Abstract

The resource-constrained camera integrated Visual Sensor Networks (VSN) have conquered numerous visual aided services from visual surveillance to habitat monitoring. VSN is capable of sensing, processing and communicating visual data wirelessly. These networks are built with inexpensive low power sensor motes with a lightweight processor, limited storage, and bandwidth. The huge amount of redundancy present in the images makes the processing and communication consume more energy than expected. The number of bits must be reduced using energy-efficient compression techniques for efficient transmission. Low computational energy and communication energy are always favored for an increased lifetime of the wireless sensor network. The highly sensitive and self-descriptive nature of images makes security in VSN even more critical. In this work, we propose an energy-efficient low bitrate secured image coder for resource-constrained VSN. Light weight design protocols are highly required in secured image transmission over VSN. Through this communication, we also propose a novel chaotic map using Pascal’s triangle. The system follows a unique interleaved fashion of compression and encryption process to consume less computational resources. A series of tests were carried out to validate the secured image coder’s ruggedness and its suitability in VSN. The performance and the strength of the low bitrate secured image coder are tested with compression efficiency and cryptanalysis tests. Simulations were carried out in Atmel’s ATmega128 processor for energy consumption analysis. The energy consumed by the proposed system for compression, encryption and transmission of an image of size 512 $\times512$ is 109.364mJ (milli Joules), which is only 4.57 % of the energy consumed by raw image transmission. In addition, the system is implemented in real time image sensor platform based on Arduino Due board integrated with OV7670 camera module for real time verification and the experimental results validated the suitability of the indicated scheme in real time VSN.

Highlights

  • T HE modern advancements in MEMS, CMOS hardware technologies embraced with communication technologies empowered image communication over low power Wireless Sensor Networks (WSN) and evolved as Visual Sensor Networks (VSN)

  • The joint image compression and encryption systems are classified into three categories, according to the sequential order of processing i.e. (a) Compression before Encryption (CBE), (b) Encryption before Compression (EBC) systems, and (c) Simultaneous Compression Encryption systems (SCE)

  • The entire pixel data of the image are processed by the encryption system, and most of them might be discarded by the compression system

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Summary

INTRODUCTION

T HE modern advancements in MEMS, CMOS hardware technologies embraced with communication technologies empowered image communication over low power Wireless Sensor Networks (WSN) and evolved as Visual Sensor Networks (VSN). G.Suseela et al.: Low Energy Interleaved Chaotic Secure Image Coding Scheme for Visual Sensor Networks lifetime, the number of transmitted bits must be reduced using an energy-efficient image compression algorithm. As VSN are deployed in mission-critical applications, securing the image data is essential Both compression and encryption are essential in image communication. Energy-efficient secured image communication is a focal need in VSN, as it aims to save the network resources and protect the sensitive image data. As energy-efficient integrated compression and encryption schemes are gaining more attention in saving the power consumption and securing image data of the VSN, the proposed lightweight image encryption system is integrated into the author’s recent work on energy-efficient image compression schemes developed for low power resourceconstrained systems [6]. Section-8 concludes the paper with the summary and future work

PRIOR WORKS ON JOINT IMAGE COMPRESSION AND ENCRYPTION SYSTEMS
IMAGE ENCRYPTION IN VSN
CHALLENGES OF CHAOTIC BASED IMAGE ENCRYPTION IN VSN
PASCAL TRIANGLE TRANSFORM
PROPOSED LIGHTWEIGHT IMAGE ENCRYPTION USING PTT
ENCRYPTION PROCEDURE
PROPOSED INTERLEAVED LOW BITRATE SECURE IMAGE CODING SYSTEM
Method
ENERGY CONSUMPTION ANALYSIS
Findings
VIII. CONCLUSION
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