Literatura académica sobre el tema "Pseudolo"

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Artículos de revistas sobre el tema "Pseudolo"

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Fontana, Fernando F., Steven Tassios, Jessica Stromberg, Caroline Tiddy, Ben van der Hoek y Yulia A. Uvarova. "Integrated Laser-Induced Breakdown Spectroscopy (LIBS) and Multivariate Wavelet Tessellation: A New, Rapid Approach for Lithogeochemical Analysis and Interpretation". Minerals 11, n.º 3 (17 de marzo de 2021): 312. http://dx.doi.org/10.3390/min11030312.

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This paper demonstrates a novel approach that uses wavelet tessellation in rapid analysis of raw geochemical data produced by laser-induced breakdown spectroscopy (LIBS) to produce pseudologs that are representative of stratigraphy. Single-line LIBS spectral data for seven major rock-forming elements (Al, Ca, Fe, Mg, Si, Na and K) were collected from a synthetic 22-sample rock-block comprising two distinct lithological groups based on mineralogy, chemistry and texture: plutonic rocks and marble. Seven sublithologies are identified within the rock-block from traditional laboratory whole-rock geochemical analysis: marble, Mg-marble, granite, quartz monzonite, foidolite, granodiorite and gabbroic diorite. Two-domain clustering (k = 2) on raw spectral LIBS data combined with wavelet tessellation was applied to generate a simplified lithological stratigraphy of marble and plutonic rocks and generate a pseudolog identical to the rock-block stratigraphy. A pseudolog generated from seven-domain clustering (k = 7) and wavelet tessellation successfully discriminated most sublithologies within the rock-block slabs, especially marble slabs. Small-scale units were identified within the more mineralogically and geochemically complex plutonic slabs. The spatial resolution of the LIBS analysis, with a measurement spacing of ~0.35 mm, allowed for assessment of individual mineral compositions and rock textures, and small-scale units within the plutonic rocks can be correlated to specific coarse-grained minerals or mineralogical associations. The application of the wavelet tessellation method to raw LIBS geochemical data offers the possibility of rapid and objective lithogeochemical analysis and interpretations which can predate further analysis (quantitative) and supplement geological logging.
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Wang, Xiaoming y Robert S. Hoffmann. "Pseudois nayaur and Pseudois schaeferi". Mammalian Species, n.º 278 (27 de febrero de 1987): 1. http://dx.doi.org/10.2307/3503993.

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Wencis, Leonard P., Plautus y M. M. Willcock. "Plautus: Pseudolus". Classical World 83, n.º 2 (1989): 126. http://dx.doi.org/10.2307/4350575.

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Neff, Ellen P. "Pseudoloma phenotypes". Lab Animal 49, n.º 7 (24 de junio de 2020): 197. http://dx.doi.org/10.1038/s41684-020-0589-y.

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Dvurečenskij, A. y O. Zahiri. "Orthocomplete pseudoMV-algebras". International Journal of General Systems 45, n.º 7-8 (29 de agosto de 2016): 889–909. http://dx.doi.org/10.1080/03081079.2016.1220008.

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Tornau, Christian. "Pseudolus – ‹der Blender›". Antike und Abendland 51, n.º 1 (16 de noviembre de 2005): 43–68. http://dx.doi.org/10.1515/9783110182514.43.

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van Haastert, Peter J. M. "Unified control of amoeboid pseudopod extension in multiple organisms by branched F-actin in the front and parallel F-actin/myosin in the cortex". PLOS ONE 15, n.º 12 (9 de diciembre de 2020): e0243442. http://dx.doi.org/10.1371/journal.pone.0243442.

