919 resultados para Signal amplitude


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In the framework of the ITER Control Breakdown Structure (CBS), Plant System Instrumentation & Control (I&C) defines the hardware and software required to control one or more plant systems [1]. For diagnostics, most of the complex Plant System I&C are to be delivered by ITER Domestic Agencies (DAs). As an example for the DAs, ITER Organization (IO) has developed several use cases for diagnostics Plant System I&C that fully comply with guidelines presented in the Plant Control Design Handbook (PCDH) [2]. One such use case is for neutron diagnostics, specifically the Fission Chamber (FC), which is responsible for delivering time-resolved measurements of neutron source strength and fusion power to aid in assessing the functional performance of ITER [3]. ITER will deploy four Fission Chamber units, each consisting of three individual FC detectors. Two of these detectors contain Uranium 235 for Neutron detection, while a third "dummy" detector will provide gamma and noise detection. The neutron flux from each MFC is measured by the three methods: . Counting Mode: measures the number of individual pulses and their location in the record. Pulse parameters (threshold and width) are user configurable. . Campbelling Mode (Mean Square Voltage): measures the RMS deviation in signal amplitude from its average value. .Current Mode: integrates the signal amplitude over the measurement period

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Esta tesis recoje un trabajo experimental centrado en profundizar sobre el conocimiento de los bloques detectores monolíticos como alternativa a los detectores segmentados para tomografía por emisión de positrones (Positron Emission Tomography, PET). El trabajo llevado a cabo incluye el desarrollo, la caracterización, la puesta a punto y la evaluación de prototipos demostradores PET utilizando bloques monolíticos de ortosilicato de lutecio ytrio dopado con cerio (Cerium-Doped Lutetium Yttrium Orthosilicate, LYSO:Ce) usando sensores compatibles con altos campos magnéticos, tanto fotodiodos de avalancha (Avalanche Photodiodes, APDs) como fotomultiplicadores de silicio (Silicon Photomultipliers, SiPMs). Los prototipos implementados con APDs se construyeron para estudiar la viabilidad de un prototipo PET de alta sensibilidad previamente simulado, denominado BrainPET. En esta memoria se describe y caracteriza la electrónica frontal integrada utilizada en estos prototipos junto con la electrónica de lectura desarrollada específicamente para los mismos. Se muestran los montajes experimentales para la obtención de las imágenes tomográficas PET y para el entrenamiento de los algoritmos de red neuronal utilizados para la estimación de las posiciones de incidencia de los fotones γ sobre la superficie de los bloques monolíticos. Con el prototipo BrainPET se obtuvieron resultados satisfactorios de resolución energética (13 % FWHM), precisión espacial de los bloques monolíticos (~ 2 mm FWHM) y resolución espacial de la imagen PET de 1,5 - 1,7 mm FWHM. Además se demostró una capacidad resolutiva en la imagen PET de ~ 2 mm al adquirir simultáneamente imágenes de fuentes radiactivas separadas a distancias conocidas. Sin embargo, con este prototipo se detectaron también dos limitaciones importantes. En primer lugar, se constató una falta de flexibilidad a la hora de trabajar con un circuito integrado de aplicación específica (Application Specific Integrated Circuit, ASIC) cuyo diseño electrónico no era propio sino comercial, unido al elevado coste que requieren las modificaciones del diseño de un ASIC con tales características. Por otra parte, la caracterización final de la electrónica integrada del BrainPET mostró una resolución temporal con amplio margen de mejora (~ 13 ns FWHM). Tomando en cuenta estas limitaciones obtenidas con los prototipos BrainPET, junto con la evolución tecnológica hacia matrices de SiPM, el conocimiento adquirido con los bloques monolíticos se trasladó a la nueva tecnología de sensores disponible, los SiPMs. A su vez se inició una nueva estrategia para la electrónica frontal, con el ASIC FlexToT, un ASIC de diseño propio basado en un esquema de medida del tiempo sobre umbral (Time over Threshold, ToT), en donde la duración del pulso de salida es proporcional a la energía depositada. Una de las características más interesantes de este esquema es la posibilidad de manejar directamente señales de pulsos digitales, en lugar de procesar la amplitud de las señales analógicas. Con esta arquitectura electrónica se sustituyen los conversores analógicos digitales (Analog to Digital Converter, ADCs) por conversores de tiempo digitales (Time to Digital Converter, TDCs), pudiendo implementar éstos de forma sencilla en matrices de puertas programmable ‘in situ’ (Field Programmable Gate Array, FPGA), reduciendo con ello el consumo y la complejidad del diseño. Se construyó un nuevo prototipo demostrador FlexToT para validar dicho ASIC para bloques monolíticos