Academic literature on the topic 'Particle physics : Standard Model'

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Journal articles on the topic "Particle physics : Standard Model"

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Virdee, T. S. "Beyond the standard model of particle physics." Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences 374, no. 2075 (2016): 20150259. http://dx.doi.org/10.1098/rsta.2015.0259.

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The Large Hadron Collider (LHC) at CERN and its experiments were conceived to tackle open questions in particle physics. The mechanism of the generation of mass of fundamental particles has been elucidated with the discovery of the Higgs boson. It is clear that the standard model is not the final theory. The open questions still awaiting clues or answers, from the LHC and other experiments, include: What is the composition of dark matter and of dark energy? Why is there more matter than anti-matter? Are there more space dimensions than the familiar three? What is the path to the unification of
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Gaillard, Mary K., Paul D. Grannis, and Frank J. Sciulli. "The standard model of particle physics." Reviews of Modern Physics 71, no. 2 (1999): S96—S111. http://dx.doi.org/10.1103/revmodphys.71.s96.

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Kibble, Tom W. B. "The Standard Model of Particle Physics." European Review 23, no. 1 (2015): 36–44. http://dx.doi.org/10.1017/s1062798714000520.

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This is a historical account from my personal perspective of the development over the last few decades of the standard model of particle physics. The model is based on gauge theories, of which the first was quantum electrodynamics, describing the interactions of electrons with light. This was later incorporated into the electroweak theory, describing electromagnetic and weak nuclear interactions. The standard model also includes quantum chromodynamics, the theory of the strong nuclear interactions. The final capstone of the model was the Higgs particle discovered in 2012 at CERN. But the model
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Shears, Tara. "The Standard Model." Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences 370, no. 1961 (2012): 805–17. http://dx.doi.org/10.1098/rsta.2011.0314.

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The Standard Model is the theory used to describe the interactions between fundamental particles and fundamental forces. It is remarkably successful at predicting the outcome of particle physics experiments. However, the theory has not yet been completely verified. In particular, one of the most vital constituents, the Higgs boson, has not yet been observed. This paper describes the Standard Model, the experimental tests of the theory that have led to its acceptance and its shortcomings.
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Ellis, John. "Outstanding questions: physics beyond the Standard Model." Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences 370, no. 1961 (2012): 818–30. http://dx.doi.org/10.1098/rsta.2011.0452.

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The Standard Model of particle physics agrees very well with experiment, but many important questions remain unanswered, among them are the following. What is the origin of particle masses and are they due to a Higgs boson? How does one understand the number of species of matter particles and how do they mix? What is the origin of the difference between matter and antimatter, and is it related to the origin of the matter in the Universe? What is the nature of the astrophysical dark matter? How does one unify the fundamental interactions? How does one quantize gravity? In this article, I introd
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Goldhaber, Maurice. "Amending the Standard Model of Particle Physics." International Journal of Modern Physics A 19, supp01 (2004): 167–80. http://dx.doi.org/10.1142/s0217751x04018683.

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Some of my earlier arguments, suggesting modifications of the Standard Model of Particle Physics (see ref. 1), are elaborated and extended. Rules deduced from the known properties of elementary fermions are sharpened and extended in the first part. Conclusions drawn from the rules in the second part are also honed and expanded and an estimate of the neutrino mass eigenstates is added. In the third part, a tentative explanation of the rules is discussed. In my earlier paper, I suggested replacing the point-sources postulated by the Standard Model for each generation by finite 'source-shapes', e
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Bevelacqua, J. J. "STANDARD MODEL OF PARTICLE PHYSICS—A HEALTH PHYSICS PERSPECTIVE." Health Physics 99, no. 5 (2010): 613–23. http://dx.doi.org/10.1097/hp.0b013e3181de7127.

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TSOU, Sheung Tsun. "Electric–Magnetic Duality and the Dualized Standard Model." International Journal of Modern Physics A 18, supp02 (2003): 1–40. http://dx.doi.org/10.1142/s0217751x03017944.

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In these lectures I shall explain how a new-found nonabelian duality can be used to solve some outstanding questions in particle physics. The first lecture introduces the concept of electromagnetic duality and goes on to present its nonabelian generalization in terms of loop space variables. The second lecture discusses certain puzzles that remain with the Standard Model of particle physics, particularly aimed at nonexperts. The third lecture presents a solution to these problems in the form of the Dualized Standard Model, first proposed by Chan and the author, using nonabelian dual symmetry.
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Jedamzik, Karsten. "The cosmic lithium problem and physics beyond the Standard Model." Proceedings of the International Astronomical Union 5, S268 (2009): 27–31. http://dx.doi.org/10.1017/s1743921310003820.

