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Enhancing Security of Cloud Data through Encryption with AES and Fernet Algorithm through Convolutional-Neural-Networks (CNN)


Affiliations
1 Department of Computer Science and Engineering, Faculty of Engineering and Technology, Manav Rachna International Institute of Research & Studies, Faridabad, Haryana, India
 

Cloud as a storage in the recent technological development had been focused by researchers, since it offers more insight towards meta-data based security and safety along with techniques in encryption and decryption of messages. “Data” being a crucial and complicated means-of-information in current technological era, it has been majorly accessed and utilized for varied purposes (example: image storage/access) by people globally through ‘cloud computing’ via social platforms, personal data-storage, professional data-accumulation, research based studies, etc. Thus to protect data in cloud, especially the images, the current study developed the algorithm by combining ‘AES’ and ‘Fernet’ where double-level encryption with CNN Auto-Encoders. Thus by developing the model, the study aims to provide more secured cloud computing model than existing models. The original images as input are processed, encrypted/decrypted, converted into bitmap images as outputs that are decrypted by users with ‘key’ when needed. The study was a success and found to be effective in image encryption field with high RMSE (0.040206), less MSE-Loss (0.001616) and MAE (0.0266323) scores than estimated scores.

Keywords

Cloud Computing, Face Images, AES Algorithm, Fernet Algorithm, Data Security, Data Safety, Data storage.
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  • Enhancing Security of Cloud Data through Encryption with AES and Fernet Algorithm through Convolutional-Neural-Networks (CNN)

Abstract Views: 379  |  PDF Views: 2

Authors

Pronika
Department of Computer Science and Engineering, Faculty of Engineering and Technology, Manav Rachna International Institute of Research & Studies, Faridabad, Haryana, India
S. S. Tyagi
Department of Computer Science and Engineering, Faculty of Engineering and Technology, Manav Rachna International Institute of Research & Studies, Faridabad, Haryana, India

Abstract


Cloud as a storage in the recent technological development had been focused by researchers, since it offers more insight towards meta-data based security and safety along with techniques in encryption and decryption of messages. “Data” being a crucial and complicated means-of-information in current technological era, it has been majorly accessed and utilized for varied purposes (example: image storage/access) by people globally through ‘cloud computing’ via social platforms, personal data-storage, professional data-accumulation, research based studies, etc. Thus to protect data in cloud, especially the images, the current study developed the algorithm by combining ‘AES’ and ‘Fernet’ where double-level encryption with CNN Auto-Encoders. Thus by developing the model, the study aims to provide more secured cloud computing model than existing models. The original images as input are processed, encrypted/decrypted, converted into bitmap images as outputs that are decrypted by users with ‘key’ when needed. The study was a success and found to be effective in image encryption field with high RMSE (0.040206), less MSE-Loss (0.001616) and MAE (0.0266323) scores than estimated scores.

Keywords


Cloud Computing, Face Images, AES Algorithm, Fernet Algorithm, Data Security, Data Safety, Data storage.

References





DOI: https://doi.org/10.22247/ijcna%2F2021%2F209697