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Journal articles on the topic 'B mixing'

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1

Schneider, O. "$$B^0 - \bar B^0 $$ Mixing." European Physical Journal C 15, no. 1-4 (January 1, 2000): 618–24. http://dx.doi.org/10.1007/bf02683463.

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2

Mori, Joji, and Yutaka Kano. "ITEM RESPONSE THEORY USING A FINITE MIXTURE OF LOGISTIC MODELS WITH ITEM-SPECIFIC MIXING WEIGHTS ." Journal of the Japanese Society of Computational Statistics 26, no. 1 (2013): 17–38. http://dx.doi.org/10.5183/jjscs.1206001_199.

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3

Orr, Robert S. "Experimental Status of $B^0 \bar{B}^0$ mixing." International Journal of Modern Physics A 02, no. 04 (August 1987): 923–41. http://dx.doi.org/10.1142/s0217751x87000363.

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The experimental status of [Formula: see text] mixing is reviewed. The ARGUS experiment has recently reported evidence for substantial mixing in the [Formula: see text] system. UA1 has also reported evidence for mixing, but this cannot be unambiguously interpreted to yield a measurement of the amount of mixing in the [Formula: see text] system. The CLEO, Mk. II, and JADE experiments have all reported upper limits, and the MAC experiment a lower limit, which are compatible with the ARGUS and UA1 results.
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4

Tarantino, Cecilia. "B-meson mixing and lifetimes." Nuclear Physics B - Proceedings Supplements 156, no. 1 (June 2006): 33–37. http://dx.doi.org/10.1016/j.nuclphysbps.2006.02.119.

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5

Kuo, Wang-Chuang, Gongru Lu, Bing-Lin Young, and Zhongyuan Zhu. "B- mixing in technicolor theory." Physics Letters B 214, no. 2 (November 1988): 253–58. http://dx.doi.org/10.1016/0370-2693(88)91478-5.

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6

Piedra, J. "Precision B Lifetimes and B Mixing in CDF." Nuclear Physics B - Proceedings Supplements 142 (May 2005): 147–52. http://dx.doi.org/10.1016/j.nuclphysbps.2005.01.026.

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7

Hiorth, A., and J. O. Eeg. "Non-factorizable effects in $B - \overline{B}$ mixing." European Physical Journal C 32, S1 (March 27, 2003): s69—s90. http://dx.doi.org/10.1140/epjcd/s2003-01-006-4.

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8

HAGELIN, JOHN S., S. KELLEY, and TOSHIAKI TANAKA. "EXACT SUPERSYMMETRIC AMPLITUDE FOR $K^0 \hbox{-}\bar K^0$ AND $B^0 \hbox{-}\bar B^0$ MIXING." Modern Physics Letters A 08, no. 29 (September 21, 1993): 2737–45. http://dx.doi.org/10.1142/s0217732393003123.

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We present the most general supersymmetric amplitude for [Formula: see text] and [Formula: see text] mixing resulting from gluino box diagrams. We use this amplitude to place general constraints on the magnitude of flavor-changing squark mass mixings, and compare these constraints with theoretical predictions both in and beyond the Minimal Supersymmetric Standard Model.
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9

Kuo, Wang-chuang, Gong-ru Lu, Bing-lin Young, and Zhong-yuan Zhu. "$\rm B-\overline B$ Mixing in Dynamically Broken Theory." Communications in Theoretical Physics 11, no. 3 (April 1989): 307–17. http://dx.doi.org/10.1088/0253-6102/11/3/307.

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10

Altomari, T., L. Wolfenstein, and J. D. Bjorken. "CP-violating lepton asymmetry due to B-B¯ mixing." Physical Review D 37, no. 7 (April 1, 1988): 1860–64. http://dx.doi.org/10.1103/physrevd.37.1860.

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11

Borrelli, A., and C. Pittori. "Improved renormalization constants for B-decay and B mixing." Nuclear Physics B 385, no. 3 (October 1992): 502–24. http://dx.doi.org/10.1016/0550-3213(92)90056-h.

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12

Rescigno, Marco. "B meson mixing at CDF II." Nuclear Physics B - Proceedings Supplements 156, no. 1 (June 2006): 43–47. http://dx.doi.org/10.1016/j.nuclphysbps.2006.02.143.

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13

Eilam, G., and M. Gronau. "Loop-Induced CharmlessBDecays andB−B¯Mixing." Physical Review Letters 61, no. 3 (July 18, 1988): 286–89. http://dx.doi.org/10.1103/physrevlett.61.286.