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AbstractIn this proceeding I briefly discuss the possibility of relic decaying or annihilating particles to explain the cosmological 7Li anomaly and/or to be the source of significant amounts of pre-galactic 6Li. The effect of relic massive charged particles through catalysis of nuclear reactions is also discussed. The possibility of a connection of the 7Li problem to the cosmic dark matter and physics beyond the standard model of particle physics, such as supersymmetry, is noted.
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Giacomelli, Giorgio. "The standard model of particle physics. Neutrino oscillations." Radiation Measurements 44, no. 9-10 (2009): 826–33. http://dx.doi.org/10.1016/j.radmeas.2009.10.083.

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Dissertations / Theses on the topic "Particle physics : Standard Model"

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Glover, Brian Audley. "Topics in particle physics beyond the Standard Model." W&M ScholarWorks, 2009. https://scholarworks.wm.edu/etd/1539623541.

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We present new models of particle physics beyond the Standard Model. These models include extensions to the ideas of extra dimensions, deconstruction, supersymmetry, and Higgsless electroweak symmetry breaking. Besides introducing new models and discussing their consequences, we also discuss how galaxy cluster surveys can be used to constrain new physics beyond the Standard Model.;We find that an ultraviolet completion of gauge theories in the Randall-Sundrum model can be found in a deconstructed theory. The warping of the extra dimension is reproduced in the low energy theory by considering a
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Setford, Jack. "Strongly coupled physics beyond the standard model." Thesis, University of Sussex, 2018. http://sro.sussex.ac.uk/id/eprint/77429/.

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This thesis is concerned with strongly coupled extensions to the Standard Model. The majority of the thesis is dedicated to the study of Composite Higgs models, which are a proposed solution to the hierarchy problem of the electroweak scale. In these models the Higgs is a composite pseudo-Nambu Goldstone boson which forms a part of a new strongly interacting sector. There are many different variations on the basic Composite Higgs theme { the current status of some of these variations is assessed in light of results from the Large Hadron Collider. A new kind of Composite Higgs model is presente
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Colburn, Russell J. III. "Beyond the Standard Model: Dark Matter and Collider Physics." The Ohio State University, 2017. http://rave.ohiolink.edu/etdc/view?acc_num=osu1507215920939059.

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Shaheen, Matloob H. "Neutral currents beyond the standard model." Thesis, Durham University, 1988. http://etheses.dur.ac.uk/6334/.

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The electroweak standard model (Salam-Weinberg) is well-known to be a satisfactory and consistent theoretical description of all the experimental data we have obtained so far. In this thesis, we discuss possible phenomenology which goes beyond the standard model, with particular emphasis on the neutral current effects. First of all, the left-right symmetric extension of the standard model is discussed and we find limits on its parameters. We show that this model cannot explain certain newly reported and highly speculative events at the CERN collider [3], which in principle could be caused by t
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Stephan, Christoph. "Noncommutative geometry and the standard model of particle physics." Aix-Marseille 1, 2005. http://www.theses.fr/2005AIX11042.

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Alain Connes a découvert une approche algébrique à la géométrie en remplaçant la géométrie Riemannienne de spin ordinaire par des triplets spectraux. Un triplet spectral est un ensemble avec trois membres : une algèbre, un opérateur de Dirac et un espace de Hilbert. Toutes les informations géométriques de la variété sont codées dans les triplets spectraux. Une qualité nouvelle de cette reformulation est la possibilité d'inclure des espaces non commutatifs. Ils sont représentés par des algèbres non commutatives, alors que les espaces ordinaires sont codés par des algèbres commutatives. Il est m
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Fok, Ricky. "Scenarios of Physics Beyond the Standard Model." Thesis, University of Oregon, 2011. http://hdl.handle.net/1794/11940.

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xviii, 124 p. : ill. (some col.)<br>This dissertation discusses three topics on scenarios beyond the Standard Model. Topic one is the effects from a fourth generation of quarks and leptons on electroweak baryogenesis in the early universe. The Standard Model is incapable of electroweak baryogenesis due to an insufficiently strong enough electroweak phase transition (EWPT) as well as insufficient CP violation. We show that the presence of heavy fourth generation fermions solves the first problem but requires additional bosons to be included to stabilize the electroweak vacuum. Introducing su
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Conroy, Justin M. "Modifications of spacetime and particle physics beyond the standard model." W&M ScholarWorks, 2005. https://scholarworks.wm.edu/etd/1539623481.

