970 resultados para IEEE 802.15.4


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Wireless Sensor Networks (WSNs) can be used to monitor hazardous and inaccessible areas. In these situations, the power supply (e.g. battery) of each node cannot be easily replaced. One solution to deal with the limited capacity of current power supplies is to deploy a large number of sensor nodes, since the lifetime and dependability of the network will increase through cooperation among nodes. Applications on WSN may also have other concerns, such as meeting temporal deadlines on message transmissions and maximizing the quality of information. Data fusion is a well-known technique that can be useful for the enhancement of data quality and for the maximization of WSN lifetime. In this paper, we propose an approach that allows the implementation of parallel data fusion techniques in IEEE 802.15.4 networks. One of the main advantages of the proposed approach is that it enables a trade-off between different user-defined metrics through the use of a genetic machine learning algorithm. Simulations and field experiments performed in different communication scenarios highlight significant improvements when compared with, for instance, the Gur Game approach or the implementation of conventional periodic communication techniques over IEEE 802.15.4 networks. © 2013 Elsevier B.V. All rights reserved.

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Nos últimos de 20 anos, economia e tecnologia evoluíram em muitas direções e em novas áreas. Muitas dessas evoluções criaram oportunidades que estão sendo consideradas na concepção de futuras redes de comunicação. Estas novas possibilidades estão relacionadas à, sobretudo, utilização da internet para o acesso à serviços e englobam: mobilidade; tecnologias de baixo custo; crescimento e empregos (pela Internet participa-se de cada processo de negócios e produção); serviços; educação (oportunidade para as pessoas crescerem e se desenvolverem); entretenimento (mundos virtuais para o lazer, compras e jogos); volume de tráfego maior (texto, voz, imagens, vídeo). Como uma consequência, a Internet se tornou, semelhante a eletricidade ou água, um bem público. Com quase 2 bilhões de usuários (aproximadamente 28% da população mundial), a Internet está se tornando, cada vez mais, uma infraestrutura difusivo oferecendo em qualquer lugar, a qualquer momento conectividade e serviços. Este mundo da Internet atual é o resultado de sucessivas alterações que aconteceram desde o seu surgimento e que tornaram a infraestrutura de comunicação de importância crítica. Em termos de tecnologias de comunicação, os sistemas móveis sem fio têm um lugar especial devido a sua difusão excepcional na última década e que, junto com a Internet, tem permitido o aparecimento de dispositivos inteligentes, a introdução de novos serviços inovadores e exigindo, para tanto, um ambiente que suporte a inovação e criatividade. Porém, os vários padrões de redes para suporte, principalmente, ao acesso de última milha são desvantagens na perspectiva do usuário, pois este tem de se habilitar nessas redes (contratar os serviços) e, não raro, ter terminais específicos para o acesso. A idéia de um padrão único para estas redes não obteve resultados satisfatórios e uma solução aponta para a integração dessas redes para prover acesso único e transparente ao usuário. Esse trabalho, portanto, apresenta uma solução embarcada para integrar padrões de comunicações sem fio heterogênea do tipo IEEE 802.15.4 ZigBee, IEEE 802.20 GSM/GPRS e IEEE 802.2 Wi-Fi. Essa heterogeneidade de tecnologias sem fio permite a um usuário em movimento, através de seu terminal local ou remoto, acessar aplicativos e serviços de forma transparente. A avaliação de desempenho da solução foi realizada utilizando-se dois tipos de serviços: domótica e telemedicina. Os resultados indicaram que a solução proposta consegue integrar e prover os serviços com segurança e confiabilidade.

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The Internet of Things is a new paradigm where smart embedded devices and systems are connected to the Internet. In this context, Wireless Sensor Networks (WSN) are becoming an important alternative for sensing and actuating critical applications like industrial automation, remote patient monitoring and domotics. The IEEE 802.15.4 protocol has been adopted as a standard for WSN and the 6LoWPAN protocol has been proposed to overcome the challenges of integrating WSN and Internet protocols. In this paper, the mechanisms of header compression and fragmentation of IPv6 datagrams proposed in the 6LoWPAN standard were evaluated through field experiments using a gateway prototype and IEEE 802.15.4 nodes.