o segmentados. Se ha llevado a cabo el diseño y caracterización de la electrónica frontal necesaria para la lectura del ASIC FlexToT, evaluando su linealidad y rango dinámico, el comportamiento frente a ruido así como la no linealidad diferencial obtenida con los TDCs implementados en la FPGA. Además, la electrónica presentada en este trabajo es capaz de trabajar con altas tasas de actividad y de discriminar diferentes centelleadores para aplicaciones phoswich. El ASIC FlexToT proporciona una excelente resolución temporal en coincidencia para los eventos correspondientes con el fotopico de 511 keV (128 ps FWHM), solventando las limitaciones de resolución temporal del prototipo BrainPET. Por otra parte, la resolución energética con bloques monolíticos leidos por ASICs FlexToT proporciona una resolución energética de 15,4 % FWHM a 511 keV. Finalmente, se obtuvieron buenos resultados en la calidad de la imagen PET y en la capacidad resolutiva del demostrador FlexToT, proporcionando resoluciones espaciales en el centro del FoV en torno a 1,4 mm FWHM. ABSTRACT This thesis is focused on the development of experimental activities used to deepen the knowledge of monolithic detector blocks as an alternative to segmented detectors for Positron Emission Tomography (PET). It includes the development, characterization, setting up, running and evaluation of PET demonstrator prototypes with monolithic detector blocks of Cerium-doped Lutetium Yttrium Orthosilicate (LYSO:Ce) using magnetically compatible sensors such as Avalanche Photodiodes (APDs) and Silicon Photomultipliers (SiPMs). The prototypes implemented with APDs were constructed to validate the viability of a high-sensitivity PET prototype that had previously been simulated, denominated BrainPET. This work describes and characterizes the integrated front-end electronics used in these prototypes, as well as the electronic readout system developed especially for them. It shows the experimental set-ups to obtain the tomographic PET images and to train neural networks algorithms used for position estimation of photons impinging on the surface of monolithic blocks. Using the BrainPET prototype, satisfactory energy resolution (13 % FWHM), spatial precision of monolithic blocks (~ 2 mm FWHM) and spatial resolution of the PET image (1.5 – 1.7 mm FWHM) in the center of the Field of View (FoV) were obtained. Moreover, we proved the imaging capabilities of this demonstrator with extended sources, considering the acquisition of two simultaneous sources of 1 mm diameter placed at known distances. However, some important limitations were also detected with the BrainPET prototype. In the first place, it was confirmed that there was a lack of flexibility working with an Application Specific Integrated Circuit (ASIC) whose electronic design was not own but commercial, along with the high cost required to modify an ASIC design with such features. Furthermore, the final characterization of the BrainPET ASIC showed a timing resolution with room for improvement (~ 13 ns FWHM). Taking into consideration the limitations obtained with the BrainPET prototype, along with the technological evolution in magnetically compatible devices, the knowledge acquired with the monolithic blocks were transferred to the new technology available, the SiPMs. Moreover, we opted for a new strategy in the front-end electronics, the FlexToT ASIC, an own design ASIC based on a Time over Threshold (ToT) scheme. One of the most interesting features underlying a ToT architecture is the encoding of the analog input signal amplitude information into the duration of the output signals, delivering directly digital pulses. The electronic architecture helps substitute the Analog to Digital Converters (ADCs) for Time to Digital Converters (TDCs), and they are easily implemented in Field Programmable Gate Arrays (FPGA), reducing the consumption and the complexity of the design. A new prototype demonstrator based on SiPMs was implemented to validate the FlexToT ASIC for monolithic or segmented blocks. The design and characterization of the necessary front-end electronic to read-out the signals from the ASIC was carried out by evaluating its linearity and dynamic range, its performance with an external noise signal, as well as the differential nonlinearity obtained with the TDCs implemented in the FPGA. Furthermore, the electronic presented in this work is capable of working at high count rates and discriminates different phoswich scintillators. The FlexToT ASIC provides an excellent coincidence time resolution for events that correspond to 511 keV photopeak (128 ps FWHM), resolving the limitations of the poor timing resolution of the BrainPET prototype. Furthermore, the energy resolution with monolithic blocks read by FlexToT ASICs provides an energy resolution of 15.4 % FWHM at 511 keV. Finally, good results were obtained in the quality of the PET image and the resolving power of the FlexToT demonstrator, providing spatial resolutions in the centre of the FoV at about 1.4 mm FWHM.