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In this dissertation we consider spacetime modifications that result in new physics beyond the standard model. We investigate various collider implications of a particular Lorentz-conserving formulation of QED in which spacetime coordinates are noncommuting. We also consider collider implications of Universal Extra Dimensions. Specifically, we address the possible formation of bound states involving the first quark KK-modes, i.e. KK-quarkonium. In addition, we consider the use of boundary conditions in extra dimensions to break gauge symmetries in unified theories. These boundary conditions ca
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Jenkins, Alejandro Wise Mark B. "Topics in particle physics and cosmology beyond the standard model /." Diss., Pasadena, Calif. : Caltech, 2006. http://resolver.caltech.edu/CaltechETD:etd-06022006-145211.

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O'Leary, Benjamin Hugh. "Phenomenology of the minimal supersymmetric standard model without R-parity." Thesis, University of Edinburgh, 2007. http://hdl.handle.net/1842/1982.

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This thesis is an investigation into the current bounds on the trilinear R–parity–violating couplings in the Minimal Supersymmetric Standard Model without R–parity conservation. The model is described, and its implications are discussed. Bounds on the couplings are obtained from leptonic and mesonic decay data, approximating mediating sfermions as much heavier than the decaying particles and assuming that only one set of couplings is non–zero for each decay. Those bounds from the purely leptonic decay data are compared to bounds from the LEP–II data, over a large range of sfermion masses. A po
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Wade, Michael Fairbairn. "Semileptonic decays of heavy mesons and the standard model." Thesis, Durham University, 1990. http://etheses.dur.ac.uk/6045/.

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The formalism for a helicity amplitude analysis of the exclusive semileptonic decays of B mesons (B → Dlv and B → D* lv for l = e, µ and r) is introduced. In particular it is shown how measurements of the angular distribution of the subsequent decay D* → Dπ can fully determine the theoretically uncertain hadronic (B → D,D*) matrix elements. A spectator quark based model for the hadronic amplitudes is introduced, and then compared to other existing models and with the presently available experimental data, to extract the quark mixing matrix element |V(_eb)|. The extraction of |V(_ub)|, using ex
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Books on the topic "Particle physics : Standard Model"

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An introduction to particle physics and the standard model. Taylor & Francis, 2010.

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NATO Advanced Study Institute on Quantitative Particle Physics (1992 Cargèse,France). Quantitative particle physics. Plenum Press in cooperation with NATO Scientific Affairs Division, 1993.

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Nagashima, Yorikiyo, ed. Beyond the Standard Model of Elementary Particle Physics. Wiley-VCH Verlag GmbH & Co. KGaA, 2014. http://dx.doi.org/10.1002/9783527665020.

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Kane, G. L. The particle garden: Our universe as understood by particle physicists. Addison-Wesley, 1995.

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Kane, G. L. The particle garden: Our universe as understood by particle physicists. Basic Books, 1996.

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A, Greenwood D., ed. An introduction to the standard model of particle physics. Cambridge University Press, 1998.

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Wells, James D. Discovery Beyond the Standard Model of Elementary Particle Physics. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-38204-9.

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Mann, Robert. An introduction to particle physics and the standard model. CRC Press, 2010.

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Mann, Robert. An introduction to particle physics and the standard model. Taylor & Francis, 2010.

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Robinson, Matthew B. Symmetry and the standard model: Mathematics and particle physics. Springer, 2011.

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Book chapters on the topic "Particle physics : Standard Model"

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Altarelli, G. "Beyond the Standard Model." In Particle Physics. Springer US, 1987. http://dx.doi.org/10.1007/978-1-4613-1877-4_13.

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Gérard, J. M. "The Standard Model and a Little Beyond." In Particle Physics. Springer US, 1987. http://dx.doi.org/10.1007/978-1-4613-1877-4_14.

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Rabinovici, Eliezer. "Beyond the Standard Model." In Particle Physics Reference Library. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-38207-0_8.

