2 resultados para TEMPORAL CORRELATION

em Universidad Politécnica de Madrid


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Este Proyecto Fin de Grado se centra en la definición de unos interfaces y el desarrollo de unos módulos que los ofrezcan y que permitan desarrollar un sistema para Smartphone mediante el que se puedan obtener medidas tanto de dispositivos biométricos como de una red inalámbrica de sensores (WSN – Wireless Sensor Network). Estos dos tipos de medidas deben poder ser mostradas de manera que se observe gráficamente su correlación espacio-temporal. Por tanto, estos interfaces ofrecen, principalmente, la posibilidad de gestionar un número indeterminado de dispositivos biométricos y tomar medidas de ellos, además de mecanismos de almacenamiento para dichas medidas. También existe la posibilidad de crear una representación gráfica de dichas medidas. Por último, se desarrolla un interfaz para obtener información proveniente de una red de sensores inalámbricos instalada en un determinado entorno en el cual el usuario estará realizando sus propias medidas. Además, se lleva a cabo la creación de la aplicación comentada, que hace uso de las interfaces especificadas, para realizar la correlación de las medidas. La aplicación permite al usuario mantener una lista de dispositivos, pudiendo consultar los parámetros de configuración de los mismos y tomar las medidas de aquellos que desee. Podrá visualizar en todo momento las medidas que se van realizando, y, por último, podrá representarlas gráficamente en pantalla. Los interfaces están creados de forma que sean flexibles de modo que puedan añadirse nuevas funciones en un futuro y permitan ser utilizados para diferentes aplicaciones. Los módulos que ofrecen estos interfaces están desarrollados para cumplir todas las funcionalidades que esperamos llevar a cabo en la aplicación creada. ABSTRACT. This Final Degree Project is focused on the definition of a set of interfaces, together with the implementation of the modules that comply with them, with the aim of creating a smartphone-based system to obtain measurements from both biometric devices and a wireless sensor network (WSN). These two types of measurements have to be graphically shown in order to observe their spatial and temporal correlation. Thus, the main purpose of the aforementioned interfaces is to manage an indeterminate number of biometric devices in order to obtain and store the measurements provided by them. There is also the possibility of creating a graphical representation of the data. In addition to all this, an interface has been developed for obtaining the information coming from a wireless sensor network deployed in the area where the user is taking his/her measurements. Also as part of the work performed, the smartphone application that utilizes the specified interfaces has been implemented, in order to actually perform the measurements correlation. This application allows the user to maintain the biometric devices list and control their configuration, including the activation of the measurements taking process. These data can be visualized anytime and, moreover, they can be represented graphically in the smartphone screen. The design of the interfaces is flexible in the sense that new functionality may be easily added to them in the future and new applications with different purposes may make use of them. The modules implemented as part of this Final Degree Project have been developed in order to comply with all the requirements of the smartphone system described above.

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Current fusion devices consist of multiple diagnostics and hundreds or even thousands of signals. This situation forces on multiple occasions to use distributed data acquisition systems as the best approach. In this type of distributed systems, one of the most important issues is the synchronization between signals, so that it is possible to have a temporal correlation as accurate as possible between the acquired samples of all channels. In last decades, many fusion devices use different types of video cameras to provide inside views of the vessel during operations and to monitor plasma behavior. The synchronization between each video frame and the rest of the different signals acquired from any other diagnostics is essential in order to know correctly the plasma evolution, since it is possible to analyze jointly all the information having accurate knowledge of their temporal correlation. The developed system described in this paper allows timestamping image frames in a real-time acquisition and processing system using 1588 clock distribution. The system has been implemented using FPGA based devices together with a 1588 synchronized timing card (see Fig.1). The solution is based on a previous system [1] that allows image acquisition and real-time image processing based on PXIe technology. This architecture is fully compatible with the ITER Fast Controllers [2] and offers integration with EPICS to control and monitor the entire system. However, this set-up is not able to timestamp the frames acquired since the frame grabber module does not present any type of timing input (IRIG-B, GPS, PTP). To solve this lack, an IEEE1588 PXI timing device its used to provide an accurate way to synchronize distributed data acquisition systems using the Precision Time Protocol (PTP) IEEE 1588 2008 standard. This local timing device can be connected to a master clock device for global synchronization. The timing device has a buffer timestamp for each PXI trigger line and requires tha- a software application assigns each frame the corresponding timestamp. The previous action is critical and cannot be achieved if the frame rate is high. To solve this problem, it has been designed a solution that distributes the clock from the IEEE 1588 timing card to all FlexRIO devices [3]. This solution uses two PXI trigger lines that provide the capacity to assign timestamps to every frame acquired and register events by hardware in a deterministic way. The system provides a solution for timestamping frames to synchronize them with the rest of the different signals.