144 resultados para USB


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The industry of sugar cane has become an important contributor to the generation of electricity in Brazil. Currently there are 434 sugar and ethanol plants operating in the country, 23% of the total export electricity to the National Integrated System (SIN), the state of São Paulo has 182 plants and 30% of them export energy to the SIN. The objective of this study is to compare parameters of electrical efficiency in the sugar and alcohol industry. For the study, three plants localized in the midwest region of Sao Paulo state with great potential for production and exporting bioenergy were chosen. Five energy analyzers LANDYS + GYR SAGA were used for measure the electrical parameters. The variables studied were energy consumption (C) and power factor (PF). For the statistical analysis it was adopteda randomized block design in a factorial 3 5composed of three companies and five sectors of energy consumption,in which: reception(1), milling (2), boiler (3), supporting activities / juice treatment (4), and distillation (5), totaling 15 treatments. Each group comprised 192 repetitions (48 hours 4 measurements per hour). It was concluded that there is no interest for the plans to fix the FP and reach a value 0.92, which is considered the ideal power factor.This,because the plants generate their own energy and are not penalized. Regarding the energy consumed, all sectors had significant differences. When comparingsector to sector, the plant called USB showed no significant differences in sectors 1 and 3, and the plant USC, in sectors 1 and 4. Considering the production units of this sector and selling power this type of evaluation is essential to perform this analysis, since the analyzed sectors are most important in the production of sugar and ethanol, and analyze and monitor these parameters, use and consumption energy can provide a greater supply of energy to be commercialized.

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Objective: To characterize the PI component of long latency auditory evoked potentials (LLAEPs) in cochlear implant users with auditory neuropathy spectrum disorder (ANSD) and determine firstly whether they correlate with speech perception performance and secondly whether they correlate with other variables related to cochlear implant use. Methods: This study was conducted at the Center for Audiological Research at the University of Sao Paulo. The sample included 14 pediatric (4-11 years of age) cochlear implant users with ANSD, of both sexes, with profound prelingual hearing loss. Patients with hypoplasia or agenesis of the auditory nerve were excluded from the study. LLAEPs produced in response to speech stimuli were recorded using a Smart EP USB Jr. system. The subjects' speech perception was evaluated using tests 5 and 6 of the Glendonald Auditory Screening Procedure (GASP). Results: The P-1 component was detected in 12/14 (85.7%) children with ANSD. Latency of the P-1 component correlated with duration of sensorial hearing deprivation (*p = 0.007, r = 0.7278), but not with duration of cochlear implant use. An analysis of groups assigned according to GASP performance (k-means clustering) revealed that aspects of prior central auditory system development reflected in the P-1 component are related to behavioral auditory skills. Conclusions: In children with ANSD using cochlear implants, the P-1 component can serve as a marker of central auditory cortical development and a predictor of the implanted child's speech perception performance. (c) 2012 Elsevier Ireland Ltd. All rights reserved.

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Studio di fattibilità sull'utilizzo della tecnologia radar Ultra Wideband per il controllo non distruttivo di manufatti in materiale composito in fibra di carbonio. La tecnologia radar UWB permette, a differenza dei radar convenzionali, una maggiore risoluzione e un maggior quantitativo di informazioni estraibili dal segnale ricevuto come eco. Nella prima parte del lavoro ci si è concentrati sulla individuazione dell'eventuale presenza del difetto in lastre di materiale composito di differenti dimensioni. Le lastre vengono "illuminate" da un fascio di onde radar UWB dal cui eco si estraggono le informazioni necessarie per determinare la presenza o meno del difetto. Lo scopo è progettare le basi di un algoritmo che, qualora la lastra in esame presenti una certa difettologia, informi l'utente della presenza dell'anomalia. Nella seconda parte si è passati a scansionare la lastra con un radar UWB in modo tale da costruire un'immagine della stessa grazie alle informazioni ricevute dai segnali eco. Per fare questo è stata necessaria dapprima la costruzione di un movimentatore ad hoc in grado di muovere il radar lungo due dimensioni (per permetterne la scansione del piano della lastra). Il movimentatore, autocostruito, è gestibile da Matlab attraverso cavo USB. L'algoritmo di controllo gestisce sia la movimentazione che l'acquisizione dei segnali ricevuti e quindi la creazione del database, punto di partenza per la creazione dell'immagine della lastra. Rispetto alla prima fase del lavoro dove si cercava di sapere se ci fosse o meno il difetto, ora, si è in grado di determinare dimensione e posizione dello stesso.