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AbstractStarting sometime in 2008/2009 one expects to be able to take a glimpse at physics at the TeV scale. This will be done through the Large Hadronic Collider (LHC) at CERN, Geneva. It will be a result of an unprecedented coordinated international scientific effort. This chapter is written in 2007. It is essentially inviting disaster to spell out in full detail what the current various theoretical speculations on the physics are, as well motivated as they may seem at this time. What I find of more value is to elaborate on some of the ideas and the motivations behind them. Some may stay with us, some may evolve and some may be discarded as the results of the experiments unfold. When the proton antiproton collider was turned on in the early eighties of the last century at Cern the theoretical ideas were ready to face the experimental results in confidence, a confidence which actually had prevailed. The emphasis was on the tremendous experimental challenges that needed to be overcome in both the production and the detection of the new particles. As far as theory was concerned this was about the physics of the standard model and not about the physics beyond it. The latter part was left safely unchallenged. That situation started changing when the large electron positron (LEP) collider experiments also at Cern were turned on as well the experiments at the Tevatron at Fermilab. Today it is with rather little, scientifically based, theoretical confidence that one is anticipating the outcome of the experiments. It is less the method and foundations that are tested and more the prejudices. It is these which are at the center of this chapter. Some claim to detect over the years an oscilatory behavior in the amount of conservatism expressed by leaders in physics. The generation in whose life time relativity and quantum mechanics were discovered remained non-conservative throughout their life. Some of the latter developed eventually such adventurous ideas as to form as a reaction a much more conservative following generation. The conservative generation perfected the inherited tools and has uncovered and constructed the Standard Model. They themselves were followed by a less conservative generation. The new generation was presented with a seemingly complete description of the known forces. In order to go outside the severe constraints of the Standard Model the new generation has drawn upon some of the more adventurous ideas of the older generation as well as created it own ideas. In a way almost all accepted notions were challenged. In the past such an attitude has led to major discoveries such as relativity and quantum mechanics. In some cases it was carried too far, the discovery of the neutrino was initially missed as energy conservation was temporarily given up.
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Zuber, Kai. "The Standard Model of particle physics." In Neutrino Physics. CRC Press, 2020. http://dx.doi.org/10.1201/9781315195612-3.

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Altarelli, Guido, and Stefano Forte. "Gauge Theories and the Standard Model." In Particle Physics Reference Library. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-38207-0_2.

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AbstractThis chapter, Chaps. 10.1007/978-3-030-38207-0_3 and 10.1007/978-3-030-38207-0_4 present a self-contained introduction to the Standard Model of fundamental interactions, which describes in the unified framework of gauge quantum field theories all of the fundamental forces of nature but gravity: the strong, weak, and electromagnetic interactions. This set of chapters thus provides both an introduction to the Standard Model, and to quantum field theory at an intermediate level. The union of the three chapters can be taken as a masters’ level course reference, and it requires as a prerequisite an elementary knowledge of quantum field theory, at the level of many introductory textbooks, such as Vol. 1 of Aitchison-Hey, or, at a somewhat more advanced level, Maggiore. The treatment is subdivided into three parts, each corresponding to an individual chapter, with more advanced field theory topics introduced along the way as needed. Specifically, this chapter presents the general structure of the Standard Model, its field content, and symmetry structure. This involves an introduction to non-abelian gauge theories both at the classical and quantum level. Also, it involves a discussion of spontaneous symmetry breaking and the Higgs mechanism, that play a crucial role in the architecture of the Standard Model, and their interplay with the quantization of gauge theories. Chapter 10.1007/978-3-030-38207-0_3 then presents the electroweak sector of the Standard Model. This requires introducing the concepts of CP violation and mixing, and of radiative corrections. Finally, Chap. 10.1007/978-3-030-38207-0_4 presents the strong sector of the theory, which requires a more detailed treatment of renormalization and the renormalization group.
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Altarelli, Guido, and Stefano Forte. "The Standard Model of Electroweak Interactions." In Particle Physics Reference Library. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-38207-0_3.

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AbstractIn this chapter, we summarize the structure of the standard EW theory and specify the couplings of the intermediate vector bosons W±, Z and of the Higgs particle with the fermions and among themselves, as dictated by the gauge symmetry plus the observed matter content and the requirement of renormalizability
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Martinez, Manel. "Precision Tests of the Standard Model." In Frontiers in Particle Physics. Springer US, 1995. http://dx.doi.org/10.1007/978-1-4899-1082-0_7.

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Bethke, S. "Standard Model Physics at Lep." In Particle Production Spanning MeV and TeV Energies. Springer Netherlands, 2000. http://dx.doi.org/10.1007/978-94-011-4126-0_14.

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Giudice, Gian Francesco. "Physics Beyond the Standard Model." In CP Violation in Particle, Nuclear and Astrophysics. Springer Berlin Heidelberg, 2002. http://dx.doi.org/10.1007/3-540-47895-7_8.

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Bambi, Cosimo, and Alexandre D. Dolgov. "The Standard Model of Particle Physics." In UNITEXT for Physics. Springer Berlin Heidelberg, 2015. http://dx.doi.org/10.1007/978-3-662-48078-6_3.

