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Hossein Salehghaffari

Publications and source records attributed to Hossein Salehghaffari.

2 recordsLinked to original sources

Speaker Verification using Convolutional Neural Networks

In this paper, a novel Convolutional Neural Network architecture has been developed for speaker verification in order to simultaneously capture and discard speaker and non-speaker information, respectively. In training phase, the network is trained to distinguish between different speaker identities for creating the background model. One of the crucial parts is to create the speaker models. Most of the previous approaches create speaker models based on averaging the speaker representations provided by the background model. We overturn this problem by further fine-tuning the trained model using the Siamese framework for generating a discriminative feature space to distinguish between same and different speakers regardless of their identity. This provides a mechanism which simultaneously captures the speaker-related information and create robustness to within-speaker variations. It is demonstrated that the proposed method outperforms the traditional verification methods which create speaker models directly from the background model.

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Hardware-In-The-Loop Vulnerability Analysis of a Single-Machine Infinite-Bus Power System

The dynamic performance of the generators is a critical factor for the safe operation of the power grid. To this extent, the stability of the frequency of generators is the target of cyber attacks since its instability may lead to sizable cascade failures in the whole network. In this paper, we perform the vulnerability analysis in a developed power grid Hardware-In-The-Loop (HITL) testbed with a Wago 750-881 PLC sending control commands to the generators and a 750 Feeder Management Relay connected to a local load. A process-aware coordinated attack is demonstrated by spoofing control commands sent by the PLC and the relay to the simulated power system which is modeled as a single-machine infinite-bus (SMIB). Based on the reachability analysis, the attacker can find the optimal attack signal to drive the system state out of their safe set of values. Thereafter, it is experimentally demonstrated that the attacker does not need to send attack signal continuously if he implements a carefully designed coordinated attack on the PLC and the relay. The presented assessments provide information about the best time to launch an attack in order to destabilize the power system.

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