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In this paper, we demonstrate an approach by which some evoked neuronal events can be probed by functional MRI (fMRI) signal with temporal resolution at the time scale of tens of milliseconds. The approach is based on the close relationship between neuronal electrical events and fMRI signal that is experimentally demonstrated in concurrent fMRI and electroencephalographic (EEG) studies conducted in a rat model with forepaw electrical stimulation. We observed a refractory period of neuronal origin in a two-stimuli paradigm: the first stimulation pulse suppressed the evoked activity in both EEG and fMRI signal responding to the subsequent stimulus for a period of several hundred milliseconds. When there was an apparent site–site interaction detected in the evoked EEG signal induced by two stimuli that were primarily targeted to activate two different sites in the brain, fMRI also displayed signal amplitude modulation because of the interactive event. With visual stimulation using two short pulses in the human brain, a similar refractory phenomenon was observed in activated fMRI signals in the primary visual cortex. In addition, for interstimulus intervals shorter than the known latency time of the evoked potential induced by the first stimulus (≈100 ms) in the primary visual cortex of the human brain, the suppression was not present. Thus, by controlling the temporal relation of input tasks, it is possible to study temporal evolution of certain neural events at the time scale of their evoked electrical activity by noninvasive fMRI methodology.

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There has been little investigation into whether or not differences exist in the nature of physical impairment associated with neck pain of whiplash and insidious origin. This study examined the neck flexor synergy during performance of the cranio-cervical flexion test, a test targeting the action of the deep neck flexors. Seventy-five volunteer subjects participated in this study and were equally divided between Group 1, asymptomatic control subjects, Group 2, subjects with insidious onset neck pain and Group 3, subjects with neck pain following a whiplash injury. The cranio-cervical flexion test was performed in five progressive stages of increasing cranio-cervical flexion range. Subjects' performance was guided by feedback from a pressure sensor inserted behind the neck which monitored the slight flattening of the cervical lordosis which occurs with the contraction of longus colli. Myoelectric signals (EMG) were detected from the muscles during performance of the test. The results indicated that both the insidious onset neck pain and whiplash groups had higher measures of EMG signal amplitude (normalized root mean square) in the sternocleidomastoid during each stage of the test compared to the control subjects (all P

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Weakly electric fish produce a dual function electric signal that makes them ideal models for the study of sensory computation and signal evolution. This signal, the electric organ discharge (EOD), is used for communication and navigation. In some families of gymnotiform electric fish, the EOD is a dynamic signal that increases in amplitude during social interactions. Amplitude increase could facilitate communication by increasing the likelihood of being sensed by others or by impressing prospective mates or rivals. Conversely, by increasing its signal amplitude a fish might increase its sensitivity to objects by lowering its electrolocation detection threshold. To determine how EOD modulations elicited in the social context affect electrolocation, I developed an automated and fast method for measuring electroreception thresholds using a classical conditioning paradigm. This method employs a moving shelter tube, which these fish occupy at rest during the day, paired with an electrical stimulus. A custom built and programmed robotic system presents the electrical stimulus to the fish, slides the shelter tube requiring them to follow, and records video of their movements. I trained the electric fish of the genus Sternopygus was trained to respond to a resistive stimulus on this apparatus in 2 days. The motion detection algorithm correctly identifies the responses 91% of the time, with a false positive rate of only 4%. This system allows for a large number of trials, decreasing the amount of time needed to determine behavioral electroreception thresholds. This novel method enables the evaluation the evolutionary interplay between two conflicting sensory forces, social communication and navigation.

