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Detecting inappropriate activity in the presence of unauthenticated API requests using artificial intelligence

机译:使用人工智能在存在未经验证的API请求的情况下检测不适当的活动

摘要

Unauthenticated client access to an application (e.g., a SaaS-based web application) that employs unauthenticated API endpoints is monitored and protected by an access control system and method that leverages a neural network. The neural network is trained to recognize user behaviors that should be deemed to be “inappropriate” according to a policy. Using the neural network, the system provides effective discrimination with respect to unauthenticated user behavior, and it enables access controls to be more effectively enforced with respect to users that are not using the application according to an enterprise security policy. By training the neural network to recognize pattern(s) behind regular user behavior, the approach enables robust access control with respect to users that are unauthenticated. More generally, the approach facilitates access control based in whole or in part on API interactions with an application where the identity of the individuals making that access are unknown or necessarily ascertainable.
机译:使用未经验证的API端点的应用程序(例如,基于SaaS的web应用程序)的未经验证的客户端访问由利用神经网络的访问控制系统和方法监控和保护。对神经网络进行训练,以识别根据策略应被视为“不适当”的用户行为。通过使用神经网络,该系统可以有效区分未经验证的用户行为,并能够根据企业安全策略,对未使用该应用程序的用户更有效地实施访问控制。通过训练神经网络识别常规用户行为背后的模式,该方法能够对未经身份验证的用户进行鲁棒访问控制。更一般地说,该方法有助于基于与应用程序的全部或部分API交互的访问控制,其中进行访问的个人的身份未知或必须确定。

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