅. 基于色彩感知的儿童医疗器械情感化设计研究[J]. 机械设计, 2019, 36(2): 142-144.
Zhao Yanmei. Emotional design of children’s medical devices based on color perception[J]. Journal of Machine Design, 2019, 36(2): 142-144.(in Chinese)
[17] 汤思琦. 基于情感化设计的女性经期智能监护产品设计[D]. 北京: 北京化工大学, 2024.
[18] 李辉, 刘琦, 李剑. 基于形态体验的老年康复辅具设计[J]. 包装工程, 2018, 39(20): 152-158.
Li Hui, Liu Qi, Li Jian. Design of elderly rehabilitation aids based on morphological experience[J]. Packaging Engineering, 2018, 39(20): 152-158.(in Chinese)
[19] Lund F K, Feast L E E, Skovfoged M M, et al. Emotional design of medical devices: exoskeletons and post-stroke recovery devices[J]. Proceedings of the Design Society, 2024, 4: 1617-1626.
[20] Yoon J, Kim C. Positive emodiversity in everyday human-techno-logy interactions and users’ subjective well-being[J]. International Journal of Human—Computer Interaction, 2024, 40(3): 651- 666.
[21] El-Gayar O, Elnoshokaty A. Factors and design features influencing the continued use of wearable devices[J]. Journal of Healthcare Informatics Research, 2023, 7(3): 359-385.
[22] 李彩宁, 毕新华, 杨一毫, 等. 智能可穿戴健康技术用户行为研究的系统综述[J]. 图书情报工作, 2022, 66(17): 141-151.
Li Caining, Bi Xinhua, Yang Yihao, et al. A systematic literature review of research on smart wearable health technology users’behaviors[J]. Library and Information Service, 2022, 66(17): 141-151.(in Chinese)
[23] 李彩宁, 毕新华, 王雅薇. 个人健康信息管理技术促进用户健康行为的心理机制: 基于智能可穿戴健康产品的实证研究[J]. 图书情报工作, 2021, 65(19): 72-83.
Li Caining, Bi Xinhua, Wang Yawei. The psychological mechanisms of personal health information management technologies for promoting users’ health behavior: an empirical study based on smart wearable health products[J]. Library and Information Service, 2021, 65(19): 72-83.(in Chinese)
[24] 张林, 刘晓艳, 宁宁, 等. 慢性静脉疾病患者梯度压力弹力袜穿戴依从性的研究进展[J]. 血管与腔内血管外科杂志, 2022, 8(4): 430- 434.
Zhang Lin, Liu Xiaoyan, Ning Ning, et al. Research progress of compliance with graduated compression stockings in patients with chronic venous disease[J]. Journal of Vascular and Endovascular Surgery, 2022, 8(4): 430- 434.(in Chinese)
[25] Antoniou V, Davos C H, Kapreli E, et al. Effectiveness of home-based cardiac rehabilitation, using wearable sensors, as a multicomponent, cutting-edge intervention: a systematic review and meta-analysis[J]. Journal of Clinical Medicine, 2022, 11(13): 37722.
[26] 李天宇, 汤洲. 基于健康信念模式的前臂骨折康复训练器情感化设计研究[J]. 工业设计, 2024(3): 31-34.
Li Tianyu, Tang Zhou. Research on the affective design of forearm fracture rehabilitation trainer based on the health belief model[J]. Industrial Design, 2024(3): 31-34.(in Chinese)
[27] 王熙元, 张依云, 郑迪斐. 医疗监测设备人机交互界面情感化设计[J]. 包装工程, 2018, 39(2): 113-118.
Wang Xiyuan, Zhang Yiyun, Zheng Difei. Emotional design of human-computer interaction interface in medical monitoring equipment[J]. Packaging Engineering, 2018, 39(2): 113-118.(in Chinese)
[28] 立川正博. 情感化设计在头戴显示设备中的应用——以Apple Vision Pro为例[J]. 科技视界, 2024, 14(2): 52-56.
Li Chuanzhengbo. Application of emotional design in head-mounted display devices—taking apple vision pro as an example[J]. Science and Technology Vision, 2024, 14(2): 52-56.(in Chinese)
[29] 晚春雪, 吴子悦, 黄显. 柔性可穿戴传感与智能识别技术研究进展[J]. 中国科学(化学), 2022, 52(11): 1913-1924.
Wan Chunxue, Wu Ziyue, Huang Xian. Research progress in flexible wearable sensing and intelligent recognition techniques[J]. Scientia SINICA Chimica, 2022, 52(11): 1913-1924.(in Chinese)
[30] 张静莉, 刘丹宇, 于雅静, 等. 液晶弹性体软体驱动器的研究进展[J]. 液晶与显示, 2024, 39(12): 1722-1734.