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14

Choudhury, Debajyoti, and Utpal Sarkar. "B mixing, and quark mass matrices." Physics Letters B 217, no. 3 (January 1989): 341–46. http://dx.doi.org/10.1016/0370-2693(89)90878-2.

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15

Leonidopoulos, Chrisos. "$B^0\bar B^0$ mixing and CPT tests at Belle." International Journal of Modern Physics A 16, supp01a (October 2001): 401–3. http://dx.doi.org/10.1142/s0217751x01007042.

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We present preliminary results on the mixing parameter Δm and tests of the CPT symmetry in the [Formula: see text] mixing from the time evolution of dilepton events on the ϒ(4S) resonance. The report is based on 5.1 fb-1 of data collected by the Belle detector at KEKB. The preliminary study gives Δm = 0.456 ± 0.008 (stat) ± 0.030 (syst) ps -1. No evidence for CPT violation is found.
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16

HOU, WEI-SHU. "B′ MIXING AND THE PSEUDOSCALAR DECAY CONSTANT." International Journal of Modern Physics A 05, no. 17 (September 10, 1990): 3335–46. http://dx.doi.org/10.1142/s0217751x9000146x.

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The possibilities of B′ meson mixing is discussed. It is found that if fB′ is not much smaller than fπ, B's (or B'd) mixing is possible if |Vt′s Vt′b′/Vcb′| is large, but only for not too heavy b′ masses, e.g. below LEP I energies. The B'b meson will have large mixing for a broad range of parameters; however, it is hard to produce. The vector mesons (B′*) may exhibit mixing phenomena as well. A discussion of our present understanding of meson decay constants of a heavy-light system [Formula: see text] is given. Further efforts on this problem is needed, which will have an impact on our understanding of B mixing as well.
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17

Lin, Cheng-Ju S. "Bs MIXING AT SLD." International Journal of Modern Physics A 16, supp01b (September 2001): 616–18. http://dx.doi.org/10.1142/s0217751x01007613.

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We set a preliminary 95% C.L. exclusion on the oscillation frequency of [Formula: see text] mixing using a sample of 400,000 hadronic Z0 decays collected by the SLD experiment at the SLC during the 1996-98 run. Three analyses are presented in this paper. The first analysis partially reconstructs the [Formula: see text] by combining a fully reconstructed Ds with the remaining charged B decay tracks. The second analysis selects a sample of events with a partially reconstructed charm vertex and a lepton track. The third naalysis reconstructs b-hadrons topologically and exploits the b→c cascade charge structure to determine the flavor of the b-hadron at decay. All three analyses take advantage of the large forward-backward asymmetry of the polarized [Formula: see text] decays and information in the hemisphere opposite to the reconstructed B vertex to determine the b-hadron flavor at production. The results of the three analyses are combined to exclude the following values of the [Formula: see text] oscillation frequency: Δms<7.6 ps-1 and 11.8<Δms<14.8 ps-1 at the 95% confidence level.
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18

Tai-Fu, Feng, Li Xue-Qian, Ma Wen-Gan, and Zhang Feng. "SUSY-QCD Corrections to $B^0-\bar B^0$ Mixing." Communications in Theoretical Physics 35, no. 6 (June 15, 2001): 689–92. http://dx.doi.org/10.1088/0253-6102/35/6/689.

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19

Dass, G. V., and K. V. L. Sarma. "Two-particle correlations and $B^0\overline{B}^0$ mixing." European Physical Journal C 5, no. 2 (August 1998): 283–86. http://dx.doi.org/10.1007/s100529800854.

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20

Grace, J. M., and P. F. Dunn. "Electrohydrodynamic droplet mixing." Journal of Aerosol Science 23 (January 1992): 213–16. http://dx.doi.org/10.1016/0021-8502(92)90387-b.

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21

Schröder, Henning. "mixing — A review." Nuclear Physics B - Proceedings Supplements 13 (February 1990): 276–80. http://dx.doi.org/10.1016/0920-5632(90)90070-b.

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22

Lee, Dae-Sung, Hyo-Geun Kim, Man-Yeong Ha, Yong-Ho Park, and Ik-Min Park. "Mixing Effect by the Geometry of Static Mixer with Turbulent In-Situ Mixing Process." Transactions of the Korean Society of Mechanical Engineers B 29, no. 12 (December 1, 2005): 1307–12. http://dx.doi.org/10.3795/ksme-b.2005.29.12.1307.