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Conference papers on the topic "Particle physics : Standard Model"

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Olive, Keith A. "Constraints on particle physics beyond the standard model from big bang nucleosynthesis." In Beyond the standard model. American Institute of Physics, 1997. http://dx.doi.org/10.1063/1.54473.

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Altarelli, Guido. "Electroweak Standard Model." In Corfu Summer Institute on Elementary Particle Physics. Sissa Medialab, 1999. http://dx.doi.org/10.22323/1.001.0001.

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Baer, Howard, and Marvin L. Marshak. "Physics Beyond the Standard Model." In 10TH CONFERENCE ON THE INTERSECTIONS OF PARTICLE AND NUCLEAR PHYSICS. AIP, 2009. http://dx.doi.org/10.1063/1.3293767.

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Strologas, John. "CMS RESULTS ON STANDARD MODEL PHYSICS." In Nineteenth Lomonosov Conference on Elementary Particle Physics. WORLD SCIENTIFIC, 2021. http://dx.doi.org/10.1142/9789811233913_0038.

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Goldhaber, Maurice. "Amending the Standard Model of Particle Physics." In The Dirac Centennial Symposium. WORLD SCIENTIFIC, 2003. http://dx.doi.org/10.1142/9789812703996_0014.

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Cvetič, M., and P. Langacker. "Testing the Standard Model." In 1990 Theoretical Advanced Study Institute in Elementary Particle Physics. WORLD SCIENTIFIC, 1991. http://dx.doi.org/10.1142/9789814540070.

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Matchev, Konstantin. "Physics Beyond the Standard Model at Colliders." In 2014 Theoretical Advanced Study Institute in Elementary Particle Physics. WORLD SCIENTIFIC, 2015. http://dx.doi.org/10.1142/9789814678766_0009.

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Shafi, Q. "Where does the Standard Model come from?" In PARTICLE PHYSICS AND COSMOLOGY: Third Tropical Workshop on Particle Physics and Cosmology - Neutrinos, Branes, and Cosmology. AIP, 2003. http://dx.doi.org/10.1063/1.1543499.

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Marciano, William J. "The Standard Model." In Proceedings of the 1993 Theoretical Advanced Study Institute in Elementary Particle Physics. WORLD SCIENTIFIC, 1994. http://dx.doi.org/10.1142/9789814503785_0001.

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Magnin, J. "High precision Standard Model Physics." In PARTICLES AND FIELDS. ASCE, 2009. http://dx.doi.org/10.1063/1.3131608.

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Reports on the topic "Particle physics : Standard Model"

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Samuel, S. Research in particle physics beyond the standard model. Office of Scientific and Technical Information (OSTI), 1990. http://dx.doi.org/10.2172/6058772.

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Catterall, Simon. Searching for Physics Beyond the Standard Model. Office of Scientific and Technical Information (OSTI), 2016. http://dx.doi.org/10.2172/1334516.

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Fileviez Perez, Pavel. New Theories for Physics beyond the Standard Model. Office of Scientific and Technical Information (OSTI), 2018. http://dx.doi.org/10.2172/1489691.

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Weiner, Neal Jonathan. New perspectives in physics beyond the standard model. Office of Scientific and Technical Information (OSTI), 2000. http://dx.doi.org/10.2172/767598.

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Broussard, Leah J. Physics Beyond the Standard Model through Neutron Beta Decay. Office of Scientific and Technical Information (OSTI), 2013. http://dx.doi.org/10.2172/1091859.

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Grossman, Y. Beyond the standard model with B and K physics. Office of Scientific and Technical Information (OSTI), 2003. http://dx.doi.org/10.2172/826523.

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Wells, James. Precision Higgs Boson Physics and Implications for Beyond the Standard Model Physics Theories. Office of Scientific and Technical Information (OSTI), 2015. http://dx.doi.org/10.2172/1183985.

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Luo, Mingxing. Future high precision experiments and new physics beyond Standard Model. Office of Scientific and Technical Information (OSTI), 1993. http://dx.doi.org/10.2172/10142441.

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Rizzo, Thomas G. Rare K Decays and New Physics Beyond the Standard Model. Office of Scientific and Technical Information (OSTI), 1998. http://dx.doi.org/10.2172/9920.

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Wang, Liantao. Exploring New Physics Beyond the Standard Model: Final Technical Report. Office of Scientific and Technical Information (OSTI), 2016. http://dx.doi.org/10.2172/1329001.

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