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The current approach to data analysis for the Laser Interferometry Space Antenna (LISA) depends on the time delay interferometry observables (TDI) which have to be generated before any weak signal detection can be performed. These are linear combinations of the raw data with appropriate time shifts that lead to the cancellation of the laser frequency noises. This is possible because of the multiple occurrences of the same noises in the different raw data. Originally, these observables were manually generated starting with LISA as a simple stationary array and then adjusted to incorporate the antenna's motions. However, none of the observables survived the flexing of the arms in that they did not lead to cancellation with the same structure. The principal component approach is another way of handling these noises that was presented by Romano and Woan which simplified the data analysis by removing the need to create them before the analysis. This method also depends on the multiple occurrences of the same noises but, instead of using them for cancellation, it takes advantage of the correlations that they produce between the different readings. These correlations can be expressed in a noise (data) covariance matrix which occurs in the Bayesian likelihood function when the noises are assumed be Gaussian. Romano and Woan showed that performing an eigendecomposition of this matrix produced two distinct sets of eigenvalues that can be distinguished by the absence of laser frequency noise from one set. The transformation of the raw data using the corresponding eigenvectors also produced data that was free from the laser frequency noises. This result led to the idea that the principal components may actually be time delay interferometry observables since they produced the same outcome, that is, data that are free from laser frequency noise. The aims here were (i) to investigate the connection between the principal components and these observables, (ii) to prove that the data analysis using them is equivalent to that using the traditional observables and (ii) to determine how this method adapts to real LISA especially the flexing of the antenna. For testing the connection between the principal components and the TDI observables a 10x 10 covariance matrix containing integer values was used in order to obtain an algebraic solution for the eigendecomposition. The matrix was generated using fixed unequal arm lengths and stationary noises with equal variances for each noise type. Results confirm that all four Sagnac observables can be generated from the eigenvectors of the principal components. The observables obtained from this method however, are tied to the length of the data and are not general expressions like the traditional observables, for example, the Sagnac observables for two different time stamps were generated from different sets of eigenvectors. It was also possible to generate the frequency domain optimal AET observables from the principal components obtained from the power spectral density matrix. These results indicate that this method is another way of producing the observables therefore analysis using principal components should give the same results as that using the traditional observables. This was proven by fact that the same relative likelihoods (within 0.3%) were obtained from the Bayesian estimates of the signal amplitude of a simple sinusoidal gravitational wave using the principal components and the optimal AET observables. This method fails if the eigenvalues that are free from laser frequency noises are not generated. These are obtained from the covariance matrix and the properties of LISA that are required for its computation are the phase-locking, arm lengths and noise variances. Preliminary results of the effects of these properties on the principal components indicate that only the absence of phase-locking prevented their production. The flexing of the antenna results in time varying arm lengths which will appear in the covariance matrix and, from our toy model investigations, this did not prevent the occurrence of the principal components. The difficulty with flexing, and also non-stationary noises, is that the Toeplitz structure of the matrix will be destroyed which will affect any computation methods that take advantage of this structure. In terms of separating the two sets of data for the analysis, this was not necessary because the laser frequency noises are very large compared to the photodetector noises which resulted in a significant reduction in the data containing them after the matrix inversion. In the frequency domain the power spectral density matrices were block diagonals which simplified the computation of the eigenvalues by allowing them to be done separately for each block. The results in general showed a lack of principal components in the absence of phase-locking except for the zero bin. The major difference with the power spectral density matrix is that the time varying arm lengths and non-stationarity do not show up because of the summation in the Fourier transform.

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In this research the recovery of a DQPSK signal will be demonstrated using a single Mach-Zehnder Interferometer (MZI). By changing the phase delay in one of the arms it will be shown that different delays will produce different output levels. It will also be shown that with a certain level of phase shift the DQPSK signal can be converted into four different equally spaced optical power levels. With each decoded level representing one of the four possible bit permutations. By using this additional phase shift in one of the arms the number of MZIs required for decoding can be reduced from two to one.