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The trajectory of moving eukaryotic cells depends on the kinetics and direction of extending pseudopods. The direction of pseudopods has been well studied to unravel mechanisms for chemotaxis, wound healing and inflammation. However, the kinetics of pseudopod extension–when and why do pseudopods start and stop- is equally important, but is largely unknown. Here the START and STOP of about 4000 pseudopods was determined in four different species, at four conditions and in nine mutants (fast amoeboids Dictyostelium and neutrophils, slow mesenchymal stem cells, and fungus B.d. chytrid with pseudopod and a flagellum). The START of a first pseudopod is a random event with a probability that is species-specific (23%/s for neutrophils). In all species and conditions, the START of a second pseudopod is strongly inhibited by the extending first pseudopod, which depends on parallel filamentous actin/myosin in the cell cortex. Pseudopods extend at a constant rate by polymerization of branched F-actin at the pseudopod tip, which requires the Scar complex. The STOP of pseudopod extension is induced by multiple inhibitory processes that evolve during pseudopod extension and mainly depend on the increasing size of the pseudopod. Surprisingly, no differences in pseudopod kinetics are detectable between polarized, unpolarized or chemotactic cells, and also not between different species except for small differences in numerical values. This suggests that the analysis has uncovered the fundament of cell movement with distinct roles for stimulatory branched F-actin in the protrusion and inhibitory parallel F-actin in the contractile cortex.
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PEÑA-IGLESIAS, A. "APRICOT PSEUDOPOX (VIRUELA) DISEASE". Acta Horticulturae, n.º 209 (mayo de 1988): 163–68. http://dx.doi.org/10.17660/actahortic.1988.209.18.

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Grošelj, Nada. "Iz Plavtovega Kljukca (Pseudolus)". Keria: Studia Latina et Graeca 12, n.º 2-3 (31 de diciembre de 2010): 415. http://dx.doi.org/10.4312/keria.12.2-3.415-419.

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Zgodba je naslednja: Atenski mladenič Kalidor je zaljubljen v kurtizano Fojnikijo, ki pripada zvodniku Balionu, glavnemu negativcu v igri. V uvodnem prizoru Kalidor pokaže družinskemu sužnju Kljukcu (Pseudolus) pismo, v katerem ga Fojnikija prosi za pomoč, ker jo je kupil neki makedonski vojak za dvajset min; petnajst min je plačal vnaprej, preostalih pet pa naj bi prav tega dne prinesel njegov sel, ki bo dokazal svojo istovetnost z dogovorjenim znamenjem – pismom s pečatnim odtisom vojakovega portreta. Kljukec obljubi Kalidoru, da bo preprečil prodajo njegove ljubice. Ko prispe vojakov sel Grabež (Harpax), Kljukec od njega z zvijačo pridobi vojakovo pismo in prepoznavno znamenje, nato pa pošlje k Balionu drugega pretkanega sužnja, Pavijana (Simia), da se izdaja za vojakovega slugo in odpelje Fojnikijo na varno. Ta osrednji dogodek v drami – prevara Baliona – je prikazan v gornjem odlomku.– Prevod celotne komedije bo še v letu 2010 izšel pri Celjski Mohorjevi družbi.
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Stossel, T. P. "From signal to pseudopod". Journal of Biological Chemistry 264, n.º 31 (noviembre de 1989): 18261–64. http://dx.doi.org/10.1016/s0021-9258(18)51454-x.

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Tesis sobre el tema "Pseudolo"

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Rossetto, Laura. "Lo "Pseudolo" e lo "Stico" di Plauto: volgarizzamenti rinascimentali". Doctoral thesis, Università Ca' Foscari Venezia, 1994. http://hdl.handle.net/10579/97.

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JUBERT, DUPONT-LHOTELAIN MARIE-CHRISTINE. "Syndrome pseudo-phlebite et pseudo-pseudo-phlebitique des kystes poplites". Angers, 1989. http://www.theses.fr/1989ANGE1091.

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JACQUET, JEAN-PHILIPPE. "Logique pseudo-consistante". Paris 6, 1995. http://www.theses.fr/1995PA066349.