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We have realized a Data Acquisition chain for the use and characterization of APSEL4D, a 32 x 128 Monolithic Active Pixel Sensor, developed as a prototype for frontier experiments in high energy particle physics. In particular a transition board was realized for the conversion between the chip and the FPGA voltage levels and for the signal quality enhancing. A Xilinx Spartan-3 FPGA was used for real time data processing, for the chip control and the communication with a Personal Computer through a 2.0 USB port. For this purpose a firmware code, developed in VHDL language, was written. Finally a Graphical User Interface for the online system monitoring, hit display and chip control, based on windows and widgets, was realized developing a C++ code and using Qt and Qwt dedicated libraries. APSEL4D and the full acquisition chain were characterized for the first time with the electron beam of the transmission electron microscope and with 55Fe and 90Sr radioactive sources. In addition, a beam test was performed at the T9 station of the CERN PS, where hadrons of momentum of 12 GeV/c are available. The very high time resolution of APSEL4D (up to 2.5 Mfps, but used at 6 kfps) was fundamental in realizing a single electron Young experiment using nanometric double slits obtained by a FIB technique. On high statistical samples, it was possible to observe the interference and diffractions of single isolated electrons traveling inside a transmission electron microscope. For the first time, the information on the distribution of the arrival time of the single electrons has been extracted.

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La tesi tratta il progetto di una piattaforma di simulazione per modulazioni back-scatter UWB su un sistema a microcontrollore PIC. Il sistema utilizza uno switch a UWB per eseguire la modulazione, modificando le condizioni di carico d'antenna; il software implementa la modulazione attraverso la variazione del segnale di controllo dello switch e si interfaccia con l'utente attraverso l'uso di una periferica USB, permettendo la modifica runtime della configurazione. Si interfaccia inoltre con strumenti esterni attraverso segnali di sincronizzazione.

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Lo scopo dell'elaborato di tesi è la progettazione e lo sviluppo di alcuni moduli di un software per la lettura ad elevato throughput di dati da particolari dispositivi per elettrofisiologia sviluppati dall'azienda Elements s.r.l. Elements produce amplificatori ad alta precisione per elettrofisiologia, in grado di misurare correnti a bassa intensità prodotte dai canali ionici. Dato il grande sviluppo che l'azienda sta avendo, e vista la previsione di introdurre sul mercato nuovi dispositivi con precisione e funzionalità sempre migliori, Elements ha espresso l'esigenza di un sistema software che fosse in grado di supportare al meglio i dispositivi già prodotti, e, soprattutto, prevedere il supporto dei nuovi, con prestazioni molto migliori del software già sviluppato da loro per la lettura dei dati. Il software richiesto deve fornire una interfaccia grafica che, comunicando con il dispositivo tramite USB per leggere dati da questo, provvede a mostrarli a schermo e permette di registrarli ed effettuare basilari operazioni di analisi. In questa tesi verranno esposte analisi, progettazione e sviluppo dei moduli di software che si interfacciano direttamente con il dispositivo, quindi dei moduli di rilevamento, connessione, acquisizione ed elaborazione dati.

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Il progetto è il proseguimento di una tesi di laurea1 in cui si è studiato un metodo di analisi della salute della pelle non invasivo. A tale scopo si è approfondito il tema della spettroscopia d'impedenza ed è stato realizzato un sistema per la loro misura. Questo sistema prevede l'utilizzo di una parte analogica formata da un generatore di segnale sinusoidale a frequenza variabile e la circuiteria per estrarre i valori efficaci di tensione e corrente e il valore di fase. La parte digitale, invece, condiziona il segnale del blocco analogico agendo su trimmer digitali, acquisisce i dati e li trasmette tramite la UART. Lo strumento effettuava le misurazioni ed inviava continuamente i dati grezzi al computer, tramite un convertitore UART/USB, risultando poco versatile. L'obiettivo del progetto è realizzare una piattaforma software che comunichi con l'hardware, permettendo la configurazione dello strumento e la manipolazione dei dati grezzi ricevuti, svincolando quindi l'utente dai problemi di basso livello. Si è studiato un protocollo di comunicazione che permette la trasmissione di maggiore informazione e sono stati scelti dei comandi mnemonici che lo strumento possa facilmente interpretare. Il progetto prevede quindi una prima fase di modifica del vecchio firmware, in modo che il microcontrollore possa leggere e comprendere i dati ricevuti tramite la UART. Nella seconda fase si è sviluppato il software utilizzando il linguaggio di programmazione Java. Lo sviluppo comprende lo studio delle librerie grafiche offerte da JavaFX (soprattutto per la rappresentazione dei dati grezzi in grafici a due assi), di un metodo di gestione e salvataggio su disco delle impostazioni del sistema, della comunicazione seriale e infine del sistema software nella sua completezza. Alcune prove sperimentali sono infine state svolte per verificare la funzionalità dei due sistemi, firmware e software.