Zhang Jingli, Liu Danyu, Yu Yajing, et al. Recent progress of liquid crystal elastomer soft actuator[J]. Chinese Journal of Liquid Crystals and Displays, 2024, 39(12): 1722-1734.(in Chinese)
[31] 李楠, 高党鸽, 吕斌, 等. 皮胶原在柔性智能可穿戴领域的研究进展[J]. 化工进展, 2024, 43(5): 2645-2660.
Li Nan, Gao Dangge, Lyu Bin, et al. Research progress of leather collagen in flexible intelligent wearable field[J]. Chemical Industry and Engineering Progress, 2024, 43(5): 2645-2660.(in Chinese)
[32] He Y, Zhao L D, Zhang J L, et al. A breathable, sensitive and wearable piezoresistive sensor based on hierarchical micro-porous PU@CNT films for long-term health monitoring[J]. Composites Science and Technology, 2020, 200: 108419.
[33] 张天一, 宋柏青, 李欣峰, 等. 基于MXene的复合功能纤维制备及其应用研究[J]. 功能材料, 2023, 54(9): 9080-9092.
Zhang Tianyi, Song Baiqing, Li Xinfeng, et al. Research on MXene-based composite functional fibers preparation and their applications[J]. Journal of Functional Materials, 2023, 54(9): 9080-9092.(in Chinese)
[34] Li Y H, Cao W T, Liu Z, et al. A personalized electronic textile for ultrasensitive pressure sensing enabled by biocompatible MXene/PEDOT: PSS composite[J]. Carbon Energy, 2024, 6(3): 530.
[35] 孙华悦, 向宪昕, 颜廷义, 等. 基于智能纤维和纺织品的可穿戴生物传感器[J]. 化学进展, 2022, 34(12): 2604-2618.
Sun Huayue, Xiang Xianxin, Yan Tingyi, et al. Wearable biosensors based on smart fibers and textiles[J]. Progress in Chemistry, 2022, 34(12): 2604-2618.(in Chinese)
[36] 董凯, 吕天梅, 盛非凡, 等. 面向个性化健康医疗的智能纺织品研究进展[J]. 纺织学报, 2024, 45(1): 240-249.
Dong Kai, Lü Tianmei, Sheng Feifan, et al. Advances in smart textiles oriented to personalized healthcare[J]. Journal of Textile Research, 2024, 45(1): 240-249.(in Chinese)
[37] 文春鹏, 马勇, 陈品德, 等. 静电纺纳米纤维纱线的制备方法及在智能可穿戴领域的应用进展[J]. 化工新型材料, 2024, 52(5): 40- 44, 51.
Wen Chunpeng, Ma Yong, Chen Pinde, et al. Advances in preparation method of electrostatic spinning nanofiber yarns and their application in intelligent wearable field[J]. New Chemical Materials, 2024, 52(5): 40- 44, 51.(in Chinese)
[38] 李颖, 黄乐乐, 黄枫, 等. 近10年虚拟现实技术在脑卒中领域应用的可视化分析[J]. 海军军医大学学报, 2025, 46(4): 458- 465.
Li Ying, Huang Lele, Huang Feng, et al. Application of virtual reality technology in stroke field over the past decade: a visualization analysis[J]. Academic Journal of Naval Medical University, 2025, 46(4): 458- 465.(in Chinese)
[39] 陈东林, 刘昊, 任志刚. 基于HTC VIVE的上肢康复虚拟训练系统研究[J]. 北京服装学院学报(自然科学版), 2018, 38(2): 52-57, 81.
Chen Donglin, Liu Hao, Ren Zhigang. Research on upper limb rehabilitation training system based on HTC VIVE[J]. Journal of Beijing Institute of Fashion Technology(Natural Science Edition), 2018, 38(2): 52-57, 81.(in Chinese)
[40] Abbate G, Giusti A, Randazzo L, et al. A mirror therapy system using virtual reality and an actuated exoskeleton for the recovery of hand motor impairments: a study of acceptability, usability, and embodiment[J]. Scientific Reports, 2023, 13: 22881.
[41] 张燕, 谢红. 智能可穿戴柔性数据手套传感技术研究进展[J]. 指挥与控制学报, 2024, 10(3): 264-275.
Zhang Yan, Xie Hong. Progress in intelligent wearable flexible data glove sensing techniques[J]. Journal of Command and Control, 2024, 10(3): 264-275.(in Chinese)
[42] 董科, 张玲, 范佳璇, 等. 力反馈电子服装中柔性传感器及其交互技术的研究进展[J]. 服装学报, 2019, 4(4): 293-300.