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Nous proposons une logique, la logique pseudo-consistante, permettant la manipulation formelle de donnees contradictoires. Cette logique possede une contrepartie algebrique, les pc-algebres, et deux semantiques (une semantique locale pouvant etre interpretee de deux facon differentes et une semantique de type topologique). Nous montrons que la logique pseudo-consistante, en raison de son approche de la verite, est differente des logiques paraconsistantes. Nous decrivons de quelles facons elle peut-etre utilisee, notamment pour resoudre certains problemes lies a la categorisation
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Cattelat, Catherine. "L'appendicite pseudo-tumorale". Montpellier 1, 1988. http://www.theses.fr/1988MON11038.

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Thiénot, Cédric. "Logique pseudo-intuitionniste". Paris 6, 1999. http://www.theses.fr/1999PA066651.

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Galaffi, Giulia. "Operatori pseudo-differenziali". Bachelor's thesis, Alma Mater Studiorum - Università di Bologna, 2012. http://amslaurea.unibo.it/4625/.

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D'Amico, Daniela <1977&gt. "Sullo pseudo-vitellio". Master's Degree Thesis, Università Ca' Foscari Venezia, 2014. http://hdl.handle.net/10579/4460.

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Gaito, Stephen Thomas. "Shadowing of weakly pseudo-hyperbolic pseudo-orbits in discrete dynamical systems". Thesis, University of Warwick, 1992. http://wrap.warwick.ac.uk/109461/.

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We consider Cr (r ≥ 1 +γ) diffeomorphisms of compact Riemannian manifolds. Our aim is to develop the analytic machinery required to describe the topological symbolic dynamics of sets of weakly hyperbolic orbits. The Pesin set is an example of such a set. For Axiom-A dynamical systems, that is, for diffeomorphisms which have a uniformly hyperbolic nonwandering set which is the closure of the periodic orbits, this analytic machinery is provided by the Shadowing Lemma. This lemma is a consequence of the Stable Manifold Theorem, and the local product structure of the nonwandering set of an Axiom-A diffeomorphism. Weakly hyperbolic invariant sets, such as the Pesin set, do not, in general, have local product structure. We can however, prove a generalization of the Shadowing Lemma by combining Anosov’s Stability Lemma with the Stable Manifold Theorem. In essence we prove a perturbed Stable Manifold Theorem. In order to deal with weakly hyperbolic orbits we use Pugh and Shub’s graph transform version of Pesin’s Stable Manifold Theorem. Normally, the contraction required to prove either Anosov’s Stability Lemma or the Stable Manifold Theorem, is derived from the hyperbolicity of a “supporting” invariant set. In fact neither of these proofs require this invariance; hyperbolic, or even pseudo-hyperbolic, families of pseudo-orbits are all that they require. This allows us to conclude the existence of shadowing orbits in the neighbourhood of “hyperbolic invariant sets” of numerical simulations of lowdimensional dynamical systems. In particular corresponding to any such numerical “hyperbolic invariant set”, there is a uniformly hyperbolic invariant set of the dynamical system itself.
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Mefenza, Nountu Thierry. "Pseudo-random generators and pseudo-random functions : cryptanalysis and complexity measures". Thesis, Paris Sciences et Lettres (ComUE), 2017. http://www.theses.fr/2017PSLEE064/document.