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This paper presents the results of the in-depth study of the Barkhausen effect signal properties for the plastically deformed Fe-2%Si samples. The investigated samples have been deformed by cold rolling up to plastic strain epsilon(p) = 8%. The first approach consisted of time-domain-resolved pulse and frequency analysis of the Barkhausen noise signals whereas the complementary study consisted of the time-resolved pulse count analysis as well as a total pulse count. The latter included determination of time distribution of pulses for different threshold voltage levels as well as the total pulse count as a function of both the amplitude and the duration time of the pulses. The obtained results suggest that the observed increase in the Barkhausen noise signal intensity as a function of deformation level is mainly due to the increase in the number of bigger pulses.

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The objective of this study was to analyze the electromyographic (EMG) data, before and after normalization. One hundred (100) normal subjects (with no signs and symptoms of temporomandibular disorders) participated in this study. A surface EMG of the masticatory muscles was performed. Two different tests were performed: maximum voluntary clench (MVC) on cotton rolls and MVC in intercuspal position. The normalization was done using the mean value of the EMG signal of the first examination. The coefficient of variation CV showed lower values for the standardized data. The standardization was effective in reducing the differences between records from the same subject and in different subjects.

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Introdução: A síndrome do conflito subacromial (SCSA) é a causa mais frequente de dor no ombro. Alterações na cinemática escapuloumeral e na activação dos músculos escapulares têm sido identificadas em pessoas com SCSA. A mobilização com movimento (MWM) é uma técnica de terapia manual, desenvolvida por Mulligan, que visa normalizar a cinemática articular. Objectivos: Determinar os efeitos imediatos da MWM na dor, na amplitude de movimento (ADM) de abdução no plano da escápula (APE), e na amplitude do sinal electromiográfico (EMG) do trapézio e grande dentado (GD), em pessoas com SCSA. Métodos: Foram incluídas no estudo 24 pessoas com SCSA, divididas de forma aleatória em 2 grupos de 12, MWM e Placebo. As medidas de resultados avaliadas foram: a dor nos testes de Neer e Hawkins-Kennedy; o limiar de dor à pressão; a ADM de APE até ao início da dor; e a percentagem da contracção isométrica voluntária máxima dos músculos trapézio (superior, médio e inferior) e GD. Resultados: A aplicação da MWM resultou numa significativa diferença, com redução da dor, no teste de Hawkins-Kennedy (p=0,028), num aumento do limiar de dor à pressão (p=0,002) e da ADM de APE até ao início da dor (p=0,010), e numa diminuição da actividade EMG do trapézio superior (TS), na fase concêntrica, abaixo dos 90˚ (p=0,028), comparativamente ao grupo Placebo. Foi, ainda, identificada uma diminuição estatisticamente significativa da actividade EMG do TS, nas restantes fases do movimento (p<0,05), um aumento do limiar de dor à pressão (p<0,001) e da ADM até ao início da dor (p=0,006) entre, antes e após a intervenção com MWM. Conclusão: A MWM poderá ser uma técnica efectiva em indivíduos com SCSA, pelos seus efeitos na redução de dor, aumento de ADM até ao início da dor e diminuição da actividade EMG do TS.

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In this paper we study several natural and man-made complex phenomena in the perspective of dynamical systems. For each class of phenomena, the system outputs are time-series records obtained in identical conditions. The time-series are viewed as manifestations of the system behavior and are processed for analyzing the system dynamics. First, we use the Fourier transform to process the data and we approximate the amplitude spectra by means of power law functions. We interpret the power law parameters as a phenomenological signature of the system dynamics. Second, we adopt the techniques of non-hierarchical clustering and multidimensional scaling to visualize hidden relationships between the complex phenomena. Third, we propose a vector field based analogy to interpret the patterns unveiled by the PL parameters.

