Deepfake Detection

Stop Deepfake Attacks
Protect Mobile Login

Use AI to code and maintain deepfake detection methods in Android & iOS apps—fast. Use one DevOps-ready platform to stop deepfake attacks, login spoofing, and any deepfake method targeting local or biometric authentication, IDV, CIAM, and more.

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Deepfake Detection for Mobile Brands
+Best
User Experience in the Industry

Let AI Code Deepfake
Detection in Mobile Apps

With Appdome, you choose the deepfake detections needed in your Android & iOS apps. Then, Appdome uses AI to code and maintain the deepfake detection features in your apps as a standard part of your CI/CD pipeline. Protect login or create a perimeter defense around CIAM, IDV, or Biometric Authentication fast.

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Use Threat Signals to
Stop Deepfakes in Apps

Use Appdome's Threat-Events™ framework to get threat signals when deepfake threats arise in your mobile app. Detect deepfake attacks during onboarding, sign-in, payment, and more. Then, tailor the login or app experience based on the threat, and keep mobile users and the business safe from deepfake attacks.

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Monitor & Preempt
Deepfakes Across Users

ThreatScope™ XTM monitors the active attack surface of your mobile business, looking for deepfake attacks, the impact of deepfake defenses, and emerging deepfake and biometric threats, giving you the power to preempt any facial recognition bypass or ATO attacks from deepfakes with ease.

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With Appdome's total application context, we stopped deepfake attacks our IDV, liveness, and CIAM vendors couldn't detect.”

Deep Fake Detection Cx

Use AI to Automate the Work Out of
Deepfake Detection in Mobile Apps

With Appdome, you use AI to code and maintain Deepfake Detection methods in Android & iOS apps fast. Each deepfake detection feature is Certified Secure™ to prevent all deepfakes, including deepfake methods, video injections, DMA attacks, and more. No SDKs. No manual coding. No complexity. And, CI/CD ready so you can save money, time, and resources on deepfake detection in your mobile apps.

There's Only Solution that Can
Keep Up with Deepfake Attacks

Appdome's modular architecture allows mobile brands and businesses to deploy, update, and maintain any number of Deepfake Detection plugins in their mobile apps with ease. Apdpome's deepfake defense plugins analyze behavioral anomalies, identify threats, and filter out false positives, all without a server or external attestation. If you want to eliminate big Epics and manual work in fighting the battle against deepfake attacks, Appdome is the right choice.

Protect Face ID & Face Unlock

Face ID, or LocalAuthentication, in iOS and Face Unlock, or BiometricPrompt, in Android are the most widely used facial recognition systems inside Android & iOS apps. These systems are the gateway for autofill in the login sequence for mobile apps, offering security and convenience for mobile end users. Unfortunately, they are also targets to attackers looking to use deepfakes or perform facial recognition bypass attacks. Appdome defends the Face ID and Face Unlock sequence by detecting any attempt to capture, manipulate or interfere with the mobile device LocalAuthentication or BiometricPrompt. This ensures the integrity of local face recognition and prevents Deepfake attacks with ease.

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Harden Identity Verification

Face ID, or LocalAuthentication, in iOS and Face Unlock, or BiometricPrompt, in Android are the most widely used facial recognition systems inside Android & iOS apps. These systems are the gateway for autofill in the login sequence for mobile apps, offering security and convenience for mobile end users. Unfortunately, they are also targets to attackers looking to use deepfakes or perform facial recognition bypass attacks. Appdome defends the Face ID and Face Unlock sequence by detecting any attempt to capture, manipulate or interfere with the mobile device LocalAuthentication or BiometricPrompt. This ensures the integrity of local face recognition and prevents Deepfake attacks with ease.

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Monitor Image & Video Stores

Appdome secures mobile user authentication in Android & iOS apps by monitoring the biometric data stores used in facial recognition systems for signs of manipulation or exploits. In Android, this means identifying exploits in SurfaceFlinger, and the Camera Hardware Abstraction Layer (HAL). In iOS, it means detecting manipulation of Apple’s FaceID Keychain, Metal Framework and AVCaptureSession. In both, it means detecting Direct Memory Access (DMA) attacks, image buffer manipulations, memory hooking and process injection attacks. The goal of these methods is to detect the points of ingress and egress where deepfake image and video content can be injected, superimposed or accessed by evaluation systems.

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Detect Deepfake Apps

Appdome's Detect Deepfake Apps protects mobile apps from deepfake attacks by detecting or blocking the use of deepfake apps and face swap apps in Android and iOS apps. This feature identifies and prevents deepfake tools used to spoof facial recognition systems such as DeepFaceLab, DeepFaceLive, Avatarify, Deefake Studio, FaceSwap-GAN, FaceMagic, Reface, Zao, and other face swap apps, all of which can be used to manipulate biometric data and perform deepfake biometric bypass attacks. Detect Deepfake Apps also detects virtual camera redirection or substitution, a technique typically used in combination with deepfake and face-swapping tools. Data about each exploit attempt can be passed to the application for mitigation steps.