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L’aléatoire est un ingrédient clé en cryptographie. Par exemple, les nombres aléatoires sont utilisés pour générer des clés, pour le chiffrement et pour produire des nonces. Ces nombres sont générés par des générateurs pseudo-aléatoires et des fonctions pseudo-aléatoires dont les constructions sont basées sur des problèmes qui sont supposés difficiles. Dans cette thèse, nous étudions certaines mesures de complexité des fonctions pseudo-aléatoires de Naor-Reingold et Dodis-Yampolskiy et étudions la sécurité de certains générateurs pseudo-aléatoires (le générateur linéaire congruentiel et le générateur puissance basés sur les courbes elliptiques) et de certaines signatures à base de couplage basées sur le paradigme d’inversion. Nous montrons que la fonction pseudo-aléatoire de Dodis-Yampolskiy est uniformément distribué et qu’un polynôme multivarié de petit dégré ou de petit poids ne peut pas interpoler les fonctions pseudo-aléatoires de Naor-Reingold et de Dodis-Yampolskiy définies sur un corps fini ou une courbe elliptique. Le contraire serait désastreux car un tel polynôme casserait la sécurité de ces fonctions et des problèmes sur lesquels elles sont basées. Nous montrons aussi que le générateur linéaire congruentiel et le générateur puissance basés sur les courbes elliptiques sont prédictibles si trop de bits sont sortis à chaque itération. Les implémentations pratiques de cryptosystèmes souffrent souvent de fuites critiques d’informations à travers des attaques par canaux cachés. Ceci peut être le cas lors du calcul de l’exponentiation afin de calculer la sortie de la fonction pseudo-aléatoire de Dodis-Yampolskiy et plus généralement le calcul des signatures dans certains schémas de signatures bien connus à base de couplage (signatures de Sakai-Kasahara, Boneh-Boyen et Gentry) basées sur le paradigme d’inversion. Nous présentons des algorithmes (heuristiques) en temps polynomial à base des réseaux qui retrouvent le secret de celui qui signe le message dans ces trois schémas de signatures lorsque plusieurs messages sont signés sous l’hypothèse que des blocs consécutifs de bits des exposants sont connus de l’adversaire
Randomness is a key ingredient in cryptography. For instance, random numbers are used to generate keys, for encryption and to produce nonces. They are generated by pseudo-random generators and pseudorandom functions whose constructions are based on problems which are assumed to be difficult. In this thesis, we study some complexity measures of the Naor-Reingold and Dodis-Yampolskiy pseudorandom functions and study the security of some pseudo-random generators (the linear congruential generator and the power generator on elliptic curves) and some pairing-based signatures based on exponentinversion framework. We show that the Dodis-Yampolskiy pseudo-random functions is uniformly distributed and that a lowdegree or low-weight multivariate polynomial cannot interpolate the Naor-Reingold and Dodis-Yampolskiy pseudo-random functions over finite fields and over elliptic curves. The contrary would be disastrous since it would break the security of these functions and of problems on which they are based. We also show that the linear congruential generator and the power generator on elliptic curves are insecure if too many bits are output at each iteration. Practical implementations of cryptosystems often suffer from critical information leakage through sidechannels. This can be the case when computing the exponentiation in order to compute the output of the Dodis-Yampolskiy pseudo-random function and more generally in well-known pairing-based signatures (Sakai-Kasahara signatures, Boneh-Boyen signatures and Gentry signatures) based on the exponent-inversion framework. We present lattice based polynomial-time (heuristic) algorithms that recover the signer’s secret in the pairing-based signatures when used to sign several messages under the assumption that blocks of consecutive bits of the exponents are known by the attacker
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Tomasetti, Luca. "Sulla Pseudo-Telepatia Quantistica". Bachelor's thesis, Alma Mater Studiorum - Università di Bologna, 2015. http://amslaurea.unibo.it/9677/.

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La tesi descrive il fenomeno della pseudo-telepatia quantistica; vengono spiegati quali avvenimenti storici hanno portato alla nascita di questa teoria. Attraverso vari esempi, in un primo momento si cerca di far capire cosa sia realmente il fenomeno analizzato, successivamente verrà dimostrato che la pseudo-telepatia è la migliore strategia esistente per la risoluzione di alcune particolari tipologie di compiti.
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Libros sobre el tema "Pseudolo"

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Palomino, Angel. Pseudo García Márquez, pseudo Cela y otros pseudos más. Pozuelo de Alarcón (Madrid): Academia de Humor, 1996.

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Palomino, Ángel. Pseudo García Márquez, pseudo Cela y otros pseudos más. Pozuelo de Alarcón (Madrid): Patronato de Cultura de Pozuelo de Alarcón, 1996.

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M, Willcock Malcolm, ed. Pseudolus. Bristol: Bristol Classical Press, 1987.

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editor, Questa Cesare, ed. Pseudolus. Sarsina et Urbini: QuattroVenti, 2017.