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"I computer del nuovo millennio saranno sempre più invisibili, o meglio embedded, incorporati agli oggetti, ai mobili, anche al nostro corpo. L'intelligenza elettronica sviluppata su silicio diventerà sempre più diffusa e ubiqua. Sarà come un'orchestra di oggetti interattivi, non invasivi e dalla presenza discreta, ovunque". [Mark Weiser, 1991] La visione dell'ubiquitous computing, prevista da Weiser, è ormai molto vicina alla realtà e anticipa una rivoluzione tecnologica nella quale l'elaborazione di dati ha assunto un ruolo sempre più dominante nella nostra vita quotidiana. La rivoluzione porta non solo a vedere l'elaborazione di dati come un'operazione che si può compiere attraverso un computer desktop, legato quindi ad una postazione fissa, ma soprattutto a considerare l'uso della tecnologia come qualcosa di necessario in ogni occasione, in ogni luogo e la diffusione della miniaturizzazione dei dispositivi elettronici e delle tecnologie di comunicazione wireless ha contribuito notevolmente alla realizzazione di questo scenario. La possibilità di avere a disposizione nei luoghi più impensabili sistemi elettronici di piccole dimensioni e autoalimentati ha contribuito allo sviluppo di nuove applicazioni, tra le quali troviamo le WSN (Wireless Sensor Network), ovvero reti formate da dispositivi in grado di monitorare qualsiasi grandezza naturale misurabile e inviare i dati verso sistemi in grado di elaborare e immagazzinare le informazioni raccolte. La novità introdotta dalle reti WSN è rappresentata dalla possibilità di effettuare monitoraggi con continuità delle più diverse grandezze fisiche, il che ha consentito a questa nuova tecnologia l'accesso ad un mercato che prevede una vastità di scenari indefinita. Osservazioni estese sia nello spazio che nel tempo possono essere inoltre utili per poter ricavare informazioni sull'andamento di fenomeni naturali che, se monitorati saltuariamente, non fornirebbero alcuna informazione interessante. Tra i casi d'interesse più rilevanti si possono evidenziare: - segnalazione di emergenze (terremoti, inondazioni) - monitoraggio di parametri difficilmente accessibili all'uomo (frane, ghiacciai) - smart cities (analisi e controllo di illuminazione pubblica, traffico, inquinamento, contatori gas e luce) - monitoraggio di parametri utili al miglioramento di attività produttive (agricoltura intelligente, monitoraggio consumi) - sorveglianza (controllo accessi ad aree riservate, rilevamento della presenza dell'uomo) Il vantaggio rappresentato da un basso consumo energetico, e di conseguenza un tempo di vita della rete elevato, ha come controparte il non elevato range di copertura wireless, valutato nell'ordine delle decine di metri secondo lo standard IEEE 802.15.4. Il monitoraggio di un'area di grandi dimensioni richiede quindi la disposizione di nodi intermedi aventi le funzioni di un router, il cui compito sarà quello di inoltrare i dati ricevuti verso il coordinatore della rete. Il tempo di vita dei nodi intermedi è di notevole importanza perché, in caso di spegnimento, parte delle informazioni raccolte non raggiungerebbero il coordinatore e quindi non verrebbero immagazzinate e analizzate dall'uomo o dai sistemi di controllo. Lo scopo di questa trattazione è la creazione di un protocollo di comunicazione che preveda meccanismi di routing orientati alla ricerca del massimo tempo di vita della rete. Nel capitolo 1 vengono introdotte le WSN descrivendo caratteristiche generali, applicazioni, struttura della rete e architettura hardware richiesta. Nel capitolo 2 viene illustrato l'ambiente di sviluppo del progetto, analizzando le piattaforme hardware, firmware e software sulle quali ci appoggeremo per realizzare il progetto. Verranno descritti anche alcuni strumenti utili per effettuare la programmazione e il debug della rete. Nel capitolo 3 si descrivono i requisiti di progetto e si realizza una mappatura dell'architettura finale. Nel capitolo 4 si sviluppa il protocollo di routing, analizzando i consumi e motivando le scelte progettuali. Nel capitolo 5 vengono presentate le interfacce grafiche utilizzate utili per l'analisi dei dati. Nel capitolo 6 vengono esposti i risultati sperimentali dell'implementazione fissando come obiettivo il massimo lifetime della rete.