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This paper presents a new method and circuit for the conversion of binary phase-shift keying (BPSK) signals into amplitude shift keying signals. The basic principles of the conversion method are the superharmonic injection and locking of oscillator circuits, and interference phenomena. The first one is used to synchronize the oscillators, while the second is used to generate an amplitude interference pattern that reproduces the original phase modulation. When combined with an envelope detector, the proposed converter circuit allows the coherent demodulation of BPSK signals without need of any explicit carrier recovery system. The time response of the converter circuit to phase changes of the input signal, as well as the conversion limits, are discussed in detail.

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This paper demonstrates the feasibility of a new circuit for the conversion of binary phase-shift keying signals into amplitude-shift keying signals. In its simplest form, the converter circuit is composed by a power divider, a couple of second harmonic injection-locked oscillators, and a power combiner. The operation of the converter circuit relies on the frequency synchronization of both oscillators and the generation of an interference pattern by combining their outputs, which reproduces the original phase modulation. Two prototypes of the converter have been implemented. The first one is a hybrid version working in the 400-530-MHz frequency range. The second one has been implemented using multichip-module technology, and is intended to work in the 1.8-2.2-GHz frequency range.

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Rapport de synthèseLe syndrome d'apnées obstructives du sommeil (SAOS) est une pathologie respiratoire fréquente. Sa prévalence est estimée entre 2 et 5% de la population adulte générale. Ses conséquences sont importantes. Notamment, une somnolence diurne, des troubles de la concentration, des troubles de la mémoire et une augmentation du risque d'accident de la route et du travail. Il représente également un facteur de risque cardiovasculaire indépendant.Ce syndrome est caractérisé par la survenue durant le sommeil d'obstructions répétées des voies aériennes supérieures. L'arrêt ou la diminution d'apport en oxygène vers les poumons entraîne des épisodes de diminution de la saturation en oxygène de l'hémoglobine. Les efforts ventilatoires visant à lever l'obstacle présent sur les voies aériennes causent de fréquents réveils à l'origine d'une fragmentation du sommeil.La polysomnographie (PSG) représente le moyen diagnostic de choix. Il consiste en l'enregistrement dans un laboratoire du sommeil et en présence d'un technicien diplômé, du tracé électroencéphalographique (EEG), de l'électrooculogramme (EOG), de l'électromyogramme mentonnier (EMG), du flux respiratoire nasal, de l'oxymétrie de pouls, de la fréquence cardiaque, de l'électrocardiogramme (ECG), des mouvements thoraciques et abdominaux, de la position du corps et des mouvements des jambes. L'examen est filmé par caméra infrarouge et les sons sont enregistrés.Cet examen permet entre autres mesures, de déterminer les événements respiratoires obstructifs nécessaires au diagnostic de syndrome d'apnée du sommeil. On définit une apnée lors d'arrêt complet du débit aérien durant au moins 10 secondes et une hypopnée en cas, soit de diminution franche de l'amplitude du flux respiratoire supérieure à 50% durant au moins 10 secondes, soit de diminution significative (20%) de l'amplitude du flux respiratoire pendant au minimum 10 secondes associée à un micro-éveil ou à une désaturation d'au moins 3% par rapport à la ligne de base. La détection des micro-éveils se fait en utilisant les dérivations électroencéphalographiques, électromyographiques et électrooculographiques. Il existe des critères visuels de reconnaissance de ces éveils transitoire: apparition de rythme alpha (8.1 à 12.0 Hz) ou beta (16 à 30 Hz) d'une durée supérieure à 3 secondes [20-21].Le diagnostic de S AOS est retenu si l'on retrouve plus de 5 événements respiratoires obstructifs par heure de sommeil associés soit à une somnolence diurne évaluée selon le score d'Epworth ou à au moins 2 symptômes parmi les suivants: sommeil non réparateur, étouffements nocturne, éveils multiples, fatigue, troubles de la concentration. Le S AOS est gradué en fonction du nombre