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Lefèvre, Eckard. Plautus' Pseudolus. Tübingen: G. Narr, 1997.

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Digmann, Matilde. Pseudo. [København]: basilisk.dk, 2021.

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Plautus, Titus Maccius. Plautus' komedie Pseudolus. Aarhus: Aarhus Universitetsforlag, 1987.

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Kapetanaki, Sophia y Robert W. Sharples, eds. Pseudo-Aristoteles (Pseudo-Alexander), Supplementa Problematorum. Berlin, Boston: DE GRUYTER, 2006. http://dx.doi.org/10.1515/9783110913972.

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Furiassi, Cristiano y Henrik Gottlieb, eds. Pseudo-English. Berlin, München, Boston: DE GRUYTER, 2015. http://dx.doi.org/10.1515/9781614514688.

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Riedinger, Rudolf, ed. Pseudo-Kaisarios. Berlin, New York: DE GRUYTER, 1989. http://dx.doi.org/10.1515/9783110881097.

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Capítulos de libros sobre el tema "Pseudolo"

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Frank, J. Howard, J. Howard Frank, Michael C. Thomas, Allan A. Yousten, F. William Howard, Robin M. Giblin-davis, John B. Heppner et al. "Pseudopod". En Encyclopedia of Entomology, 3067. Dordrecht: Springer Netherlands, 2008. http://dx.doi.org/10.1007/978-1-4020-6359-6_3200.

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Quatember, Andreas. "Statistical Surveys". En Pseudo-Populations, 1–4. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-11785-0_1.

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Quatember, Andreas. "The Pseudo-Population Concept". En Pseudo-Populations, 5–51. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-11785-0_2.

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Quatember, Andreas. "Nonresponse and Untruthful Answering". En Pseudo-Populations, 53–63. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-11785-0_3.

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Quatember, Andreas. "Simulation Studies in Survey Sampling". En Pseudo-Populations, 65–69. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-11785-0_4.

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Quatember, Andreas. "The Bootstrap Method in Survey Sampling". En Pseudo-Populations, 71–84. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-11785-0_5.

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Quatember, Andreas. "Generalized Randomized Response Questioning Designs". En Pseudo-Populations, 85–120. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-11785-0_6.

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Quatember, Andreas. "A Unified Framework for Statistical Disclosure Control". En Pseudo-Populations, 121–28. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-11785-0_7.

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Naniewicz, Z. y P. D. Panagiotopoulos. "Pseudo-Monotonicity and Generalized Pseudo-Monotonicity". En Mathematical Theory of Hemivariational Inequalities and Applications, 41–63. Boca Raton: CRC Press, 2021. http://dx.doi.org/10.1201/9781003208853-2.

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Nesselrath, Heinz-Günther. "Xenophon, (Pseudo-)". En Kindlers Literatur Lexikon (KLL), 1. Stuttgart: J.B. Metzler, 2020. http://dx.doi.org/10.1007/978-3-476-05728-0_22521-1.

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Actas de conferencias sobre el tema "Pseudolo"

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He, Tao, Manjunath Kareppagoudr, Un-Ku Moon, Gabor C. Temes y Yi Zhang. "Pseudo-pseudo-differential circuits". En 2017 IEEE 60th International Midwest Symposium on Circuits and Systems (MWSCAS). IEEE, 2017. http://dx.doi.org/10.1109/mwscas.2017.8053223.

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Zhang, Xiaohong y Hongjuan Gong. "Implicative Pseudo-BCK Algebras and Implicative Pseudo-Filters of Pseudo-BCK Algebras". En 2010 IEEE International Conference on Granular Computing (GrC-2010). IEEE, 2010. http://dx.doi.org/10.1109/grc.2010.62.

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Caceres, Emanuel, Manjunath Kareppagoudr, Jyotindra Shakya y Gabor C. Temes. "Pseudo-Pseudo-Differential Multibit Delta-Sigma Modulator". En 2020 IEEE 63rd International Midwest Symposium on Circuits and Systems (MWSCAS). IEEE, 2020. http://dx.doi.org/10.1109/mwscas48704.2020.9184623.

