Model Dermatol – Skin Disease

Model Dermatol – Skin Disease
Model Dermatol – Skin Disease
Developer: Iderma
Category: Medical
887.9K installs
5.4K ratings
45K monthly active users
Revenue not available
Install Trends
Weekly +3.5K
Trending
Monthly +77.6K
Trending

Model Dermatol – Skin Disease Summary

Model Dermatol – Skin Disease is a mobile Android app in Medical by Iderma. Released in Jan 2021 (5 years ago). It has about 887.9K+ installs and 5.4K ratings with a 4.66★ (excellent) average. Based on AppGoblin estimates, it reaches roughly 45K monthly active users . Store metadata: updated Apr 11, 2026, version 16011.

Recent activity: 3.5K installs this week (77.6K over 4 weeks) showing exceptional growth , and 26 new ratings this week View trends →

Data tracking: SDKs and third-party integrations were last analyzed on Apr 6, 2026. The app's network data flows (API traffic to/from the app and its SDKs) were last crawled on Oct 19, 2025.

Store info: Last updated on Google Play on Apr 11, 2026 (version 16011).


4.66★

Ratings: 5.4K

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Screenshots

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App Description

AI provides relevant info on 186 skin diseases to help users with skin problems

Artificial intelligence analyzes your submitted photographs and instantly searches for relevant medical documents about potential skin conditions. The algorithm provides documents on common skin disorders (e.g., warts, shingles), skin cancers (e.g., melanoma), and other skin rashes (e.g., hives). In the 2022 Stiftung Warentest, a German consumer organization, this application achieved satisfaction ratings only slightly below those of paid teledermatology services.

- Please capture photographs of the affected skin area and submit them for analysis. Only the cropped images required for evaluation are transferred; we do not store your personal data.
- The algorithm provides links to authoritative medical resources describing the key signs and symptoms of skin conditions and skin cancers (e.g., melanoma).
- With the capability to classify 186 distinct skin conditions, the algorithm encompasses common dermatological disorders such as atopic dermatitis, hives, eczema, psoriasis, acne, rosacea, warts, onychomycosis, shingles, melanoma, and nevi.
- This application functions solely as an image search tool and is NOT a diagnostic platform. Disease names provided via linked content do not constitute a confirmed diagnosis of skin cancer or other dermatological conditions. While the information provided is medically informative, it is essential to CONSULT A PHYSICIAN before making any healthcare decisions.
- The use of this algorithm is completely FREE.

However, please keep in mind the following disclaimer:
- This app is an image search tool, NOT A DIAGNOSTIC APP. The disease names provided in the linked content are not final diagnoses of skin cancer or skin disorders.
- This app is not a medical device and has not been approved by the FDA.
- Although the content is informative, please CONSULT A DOCTOR before making any medical decisions.

We utilize the "Model Dermatology" algorithm, whose performance has been validated and published in multiple peer-reviewed medical journals. Collaborative studies have been conducted with numerous international institutions, including Seoul National University, Yonsei University, Basel University, Stanford University, MSKCC, and Ospedale San Bortolo. Representative publications include:
- Assessment of Deep Neural Networks for the Diagnosis of Benign and Malignant Skin Neoplasms in Comparison with Dermatologists: A Retrospective Validation Study. PLOS Medicine, 2020
- Planet-wide Performance of a Skin Disease AI Algorithm Validated in Korea. npj Digital Medicine 2025
- Augmenting the Accuracy of Trainee Doctors in Diagnosing Skin Lesions Suspected of Skin Neoplasms in a Real-World Setting: A Prospective Controlled Before and After Study. PLOS One, 2022
- Performance of a deep neural network in teledermatology: a single center prospective diagnostic study. J Eur Acad Dermatol Venereol. 2020
- Augment Intelligence Dermatology : Deep Neural Networks Empower Medical Professionals in Diagnosing Skin Cancer and Predicting Treatment Options for 134 Skin Disorders. J Invest Dermatol. 2020
- Keratinocytic Skin Cancer Detection on the Face using Region-based Convolutional Neural Network. JAMA Dermatol. 2019
- Classification of the Clinical Images for Benign and Malignant Cutaneous Tumors Using a Deep Learning Algorithm. J Invest Dermatol. 2018
- Evaluation of Artificial Intelligence-assisted Diagnosis of Skin Neoplasms – a single-center, paralleled, unmasked, randomized controlled trial. J Invest Dermatol. 2022