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Wireless Sensor Networks (WSNs) are getting wide-spread attention since they became easily accessible with their low costs. One of the key elements of WSNs is distributed sensing. When the precise location of a signal of interest is unknown across the monitored region, distributing many sensors randomly/uniformly may yield with a better representation of the monitored random process than a traditional sensor deployment. In a typical WSN application the data sensed by nodes is usually sent to one (or more) central device, denoted as sink, which collects the information and can either act as a gateway towards other networks (e.g. Internet), where data can be stored, or be processed in order to command the actuators to perform special tasks. In such a scenario, a dense sensor deployment may create bottlenecks when many nodes competing to access the channel. Even though there are mitigation methods on the channel access, concurrent (parallel) transmissions may occur. In this study, always on the scope of monitoring applications, the involved development progress of two industrial projects with dense sensor deployments (eDIANA Project funded by European Commission and Centrale Adritica Project funded by Coop Italy) and the measurement results coming from several different test-beds evoked the necessity of a mathematical analysis on concurrent transmissions. To the best of our knowledge, in the literature there is no mathematical analysis of concurrent transmission in 2.4 GHz PHY of IEEE 802.15.4. In the thesis, experience stories of eDIANA and Centrale Adriatica Projects and a mathematical analysis of concurrent transmissions starting from O-QPSK chip demodulation to the packet reception rate with several different types of theoretical demodulators, are presented. There is a very good agreement between the measurements so far in the literature and the mathematical analysis.

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Wireless sensor networks (WSNs) consist of a large number of sensor nodes, characterized by low power constraint, limited transmission range and limited computational capabilities [1][2].The cost of these devices is constantly decreasing, making it possible to use a large number of sensor devices in a wide array of commercial, environmental, military, and healthcare fields. Some of these applications involve placing the sensors evenly spaced on a straight line for example in roads, bridges, tunnels, water catchments and water pipelines, city drainages, oil and gas pipelines etc., making a special class of these networks which we define as a Linear Wireless Network (LWN). In LWNs, data transmission happens hop by hop from the source to the destination, through a route composed of multiple relays. The peculiarity of the topology of LWNs, motivates the design of specialized protocols, taking advantage of the linearity of such networks, in order to increase reliability, communication efficiency, energy savings, network lifetime and to minimize the end-to-end delay [3]. In this thesis a novel contention based Medium Access Control (MAC) protocol called L-CSMA, specifically devised for LWNs is presented. The basic idea of L-CSMA is to assign different priorities to nodes based on their position along the line. The priority is assigned in terms of sensing duration, whereby nodes closer to the destination are assigned shorter sensing time compared to the rest of the nodes and hence higher priority. This mechanism speeds up the transmission of packets which are already in the path, making transmission flow more efficient. Using NS-3 simulator, the performance of L-CSMA in terms of packets success rate, that is, the percentage of packets that reach destination, and throughput are compared with that of IEEE 802.15.4 MAC protocol, de-facto standard for wireless sensor networks. In general, L-CSMA outperforms the IEEE 802.15.4 MAC protocol.

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To interconnect a wireless sensor network (WSN) to the Internet, we propose to use TCP/IP as the standard protocol for all network entities. We present a cross layer designed communication architecture, which contains a MAC protocol, IP, a new protocol called Hop-to-Hop Reliability (H2HR) protocol, and the TCP Support for Sensor Nodes (TSS) protocol. The MAC protocol implements the MAC layer of beacon-less personal area networks (PANs) as defined in IEEE 802.15.4. H2HR implements hop-to-hop reliability mechanisms. Two acknowledgment mechanisms, explicit and implicit ACK are supported. TSS optimizes using TCP in WSNs by implementing local retransmission of TCP data packets, local TCP ACK regeneration, aggressive TCP ACK recovery, congestion and flow control algorithms. We show that H2HR increases the performance of UDP, TCP, and RMST in WSNs significantly. The throughput is increased and the packet loss ratio is decreased. As a result, WSNs can be operated and managed using TCP/IP.