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L'elaborato riguarda il progetto di un circuito di condizionamento del segnale per sistemi di misura reologica. Il circuito è stato studiato per essere interfacciato con un sistema di misura in fase di studio all'Università di Bologna, sebbene il suo utilizzo nei sistemi di analisi nel dominio delle frequenze sia del tutto generale. Il sistema di misura esistente compie un'analisi chimico-fisica di alimenti, generalmente liquidi, in modo da caratterizzare nel dominio delle frequenze la risposta elettrica ad uno stimolo sinusoidale a frequenza variabile. In particolare, il sistema genera due segnali X(f) ed Y(f). Tuttavia, in molti casi di interesse la dinamica del segnale risulta molto piccola rispetto al range massimo del segnale. Lo scopo del circuito di condizionamento è quello di aumentare la dinamica dei segnali X(f) ed Y(f) in modo da rendere i grafici più leggibili. Tale obiettivo è stato ottenuto mediante la progettazione di un opportuno stadio di amplificazione a guadagno programmabile. Il sistema è controllato da un microcontrollore dotato di interfaccia USB con cui comunica con un PC. Le misure effettuate mostrano che il circuito progettato è in grado di amplificare correttamente la dinamica dei segnali acquisiti nel range 0-VDD.

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In 2011 the GSB/USB caving group of Bologna has discovered, in the southern fossil branches of Govjestica cave (Valle di Praça, Bosnia) a fossil deposit of vertebrates containing bones of Ursus spelaeus, Capra ibex, Cricetulus migratorius and Microtus. On the basis of the U/Th ages of the bones, teeth and carbonate flowstone covering the fossils (60 ka), datings carried out in the laboratories of U-Series at Bologna, and on the disposition of the bones, a past connection between Govjestica and the nearby Banja Stjena cave is hypothesised. The closure of this passage has occurred suddenly through a collapse that has forced the last cave bears awakened from their winter sleep to stay blocked in Govjestica, and die. The connecting passage has later been covered with calcite flowstones and is no longer visible. This hypothesis is sustained by the rather scarce number of skeletons of cave bears found in Govjestica (a dozen of skulls against the often large amounts of cave bears found in similar caves): Govjestica cave, and especially the Room of the Bones in its southern part, has been used by cave bears only for a couple of centuries before these parts became inaccessible. Furthermore, the entrance of Banja Stjena cave was probably located close to or at the level of the Praça river, that has excavated its thalweg for around 20 metres in the last 60 ka.

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Though 3D computer graphics has seen tremendous advancement in the past two decades, most available mechanisms for computer interaction in 3D are high cost and targeted for industry and virtual reality applications. Recent advances in Micro-Electro-Mechanical-System (MEMS) devices have brought forth a variety of new low-cost, low-power, miniature sensors with high accuracy, which are well suited for hand-held devices. In this work a novel design for a 3D computer game controller using inertial sensors is proposed, and a prototype device based on this design is implemented. The design incorporates MEMS accelerometers and gyroscopes from Analog Devices to measure the three components of the acceleration and angular velocity. From these sensor readings, the position and orientation of the hand-held compartment can be calculated using numerical methods. The implemented prototype is utilizes a USB 2.0 compliant interface for power and communication with the host system. A Microchip dsPIC microcontroller is used in the design. This microcontroller integrates the analog to digital converters, the program memory flash, as well as the core processor, on a single integrated circuit. A PC running Microsoft Windows operating system is used as the host machine. Prototype firmware for the microcontroller is developed and tested to establish the communication between the design and the host, and perform the data acquisition and initial filtering of the sensor data. A PC front-end application with a graphical interface is developed to communicate with the device, and allow real-time visualization of the acquired data.