d'événements obstructifs par heure de sommeil en léger (5 à 15), modéré (15 à 30) et sévère (>30).La polysomnographie (PSG) comporte plusieurs inconvénients pratiques. En effet, elle doit être réalisée dans un laboratoire du sommeil avec la présence permanente d'un technicien, limitant ainsi son accessibilité et entraînant des délais diagnostiques et thérapeutiques. Pour ces mêmes raisons, il s'agit d'un examen onéreux.La polygraphie respiratoire (PG) représente l'alternative diagnostique au gold standard qu'est l'examen polysomnographique. Cet examen consiste en l'enregistrement en ambulatoire, à savoir au domicile du patient, du flux nasalrespiratoire, de l'oxymétrie de pouls, de la fréquence cardiaque, de la position du corps et du ronflement (par mesure de pression).En raison de sa sensibilité et sa spécificité moindre, la PG reste recommandée uniquement en cas de forte probabilité de SAOS. Il existe deux raisons principales à l'origine de la moindre sensibilité de l'examen polygraphique. D'une part, du fait que l'état de veille ou de sommeil n'est pas déterminé avec précision, il y a dilution des événements respiratoires sur l'ensemble de l'enregistrement et non sur la période de sommeil uniquement. D'autre part, en l'absence de tracé EEG, la quantification des micro-éveils est impossible. Il n'est donc pas possible dans l'examen poly graphique, de reconnaître une hypopnée en cas de diminution de flux respiratoire de 20 à 50% non associée à un épisode de désaturation de l'hémoglobine de 3% au moins. Alors que dans l'examen polysomnographique, une telle diminution du flux respiratoire pourrait être associée à un micro-éveil et ainsi comptabilisée en tant qu'hypopnée.De ce constat est né la volonté de trouver un équivalent de micro-éveil en polygraphie, en utilisant les signaux à disposition, afin d'augmenter la sensibilité de l'examen polygraphique.Or plusieurs études ont démontrés que les micro-éveils sont associés à des réactions du système nerveux autonome. Lors des micro-éveils, on met en évidence la survenue d'une vasoconstriction périphérique. La variation du tonus sympathique associée aux micro-éveils peut être mesurée par différentes méthodes. Les variations de l'amplitude de l'onde de pouls mesurée par pulsoxymétrie représentant un marqueur fiable de la vasoconstriction périphérique associée aux micro-réveils, il paraît donc opportun d'utiliser ce marqueur autonomique disponible sur le tracé des polygraphies ambulatoires afin de renforcer la sensibilité de cet examen.Le but de l'étude est d'évaluer la sensibilité des variations de l'amplitude de l'onde de pouls pour détecter des micro-réveils corticaux afin de trouver un moyen d'augmenter la sensibilité de l'examen polygraphique et de renforcer ainsi sont pouvoir diagnostic.L'objectif est de démontrer qu'une diminution significative de l'amplitude de l'onde pouls est concomitante à une activation corticale correspondant à un micro¬réveil. Cette constatation pourrait permettre de déterminer une hypopnée, en polygraphie, par une diminution de 20 à 50% du flux respiratoire sans désaturation de 3% mais associée à une baisse significative de l'amplitude de pouls en postulant que l'événement respiratoire a entraîné un micro-réveil. On retrouve par cette méthode les mêmes critères de scoring d'événements respiratoires en polygraphie et en polysomnographie, et l'on renforce la sensibilité de la polygraphie par rapport au gold standard polysomnographique.La méthode consiste à montrer en polysomnographie qu'une diminution significative de l'amplitude de l'onde de pouls mesurée par pulsoxymétrie est associée à une activation du signal électroencéphalographique, en réalisant une analyse spectrale du tracé EEG lors des baisses d'amplitude du signal d'onde de pouls.Pour ce faire nous avons réalisé une étude rétrospective sur plus de 1000 diminutions de l'amplitude de l'onde de pouls sur les tracés de 10 sujets choisis de manière aléatoire parmi les patients référés dans notre centre du sommeil (CIRS) pour suspicion de trouble respiratoire du sommeil avec somnolence ou symptomatologie diurne.Les enregistrements nocturnes ont été effectués de manière standard dans des chambres individuelles en utilisant le système d'acquisition Embla avec l'ensemble des capteurs habituels. Les données ont été par la suite visuellement analysées et mesurées en utilisant le software Somnologica version 5.1, qui fournit un signal de