Dong Ke, Zhang Ling, Fan Jiaxuan, et al. Research progress of flexible sensor and its interaction technology in force feedback electronic clothing[J]. Journal of Clothing Research, 2019, 4(4): 293-300.(in Chinese)
[43] Lucchetti F, Lomele G. Validation and use of Teslasuit in a virtual-reality environment for neuromotor rehabilitation: a proof of concept study on healthy subjects[D]. Milano: Politecnico di Milano, 2023.
[44] 欧静, 谭瑜, 方滢洁, 等. 基于多感官交互的阿尔茨海默老人智能穿戴产品设计研究[J]. 包装工程, 2023, 44(10): 116-124.
Ou Jing, Tan Yu, Fang Yingjie, et al. Design of smart wearable products for the elderly of Alzheimer’s disease based on multi-sensory interaction[J]. Packaging Engineering, 2023, 44(10): 116-124.(in Chinese)
[45] Pacheco-Barrios K, Ortega-Márquez J, Fregni F. Haptic techno-logy: exploring its underexplored clinical applications—a syste-matic review[J]. Biomedicines, 2024, 12(12): 2802.
[46] Wang X, Xu B G, Zhang W B, et al. Recognizing emotions induced by wearable haptic vibration using noninvasive electroencephalogram[J]. Frontiers in Neuroscience, 2023, 17: 1219553.
[47] Lind C M, Diaz-Olivares J A, Lindecrantz K, et al. A wearable sensor system for physical ergonomics interventions using haptic feedback[J]. Sensors, 2020, 20(21): 6010.
[48] Cutecircuit. Soundshirt产品图[EB/OL]. [2025-08-31]. https://cutecircuit.com/soundshirt/.
[49] Amores J, Dotan M, Maes P. Development and study of ezzence: a modular scent wearable to improve wellbeing in home sleep environments[J]. Frontiers in Psychology, 2022, 13: 791768.
[50] Fekri A H, F B L R, Amin M R, et al. Regulation of brain cognitive states through auditory, gustatory, and olfactory stimulation with wearable monitoring[J]. Scientific Reports, 2023, 13: 12399.
[51] Jamesdysonaward. CO-JUMP软体机器人康复手套图[EB/OL]. [2025-08-31]. https://www.jamesdysonaward.org/zh-CN/2024/project/co-jump-softrobotics-reabilitation-glove.
[52] 孙岑颖. 基于SMPL模型的多感官交互智能可穿戴产品设计方法研究[D]. 秦皇岛: 燕山大学, 2024.
[53] Almukadi W. Smart scarf: an IOT-based solution for emotion recognition[J]. Engineering, Technology and Applied Science Research, 2023, 13(3): 10870-10874.
[54] 王文君, 郑丽敏, 程泓宇, 等. 机器学习在可穿戴智能传感系统中的应用与进展[J]. 科学通报, 2023, 68(34): 4630- 4641.
Wang Wenjun, Zheng Limin, Cheng Hongyu, et al. Applications and progress of machine learning in wearable intelligent sensing systems[J]. Chinese Science Bulletin, 2023, 68(34): 4630- 4641.(in Chinese)
[55] 彭雨馨, 付光蕾. 人工智能在感染伤口管理中的应用进展[J]. 军事护理, 2023, 40(12): 85-88.
Peng Yuxin, Fu Guanglei. Application progress of artificial intelligence in infected wound management: a literature review[J]. Military Nursing, 2023, 40(12): 85-88.(in Chinese)
[56] Wang J, Xue J T, Zou Y, et al. A dual-modal wearable pulse detection system integrated with deep learning for high-accuracy and low-power sleep apnea monitoring[J]. Advanced Science, 2025, 12(24): 2501750.
[57] Zhai W, Dai K, Liu H, et al. Deep learning-assisted intelligent wearable precise cardiovascular monitoring system[J]. Science Bulletin, 2024, 69(9): 1176-1178.
[58] 程大雷, 张代玮, 陈雅茜. 多模态情感识别综述[J]. 西南民族大学学报(自然科学版), 2022, 48(4): 440- 447.
Cheng Dalei, Zhang Daiwei, Chen Yaxi. Survey on multimodal emotion recognition[J]. Journal of Southwest Minzu University(Natural Science Edition), 2022, 48(4): 440- 447.(in Chinese)
[59] 石敏, 许莉钧, 彭华东. 可穿戴生理传感器驱动的深度学习情绪识别模型在心理健康评估中的应用[J]. 西南大学学报(自然科学版), 2024, 46(12): 189-201.
Shi Min, Xu Lijun, Peng Huadong. Application of wearable physiological sensor-driven deep learning emotion recognition model in mental health assessment[J]. Journal of Southwest University(Natural Science), 2024, 46(12): 189-201.(in Chinese)
(责任编辑:张 雪)