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Time-based indoor localization has been investigated for several years but the accuracy of existing solutions is limited by several factors, e.g., imperfect synchronization, signal bandwidth and indoor environment. In this paper, we compare two time-based localization algorithms for narrow-band signals, i.e., multilateration and fingerprinting. First, we develop a new Linear Least Square (LLS) algorithm for Differential Time Difference Of Arrival (DTDOA). Second, fingerprinting is among the most successful approaches used for indoor localization and typically relies on the collection of measurements on signal strength over the area of interest. We propose an alternative by constructing fingerprints of fine-grained time information of the radio signal. We offer comprehensive analytical discussions on the feasibility of the approaches, which are backed up by evaluations in a software defined radio based IEEE 802.15.4 testbed. Our work contributes to research on localization with narrow-band signals. The results show that our proposed DTDOA-based LLS algorithm obviously improves the localization accuracy compared to traditional TDOA-based LLS algorithm but the accuracy is still limited because of the complex indoor environment. Furthermore, we show that time-based fingerprinting is a promising alternative to power-based fingerprinting.

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Attractive business cases in various application fields contribute to the sustained long-term interest in indoor localization and tracking by the research community. Location tracking is generally treated as a dynamic state estimation problem, consisting of two steps: (i) location estimation through measurement, and (ii) location prediction. For the estimation step, one of the most efficient and low-cost solutions is Received Signal Strength (RSS)-based ranging. However, various challenges - unrealistic propagation model, non-line of sight (NLOS), and multipath propagation - are yet to be addressed. Particle filters are a popular choice for dealing with the inherent non-linearities in both location measurements and motion dynamics. While such filters have been successfully applied to accurate, time-based ranging measurements, dealing with the more error-prone RSS based ranging is still challenging. In this work, we address the above issues with a novel, weighted likelihood, bootstrap particle filter for tracking via RSS-based ranging. Our filter weights the individual likelihoods from different anchor nodes exponentially, according to the ranging estimation. We also employ an improved propagation model for more accurate RSS-based ranging, which we suggested in recent work. We implemented and tested our algorithm in a passive localization system with IEEE 802.15.4 signals, showing that our proposed solution largely outperforms a traditional bootstrap particle filter.

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Este proyecto consiste en el diseño e implementación un sistema domótico que puede ser instalado en una vivienda para controlar distintas variables ambientales y conseguir así la máxima comodidad de los habitantes de manera automática o manual según los gustos y necesidades de los usuarios. La característica principal de este sistema, es que cuenta con un funcionamiento distribuido donde entran en juego un servidor, encargado de tomar las decisiones generales para el comportamiento de la casa, y una serie de controladores esclavo cuya función es mantener constantes las variables ambientales con los valores fijados por el servidor. Así se consigue mantener la vivienda en una situación de bienestar constante para cualquier persona que se encuentre dentro. El sistema ha sido pensado de manera que se intenta reducir al máximo el cableado para facilitar su instalación por lo que la comunicación entre los distintos dispositivos se hace de manera inalámbrica por medio de un protocolo descrito en la norma IEEE 802.15.4 llamado ZigBee. Para ello se ha utilizado un módulo de comunicación wireless llamado Xbee, el cual permite la comunicación entre dos dispositivos. Para el control de dicho sistema distribuido se cuenta con una aplicación web, que mediante una interfaz gráfica permite al usuario controlar los distintos dispositivos dentro de la vivienda consiguiendo así controlar las variables ambientales a gusto del usuario. Dicha interfaz gráfica no depende de un software específico, sino que sólo es necesario un cliente http como podría ser Internet Explorer, Mozilla Firefox, Google Chrome, etc. Para integrar dicho sistema se ha usado un mini ordenador de bajo coste llamado RaspBerryPi, en el que se encuentra alojado un servidor Apache con el fin de gestionar y automatizar las variables ambientales. El control de los dipositivos encargados de modificar y estabilizar las variables ambientales se realiza mediante unos controladores genéricos implementados mediante mcontroladores 80C51F410, pertenecientes a la familia 80C51, y una serie de componentes y circuitería que permiten el correcto funcionamiento de éstos. Existen dos tipos de controladores distintos, los cuales son: Controlador Sensor: Encargados de las tomas de valores ambientales como puede ser la luz y la temperatura. Controladores Actuadores: Encargados de actuar sobre los dispositivos que modifican y estabilizan las variables ambientales como pueden ser la calefacción, tiras de leds de iluminación, persianas, alarmas, etc. El conjunto de la RaspBerryPi y los diferentes controladores forman el prototipo diseñado para este proyecto fin de carrera, el cual puede ser ampliado sencillamente para abarcar una amplia gama de posibilidades y funcionalidades dentro de la comodidad de una vivienda. ABSTRACT. The project described in this report consisted designing and implementing a home automation system that could be installed in a house in order to control environmental variables and thus get the maximum comfort of the inhabitant automatically or manually according to their tastes and needs. The main feature of this system consists in a distributed system, formed by a server which is responsible for making the main decisions of the actions performed inside the house. In addition, there are a series of slave controlers whose function consists in keeping the environmental variables within the values established by the server. Thus gets to keep the home in a situation of constant wellbeing to anyone who is inside. The system has been designed in order to reduce the amount of wire needed for the inter-connection of the devices, by means of wireless communication. The devices chosen for the solution are Xbee modules, which use the Zigbee protocol in order to comunicate one between each other. The Zigbee protocol is fully described in the IEEE 802.15.4 standard. A web application has been used to control the distributed system. This application allows users to control various devices inside the house and subsequently the different environmental variables. This implementation allows obtaining the maximum comfort by means of a very simple graphical interface. In addition, the Graphical User Interface (GUI) does not depend on any specific software. This means that it would only be necessary a http client (such as Internet Explorer, Mozilla Firefox, Google Chrome, etc.) for handling the application. The system has been integrated using a low-cost mini computer called RaspBerryPi.This computer has an Apache server allocated which allows to manage and to automatize the different environmental variables. Furthermore, for changing and stabilizing those variables, some generic controllers have been developed, based on mcontrollers 80C51F410. There have been developed mainly two different types of controllers: Sensor Controllers, responsible for measuring the different environmental values, such as light and temperature; and Actuator Controllers, which purpose is to modify and stabilize those environmental variables by actuating on the heating, the led lamps, the blinders, the alarm, etc. The combination of the RaspBerryPi and the different controllers conform the prototype designed during this project. Additionally, this solution could be easily expanded in order to intake further functionalities adapted to new needs that could arise in the future.