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Detect Video & Image Injection

Appdome provides Deepfake Video Detection for mobile apps. This feature identifies video injection and frame injection techniques used to bypass face recognition and identity verification systems. These attack vectors typically inject fake live videos or fake still images directly into the camera stream to fool facial recognition and liveness detection systems. The defense includes detecting fake faces, pre-recorded or AI-generated video content into the camera buffer to impersonate users during ID verification (e.g., KYC fraud, deepfake banking fraud) and more. This defnese can be augmented with other Appdome features that detection hooking, patching, swizzling and other methods.

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Detect Liveness Bypass

Appdome deepfake detection suite can monitor the mobile camera and device sensors to detect deepfake liveness bypass and other adversarial techniques such as manipulating embeddings and encodings in facial recognition data, lighting meter, camera focus, etc. To do this, Appdome compares the device sensors like accelerometer, gyroscope, gravity sensor, and more, as well as the mobile device and application state, with the camera inputs to determine mismatches with the biometric process, feeds, or data. For example, if the application is receiving a camera feed but is in the background, the likelihood of a deepfake attack rises. This data is sent to the app for mitigation steps.

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Detect Adversarial Deepfake Methods

Adversarial Deepfake Detection protects mobile apps by identifying subtle, AI-driven manipulations designed to fool facial recognition systems. Appdome defends against these techniques by monitoring for embedding anomalies, irregular similarity scores, and model-level inconsistencies that indicate adversarial interference. It also blocks attempts to inject tampered frames, override facial recognition APIs, or manipulate authentication logic via synthetic facial data. By securing the biometric pipeline at the model and inference levels, this feature prevents unauthorized access and shields mobile apps from stealthy, AI-powered deepfake exploits.

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Stop Deepfake Injection at Runtime

Appdome protects mobile apps from deepfake injection techniques by detecting and blocking runtime manipulation methods like video injection, Direct Memory Access (DMA) attacks, and virtual camera substitution. These attacks are commonly used to feed synthetic video or face-swapped content into Android and iOS apps, bypassing biometric checks. With Appdome, mobile apps can enforce strict runtime integrity, stop image and video spoofing attempts, and prevent the injection of manipulated facial data into Face ID, BiometricPrompt, and other native authentication flows.

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Best Deepfake Threat Response

With Appdome Threat-Events™, mobile brands and developers can get rich threat data directly from the Appdome framework in the app, keep full control over the user experience, and enjoy multiple threat response options when mobile deepfakes are detected. Threat-Events™ enables the app to plug into and control Appdome's deepfake detection methods and threat data, and use the threat data to tailor in-app responses and mitigation workflows based on the specific deepfake threats present in the application lifecycle.

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Best Deepfake Defense for DevOps

Inside a highly demanding DevOps lifecycle, getting deepfake defense right is extremely hard. Mobile apps are updated 24x-36x a year, the Android & iOS OS changes frequently, and threats evolve constantly. Appdome uses AI to eliminate this complexity, implement and maintain each mobile deepfake defense up to date, and support the mobile engineering team's autonomy and release cycles. Full support for the Mobile DevOps tool chain and best practices is a standard part of using Appdome.

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Are you an Android or iOS Developer?

Stop Deepfake Attacks the Right Way.​

With Appdome, you can meet Deepfake Detection requirements without sacrificing your engineering freedom, development choices, other features, or the user experience. 

Appdome uses AI to create and build Deepfake Detection that works with the way you’ve built your app, including the coding languages and frameworks used in your Android apps. Appdome also supports your existing DevOps tech stack, including CI/CD, test automation, release management, and more. 
Need to deliver Deepfake Detection without a lot of work, crashing your app or slowing down your release cycle? We’ve got you covered.

Are you an Android or iOS Developer?

Ready to Save $Millions on Deepfake Detection?

Get a price quote and start saving money on deepfake detection today. Appdome’s deepfake detection & prevention solution helps mobile brands save $millions of dollars by avoiding unnecessary SDKs, server-side deployments, engineering work, support complexity, code changes and more.

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Device Binding in the Age of AI

For years, fraud prevention solutions have tried to use Device IDs to bind (or link) a user’s account or session to a specific device to prevent unauthorized access from other devices. However, until recently, Device IDs lacked persistence and the broad threat context needed to stop fraud and ATOs …

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Image Blog 2 Text

Device Binding in the Age of AI

For years, fraud prevention solutions have tried to use Device IDs to bind (or link) a user’s account or session to a specific device to prevent unauthorized access from other devices. However, until recently, Device IDs lacked persistence and the broad threat context needed to stop fraud and ATOs …