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Chaudhuri, Mainak. "Pseudo-LIFO". En the 42nd Annual IEEE/ACM International Symposium. New York, New York, USA: ACM Press, 2009. http://dx.doi.org/10.1145/1669112.1669164.

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Pap, Endre. "Pseudo-analysis". En 2013 IEEE 9th International Conference on Computational Cybernetics (ICCC). IEEE, 2013. http://dx.doi.org/10.1109/icccyb.2013.6617590.

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Pusch, Andreas y Anatole Lécuyer. "Pseudo-haptics". En the 13th international conference. New York, New York, USA: ACM Press, 2011. http://dx.doi.org/10.1145/2070481.2070494.

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Blum, Jeffrey R., Jeremy R. Cooperstock y Jessica Cauchard. "Pseudo-Ambience". En UbiComp '18: The 2018 ACM International Joint Conference on Pervasive and Ubiquitous Computing. New York, NY, USA: ACM, 2018. http://dx.doi.org/10.1145/3267305.3274111.

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Nelson, Richard J., Jonathan M. Mooney y William S. Ewing. "Pseudo imaging". En Defense and Security Symposium, editado por Sylvia S. Shen y Paul E. Lewis. SPIE, 2006. http://dx.doi.org/10.1117/12.672989.

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Sobering, Geoff, Levi Cook y Steve Anderson. "Pseudo-classes". En Companion to the 19th annual ACM SIGPLAN conference. New York, New York, USA: ACM Press, 2004. http://dx.doi.org/10.1145/1028664.1028730.

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Pocchiola, Michel y Gert Vegter. "Pseudo-triangulations". En the twelfth annual symposium. New York, New York, USA: ACM Press, 1996. http://dx.doi.org/10.1145/237218.237398.

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Informes sobre el tema "Pseudolo"

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CHERTKOV, MICHAEL y MIKHAIL STEPANOV. PSEUDO-CODEWORD LANDSCAPE. Office of Scientific and Technical Information (OSTI), enero de 2007. http://dx.doi.org/10.2172/1000499.

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Welch, Brent B. y John K. Ousterhout. Pseudo-File-Systems. Fort Belvoir, VA: Defense Technical Information Center, abril de 1989. http://dx.doi.org/10.21236/ada631678.

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Fadlon, Itzik y David Laibson. Paternalism and Pseudo-Rationality. Cambridge, MA: National Bureau of Economic Research, julio de 2017. http://dx.doi.org/10.3386/w23620.

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Klein, Matthias. Couplings in Pseudo-Supersymmetry. Office of Scientific and Technical Information (OSTI), agosto de 2002. http://dx.doi.org/10.2172/799934.

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Cherbal, Omar. Pseudo-Fermionic Coherent States. GIQ, 2012. http://dx.doi.org/10.7546/giq-10-2009-158-163.

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Cherbal, Omar. Pseudo-Fermionic Coherent States. Journal of Geometry and Symmetry in Physics, 2012. http://dx.doi.org/10.7546/jgsp-14-2009-13-19.

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Prokopyev, Oleg. Stochastic Pseudo-Boolean Optimization. Fort Belvoir, VA: Defense Technical Information Center, julio de 2011. http://dx.doi.org/10.21236/ada564073.

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Guzman, Martin y Joseph Stiglitz. Pseudo-wealth and Consumption Fluctuations. Cambridge, MA: National Bureau of Economic Research, noviembre de 2016. http://dx.doi.org/10.3386/w22838.

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Klein, Matthias. Loop-Effects in Pseudo-Supersymmetry. Office of Scientific and Technical Information (OSTI), noviembre de 2002. http://dx.doi.org/10.2172/808660.

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Klein, Matthias. Effective Lagrangians in Pseudo-Supersymmetry. Office of Scientific and Technical Information (OSTI), diciembre de 2002. http://dx.doi.org/10.2172/808695.

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