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Una red de sensores inalámbrica es un conjunto de dispositivos electrónicos que se comunican entre sí sin la necesidad de una infraestructura, recogiendo información del entorno en el que han sido desplegados, procesándola y transmitiéndola hasta una estación base mediante saltos sucesivos entre los nodos de la red (multi-salto). Durante las dos últimas décadas, este campo ha sido muy desarrollado en la comunidad científica, debido a las ventajas que ofrece el despliegue de una red inalámbrica en un entorno con el fin de estudiarlo y/o controlarlo. La ausencia de una infraestructura, junto con el reducido tamaño de los nodos, permite este estudio sin que dicho entorno se vea significativamente afectado por factores externos como pueda ser la presencia humana, permitiendo además aumentar el número de nodos que componen la red o cambiar la posición de algunos de ellos sin que sea necesario reconfigurarla manualmente. El principal reto que presentan las redes de sensores inalámbricas es su autonomía. En general, se requiere que un nodo tenga la capacidad de funcionar durante largos períodos de tiempo (varios meses o incluso un año) antes de que su batería se agote. Esto hace de la gestión del consumo energético un aspecto crítico en el diseño de la red y sus nodos. En el presente trabajo se busca optimizar este consumo mediante la gestión del proceso de comunicación y enrutamiento de la red. Con este fin, se implementa el protocolo CTP (Collection Tree Protocol) en la plataforma Cookies desarrollada en el Centro de Electrónica Industrial (CEI) de la UPM. CTP es un protocolo de rutado centrado en los datos, que utiliza una topología en árbol, con el nodo coordinador o estación base como raíz del mismo, para la transmisión de la información desde los sensores hasta la estación base. Además, no utiliza direcciones predeterminadas, dotando a la red de la flexibilidad requerida para hacer frente a inconsistencias y/o variaciones en la densidad y tamaño de la red. La ruta escogida se basa en un gradiente de rutado decreciente, ETX (Expected Transmission Count), que representa la calidad de la conexión entre un nodo y su nodo padre. Este gradiente de enrutamiento se obtiene mediante una conversión directa a partir del LQI (Link Quality Indication) definido por el estándar IEEE 802.15.4. Esta conversión directa supone una aproximación utilizando valores umbral del LQI. Un nodo escogerá el siguiente salto que realizará el paquete a enviar seleccionando de entre sus vecinos a aquél que tenga el menor ETX, evitando de esta forma la aparición de bucles. Otro de los aspectos que supone un gran consumo es el proceso de mantenimiento de la estructura de la red, pues requiere el envío periódico de señales de control o beacons a lo largo de toda la red. El protocolo CTP aprovecha el algoritmo de goteo (Trickle Algorithm), para gestionar el mantenimiento: durante la formación de la red y cuando se detecte alguna inconsistencia, se incrementa la frecuencia de emisión de los beacons, permitiendo así una rápida propagación de las señales de control para crear o reparar las conexiones entre los nodos. En cambio, cuando la topología de la red es estable, esta frecuencia de emisión se reduce significativamente, limitándose a asegurar que la topología se mantiene estable y favoreciendo así el ahorro de energía.

