人工智能在美容/化妆品皮肤科中的应用:当前和未来。

IF 2.3 4区 医学 Q2 DERMATOLOGY
Sukruthi Thunga, Marius Khan, Soo Ick Cho, Jung Im Na, Jane Yoo
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引用次数: 0

摘要

背景:人工智能(AI)的最新进展对皮肤病学产生了重大影响,尤其是在诊断皮肤病方面。然而,由于主观评价和缺乏标准化的评估方法,美容皮肤科面临着独特的挑战。目的:本综述旨在探讨人工智能在皮肤科中的应用现状,评估其在皮肤病诊断中的应用,并讨论传统评估方法在美容皮肤科中的局限性。此外,该综述还提出了未来整合人工智能以应对现有挑战的策略:对人工智能在皮肤科诊断和美容领域的应用进行了全面回顾。对主观调查和硬件设备等传统方法进行了分析,并与新兴的人工智能技术进行了比较。对当前人工智能模型的局限性进行了评估,并确定了对标准化评估方法和多样化数据集的需求:结果:人工智能在诊断皮肤病,尤其是皮肤癌方面显示出巨大的潜力。然而,在皮肤美容方面,传统方法仍然主观且缺乏标准化,因此限制了其有效性。该领域新兴的人工智能应用前景广阔,但由于数据集存在偏差且评估方法不一致,因此存在很大局限性:要开发人工智能在皮肤美容领域的潜力,关键是要建立标准化的评估方法,收集反映不同种族和年龄的多样化数据集,并向从业人员宣传人工智能的实用性和局限性。应对这些挑战将提高诊断准确性,改善患者预后,并有助于将人工智能有效融入临床实践。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
AI in Aesthetic/Cosmetic Dermatology: Current and Future.

Background: Recent advancements in artificial intelligence (AI) have significantly impacted dermatology, particularly in diagnosing skin diseases. However, aesthetic dermatology faces unique challenges due to subjective evaluations and the lack of standardized assessment methods.

Aims: This review aims to explore the current state of AI in dermatology, evaluate its application in diagnosing skin conditions, and discuss the limitations of traditional evaluation methods in aesthetic dermatology. Additionally, the review proposes strategies for future integration of AI to address existing challenges.

Methods: A comprehensive review of AI applications in dermatology was conducted, in both diagnostic and aesthetic fields. Traditional methods such as subjective surveys and hardware devices were analyzed and compared with emerging AI technologies. The limitations of current AI models were evaluated, and the need for standardized evaluation methods and diverse datasets was identified.

Results: AI has shown great potential in diagnosing skin diseases, particularly skin cancer. However, in aesthetic dermatology, traditional methods remain subjective and lack standardization, therefore limiting their effectiveness. Emerging AI applications in this field show promise, but they have significant limitations due to biased datasets and inconsistent evaluation methods.

Conclusions: To develop the potential of AI in aesthetic dermatology, it is crucial to create standardized evaluation methods, collect diverse datasets reflecting various ethnicities and ages, and educate practitioners on AI's utility and limitations. Addressing these challenges will improve diagnostic accuracy, better patient outcomes, and help integrate AI effectively into clinical practice.

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来源期刊
CiteScore
4.30
自引率
13.00%
发文量
818
审稿时长
>12 weeks
期刊介绍: The Journal of Cosmetic Dermatology publishes high quality, peer-reviewed articles on all aspects of cosmetic dermatology with the aim to foster the highest standards of patient care in cosmetic dermatology. Published quarterly, the Journal of Cosmetic Dermatology facilitates continuing professional development and provides a forum for the exchange of scientific research and innovative techniques. The scope of coverage includes, but will not be limited to: healthy skin; skin maintenance; ageing skin; photodamage and photoprotection; rejuvenation; biochemistry, endocrinology and neuroimmunology of healthy skin; imaging; skin measurement; quality of life; skin types; sensitive skin; rosacea and acne; sebum; sweat; fat; phlebology; hair conservation, restoration and removal; nails and nail surgery; pigment; psychological and medicolegal issues; retinoids; cosmetic chemistry; dermopharmacy; cosmeceuticals; toiletries; striae; cellulite; cosmetic dermatological surgery; blepharoplasty; liposuction; surgical complications; botulinum; fillers, peels and dermabrasion; local and tumescent anaesthesia; electrosurgery; lasers, including laser physics, laser research and safety, vascular lasers, pigment lasers, hair removal lasers, tattoo removal lasers, resurfacing lasers, dermal remodelling lasers and laser complications.
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