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The widespread of low cost embedded electronics makes it easier to implement the smart devices that can understand either the environment or the user behaviors. The main object of this project is to design and implement home use portable smart electronics, including the portable monitoring device for home and office security and the portable 3D mouse for convenient use. Both devices in this project use the MPU6050 which contains a 3 axis accelerometer and a 3 axis gyroscope to sense the inertial motion of the door or the human hands movement. For the portable monitoring device for home and office security, MPU6050 is used to sense the door (either home front door or cabinet door) movement through the gyroscope, and Raspberry Pi is then used to process the data it receives from MPU6050, if the data value exceeds the preset threshold, Raspberry Pi would control the USB Webcam to take a picture and then send out an alert email with the picture to the user. The advantage of this device is that it is a small size portable stand-alone device with its own power source, it is easy to implement, really cheap for residential use, and energy efficient with instantaneous alert. For the 3D mouse, the MPU6050 would use both the accelerometer and gyroscope to sense user hands movement, the data are processed by MSP430G2553 through a digital smooth filter and a complementary filter, and then the filtered data will pass to the personal computer through the serial COM port. By applying the cursor movement equation in the PC driver, this device can work great as a mouse with acceptable accuracy. Compared to the normal optical mouse we are using, this mouse does not need any working surface, with the use of the smooth and complementary filter, it has certain accuracy for normal use, and it is easy to be extended to a portable mouse as small as a finger ring.

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BACKGROUND Mechanical autotransfusion systems for washed shed blood (WSB) were introduced to reduce the need for postoperative allogenic blood transfusions (ABTs). Although some authors have postulated decreased requirements for ABT by using autologous retransfusion devices, other trials, mostly evaluating retransfusion devices for unwashed shed blood (USB), verified a small or no benefit in reducing the need for postoperative ABT. Because of these contradictory findings it is still unclear whether autologous retransfusion systems for WSB can reduce transfusion requirements. QUESTIONS/PURPOSES We therefore asked whether one such autologous transfusion system for WSB can reduce the requirements for postoperative ABT. METHODS In a prospective, randomized, controlled study, we enrolled 151 patients undergoing TKA. In Group A (n=76 patients), the autotransfusion system was used for a total of 6 hours (intraoperatively and postoperatively) and the WSB was retransfused after processing. In Control Group B (n=75 patients), a regular drain without suction was used. We used signs of anemia and/or a hemoglobin value less than 8 g/dL as indications for transfusion. If necessary, we administered one or two units of allogenic blood. RESULTS Twenty-three patients (33%) in Group A, who received an average of 283 mL (range, 160-406 mL) of salvaged blood, needed a mean of 2.1 units of allogenic blood, compared with 23 patients (33%) in Control Group B who needed a mean of 2.1 units of allogenic blood. CONCLUSIONS We found the use of an autotransfusion system did not reduce the rate of postoperative ABTs. LEVEL OF EVIDENCE Level II, therapeutic study. See the Guidelines for Authors for a complete description of levels of evidence.

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A small Positron Emission Tomography demonstrator based on LYSO slabs and Silicon Photomultiplier matrices is under construction at the University and INFN of Pisa. In this paper we present the characterization results of the read-out electronics and of the detection system. Two SiPM matrices, composed by 8 × 8 SiPM pixels, 1.5 mm pitch, have been coupled one to one to a LYSO crystals array. Custom Front-End ASICs were used to read the 64 channels of each matrix. Data from each Front-End were multiplexed and sent to a DAQ board for the digital conversion; a motherboard collects the data and communicates with a host computer through a USB port. Specific tests were carried out on the system in order to assess its performance. Futhermore we have measured some of the most important parameters of the system for PET application.