l'amplitude de l'onde de pouls (puise wave amplitude - PWA).Dans un premier temps, un technicien du sommeil a réalisé une analyse visuelle du tracé EEG, en l'absence des données du signal d'amplitude d'onde de pouls. Il a déterminé les phases d'éveil et de sommeil, les stades du sommeil et les micro¬éveils selon les critères standards. Les micro-éveils sont définis lors d'un changement abrupt dans la fréquence de l'EEG avec un pattern d'ondes thêta-alpha et/ou une fréquence supérieure à 16 Hz (en l'absence de fuseau) d'une durée d'au minimum trois secondes. Si cette durée excède quinze secondes, l'événement correspond à un réveil.Puis, deux investigateurs ont analysé le signal d'amplitude d'onde de pouls, en masquant les données du tracé EEG qui inclut les micro-éveils. L'amplitude d'onde de pouls est calculée comme la différence de valeur entre le zénith et le nadir de l'onde pour chaque cycle cardiaque. Pour chaque baisse de l'amplitude d'onde de pouls, la plus grande et la plus petite amplitude sont déterminées et le pourcentage de baisse est calculé comme le rapport entre ces deux amplitudes. On retient de manière arbitraire une baisse d'au moins 20% comme étant significative. Cette limite a été choisie pour des raisons pratiques et cliniques, dès lors qu'elle représentait, à notre sens, la baisse minimale identifiable à l'inspection visuelle. Chaque baisse de PWA retenue est divisée en 5 périodes contiguës de cinq secondes chacune. Deux avant, une pendant et deux après la baisse de PWA.Pour chaque période de cinq secondes, on a pratiqué une analyse spectrale du tracé EEG correspondant. Le canal EEG C4-A1 est analysé en utilisant la transformée rapide de Fourier (FFT) pour chaque baisse de PWA et pour chaque période de cinq secondes avec une résolution de 0.2 Hz. La distribution spectrale est catégorisée dans chaque bande de fréquence: delta (0.5 à 4.0 Hz); thêta (4.1 à 8.0Hz); alpha (8.1 à 12.0 Hz); sigma (12.1 à 16 Hz) et beta (16.1 à 30.0 Hz). La densité de puissance (power density, en μΥ2 ) pour chaque bande de fréquence a été calculée et normalisée en tant que pourcentage de la puissance totale. On a déterminé, ensuite, la différence de densité de puissance entre les 5 périodes par ANOVA on the rank. Un test post hoc Tukey est été utilisé pour déterminer si les différences de densité de puissance étaient significatives. Les calculs ont été effectués à l'aide du software Sigmastat version 3.0 (Systat Software San Jose, California, USA).Le principal résultat obtenu dans cette étude est d'avoir montré une augmentation significative de la densité de puissance de l'EEG pour toutes les bandes de fréquence durant la baisse de l'amplitude de l'onde de pouls par rapport à la période avant et après la baisse. Cette augmentation est par ailleurs retrouvée dans la plupart des bande de fréquence en l'absence de micro-réveil visuellement identifié.Ce résultat témoigné donc d'une activation corticale significative associée à la diminution de l'onde de pouls. Ce résulat pourrait permettre d'utiliser les variations de l'onde de pouls dans les tracés de polygraphie comme marqueur d'une activation corticale. Cependant on peut dire que ce marqueur est plus sensible que l'analyse visuelle du tracé EEG par un technicien puisque qu'on notait une augmentation de lactivité corticale y compris en l'absence de micro-réveil visuellement identifié. L'application pratique de ces résultats nécessite donc une étude prospective complémentaire.

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A peculiar type of synchronization has been found when two Van der PolDuffing oscillators, evolving in different chaotic attractors, are coupled. As the coupling increases, the frequencies of the two oscillators remain different, while a synchronized modulation of the amplitudes of a signal of each system develops, and a null Lyapunov exponent of the uncoupled systems becomes negative and gradually larger in absolute value. This phenomenon is characterized by an appropriate correlation function between the returns of the signals, and interpreted in terms of the mutual excitation of new frequencies in the oscillators power spectra. This form of synchronization also occurs in other systems, but it shows up mixed with or screened by other forms of synchronization, as illustrated in this paper by means of the examples of the dynamic behavior observed for three other different models of chaotic oscillators.