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This work aims at modeling power consumption at the nodes of a Wireless Sensor Network (WSN). For doing so, a finite state machine was implemented by means of SystemC-AMS and Stateflow modeling and simulation tools. In order to achieve this goal, communication data in a WSN were collected. Based on the collected data, a simulation environment for power consumption characterization, which aimed at describing the network operation, was developed. Other than performing power consumption simulation, this environment also takes into account a discharging model as to analyze the battery charge level at any given moment. Such analysis result in a graph illustrating the battery voltage variations as well as its state of charge (SOC). Finally, a case study of the WSN power consumption aims to analyze the acquisition mode and network data communication. With this analysis, it is possible make adjustments in node-sensors to reduce the total power consumption of the network.

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A Wireless Sensor Network (WSN) consists of distributed devices in an area in order to monitor physical variables such as temperature, pressure, vibration, motion and environmental conditions in places where wired networks would be difficult or impractical to implement, for example, industrial applications of difficult access, monitoring and control of oil wells on-shore or off-shore, monitoring of large areas of agricultural and animal farming, among others. To be viable, a WSN should have important requirements such as low cost, low latency, and especially low power consumption. However, to ensure these requirements, these networks suffer from limited resources, and eventually being used in hostile environments, leading to high failure rates, such as segmented routing, mes sage loss, reducing efficiency, and compromising the entire network, inclusive. This work aims to present the FTE-LEACH, a fault tolerant and energy efficient routing protocol that maintains efficiency in communication and dissemination of data.This protocol was developed based on the IEEE 802.15.4 standard and suitable for industrial networks with limited energy resources

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Cryptography is the main form to obtain security in any network. Even in networks with great energy consumption restrictions, processing and memory limitations, as the Wireless Sensors Networks (WSN), this is no different. Aiming to improve the cryptography performance, security and the lifetime of these networks, we propose a new cryptographic algorithm developed through the Genetic Programming (GP) techniques. For the development of the cryptographic algorithm’s fitness criteria, established by the genetic GP, nine new cryptographic algorithms were tested: AES, Blowfish, DES, RC6, Skipjack, Twofish, T-DES, XTEA and XXTEA. Starting from these tests, fitness functions was build taking into account the execution time, occupied memory space, maximum deviation, irregular deviation and correlation coefficient. After obtaining the genetic GP, the CRYSEED and CRYSEED2 was created, algorithms for the 8-bits devices, optimized for WSNs, i.e., with low complexity, few memory consumption and good security for sensing and instrumentation applications.

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Cryptography is the main form to obtain security in any network. Even in networks with great energy consumption restrictions, processing and memory limitations, as the Wireless Sensors Networks (WSN), this is no different. Aiming to improve the cryptography performance, security and the lifetime of these networks, we propose a new cryptographic algorithm developed through the Genetic Programming (GP) techniques. For the development of the cryptographic algorithm’s fitness criteria, established by the genetic GP, nine new cryptographic algorithms were tested: AES, Blowfish, DES, RC6, Skipjack, Twofish, T-DES, XTEA and XXTEA. Starting from these tests, fitness functions was build taking into account the execution time, occupied memory space, maximum deviation, irregular deviation and correlation coefficient. After obtaining the genetic GP, the CRYSEED and CRYSEED2 was created, algorithms for the 8-bits devices, optimized for WSNs, i.e., with low complexity, few memory consumption and good security for sensing and instrumentation applications.