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El presente proyecto tiene como objetivo la creación de un controlador MIDI económico que haga uso de la tecnología actual, y partiendo de la idea del instrumento clásico, el Theremin, desarrollado por Lev Serguéievich Termen. Para ello se ha dividido el proyecto en dos principales bloques, el primero, hardware y el segundo, software. En la parte del hardware, se explica cual ha sido la razón de la utilización del microprocesador Arduino Uno, sus características técnicas y el uso de sensores de ultrasonido, ya que proporcionan la característica de poder interactuar con el controlador a través de gestos con las manos, al igual que un Theremin clásico. Se explica el montaje de los dispositivos que conforman el controlador, así como la mejora realizada, con la utilización de 4 de estos sensores, para dar más capacidades de interactuación con el controlador MIDI. También se ve en ese apartado, como se programa la tarjeta de Arduino, para que se encargue de realizar medidas con los sensores y enviarlas por el puerto serial USB. En el apartado del software se da una introducción al entorno de programación Max/MSP. Se ve el plug in desarrollado con este lenguaje, para poder comunicar el controlador MIDI con un software de audio profesional (Ableton Live) y se explica con detalle los bloques que conforman el plug in de control de sensores y como es transformada la información que entrega el microprocesador Arduino por el puerto USB, en datos MIDI. También, se da una explicación sobre el manejo correcto del controlador a la hora de mover las manos sobre los sensores y de donde situar el instrumento para que no se produzcan problemas de interferencias con las señales que envían los ultrasonidos. Además, se proporciona un presupuesto del coste de los materiales, y otro del coste del desarrollo realizado por el ingeniero. ABSTRACT The aim of this Project is the creation of an economical MIDI controller that uses nowadays technology and that is based on the idea of the Theremin, a classical instrument conceived by Lev Serguéievich Termen. In order to accomplish this, the project has been divided into two sections: hardware and software. The hardware section explains why the microprocessor Arduino Uno has been chosen, sets out its technical specifications and the use of ultrasonic sensors. These sensors enable the user to interact with the controller through hand gestures like the Theremin. The assembly of the devices is exposed as well as the improvements made with the use of four of these sensors to offer more interactive capabilities with the MIDI controller. The Arduino singleboard programming that performs the measurements with the sensors and sends these measurements through the USB serial port is also explained here. The software section introduces Max/MSP programming environment as well as the plug in developed with this language that connects the MIDI controller with professional audio software (Ableton Live). The blocks that build the sensor controller plug in are explained in detail along with the way the Arduino delivers the information through the USB port into MIDI data. In addition, an explanation of the correct handling of the MIDI controller is given focusing on how the user should move his hands above the sensors and where to place the instrument to avoid interference problems with the signals sent. Also, a cost estimation of both materials and engineering is provided.

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El propósito de este proyecto de �fin de carrera es la caracterización e instrumentación de un sensor de ultrasonidos modelado por el tutor de este proyecto: Don César Briso Rodrí��guez. Una vez realizado el modelado de dicho sensor, simulando tanto sus caracter�í�sticas f�í�sicas, como sus caracterí��sticas eléctricas, se procede a la intrumentación y uso del mismo. La parte de intrumentaci�ón incluye tanto la electrónica que ser��á necesaria para la excitación del piezoeléctrico, en el modo de emisi�ón, como para la recepción de los pulsos el�éctricos generados por el sensor, como respuesta a los ecos recibidos, y su adecuación a niveles de señal correctos para la adquisici�ón, en el modo de escucha. Tras la adecuaci�ón de las señales para la adquisici�ón, éstas ser�án digitalizadas, tratadas y representadas por pantalla en un PC, a trav�es de una tarjeta de adquisición de datos por puerto USB encargada del muestreo de las señales de respuesta ya tratadas y su posterior enví��o al software de control y representaci�ón desarrollado en este proyecto. El entorno de usuario, el software de control de la tarjeta de adquisición y el software de tratamiento y representaci�ón se ha desarrollado con Visual Basic 2008 y las utilidades gr�áfi�cas de las librer��ías OpenGL. ABSTRACT The purpose of this project is to limit the characterization and implementation of an ultrasonic sensor modeled by Mr. C�ésar Briso Rodr��íguez. Once the sensor modeling by simulating physical characteristics and electrical characteristics, we proceed to the instrumentation and use. This section includes electronic instrumentation that would be necessary for the piezoelectric excitation in the emission mode and for receiving electrical pulses generated by the sensor in response to the received echoes, and matching signal levels right to acquire, in the reception mode. After the adjustment of the signals for the acquisition, these signals will be digitalized, processed and represented on the screen on a PC through a data acquisition card by USB port. Acquisition card is able to sample the response signals and transmit the samples to representation and control software developed in this project. The user interface, the acquisition card control software and processing and representation software has been developed with Visual Basic 2008 and OpenGL graphical libraries.