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23

Russ, James S. "B MIXING and FLAVOR TAGGING at CDF." International Journal of Modern Physics A 20, no. 15 (June 20, 2005): 3518–21. http://dx.doi.org/10.1142/s0217751x0502687x.

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The CDF Collaboration has made a preliminary measurement of B d mixing as a first step toward measuring mixing in the B s system. Flavor tagging using opposite-side jets and muons as well as same-side tagging schemes have been applied. Results agree well with precise results from the B -factories. We use these results to estimate CDF's B s mixing range using the present data set (~250pb-1) and extrapolate to the potential from larger data sets in future running.
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24

Balogh, J., D. Kaptás, L. Bujdosó, and I. Vincze. "Interface mixing in Fe–B–Ag multilayers." Hyperfine Interactions 191, no. 1-3 (April 1, 2009): 129–34. http://dx.doi.org/10.1007/s10751-009-9963-2.

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25

Melikhov, Dmitri, and Nikolai Nikitin. "Non-factorizable effects in the B– mixing." Physics Letters B 494, no. 3-4 (November 2000): 229–36. http://dx.doi.org/10.1016/s0370-2693(00)01165-5.

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26

Burdman, Gustavo, Kenneth Lane, and Tonguç Rador. "B̄–B mixing constrains topcolor-assisted technicolor." Physics Letters B 514, no. 1-2 (August 2001): 41–46. http://dx.doi.org/10.1016/s0370-2693(01)00587-1.

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27

Barr, S. M., and I. Dorsner. "Atmospheric neutrino mixing and b–τ unification." Physics Letters B 556, no. 3-4 (March 2003): 185–91. http://dx.doi.org/10.1016/s0370-2693(03)00132-1.

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28

Gronau, Michael, and Jonathan L. Rosner. "B decays dominated by ω–ϕ mixing." Physics Letters B 666, no. 2 (August 2008): 185–88. http://dx.doi.org/10.1016/j.physletb.2008.07.016.

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29

Vesterinen, Mika. "CP Violation in B Mixing and Decays." EPJ Web of Conferences 49 (2013): 13005. http://dx.doi.org/10.1051/epjconf/20134913005.

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30

Goryo, Jun, and Kenzo Ishikawa. "E-B Mixing in T-Violating Superconductors." Journal of the Physical Society of Japan 67, no. 9 (September 15, 1998): 3006–9. http://dx.doi.org/10.1143/jpsj.67.3006.

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31

Franzini, P. "B? mixing: A review of recent progress." Physics Reports 173, no. 1 (February 1989): 1–62. http://dx.doi.org/10.1016/0370-1573(89)90132-4.

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32

Decamp, D., B. Deschizeaux, C. Goy, J. P. Less, M. N. Minard, R. Alemany, J. M. Crespo, et al. "Measurement of B- mixing at the Z." Physics Letters B 258, no. 1-2 (April 1991): 236–46. http://dx.doi.org/10.1016/0370-2693(91)91239-r.

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33

Jaros, John A. "B lifetimes and mixing with the SLD." Nuclear Physics B - Proceedings Supplements 50, no. 1-3 (June 1996): 71–76. http://dx.doi.org/10.1016/0920-5632(96)00368-4.

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34

RIZZO, THOMAS G. "ORDINARY-EXOTIC QUARK MIXING." International Journal of Modern Physics A 04, no. 20 (December 1989): 5401–9. http://dx.doi.org/10.1142/s0217751x89002302.

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We reconsider the possibility that a new Q = −1/3, vector-like, isosinglet quark, h, which can appear in superstring-inspired E6 models, may have appreciable mixing with the usual bottom (b) quark. Using the most recent data on the Kobayashi-Maskawa mixing matrix, ∊, ∊′/∊, [Formula: see text], and [Formula: see text] mixing, we analyze the influence of h on rare processes, e.g., [Formula: see text], b → sγ, and D → μ+μ−.
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35

AHN, Y. J. "$B' - \bar B'$ MIXING IN THE SUPERSYMMETRIC FOUR-GENERATION STANDARD MODEL." International Journal of Modern Physics A 06, no. 29 (December 10, 1991): 5307–25. http://dx.doi.org/10.1142/s0217751x91002495.

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We calculate the box diagrams of the [Formula: see text] system which involve W boson, charged Higgs boson or gluino with nonvanishing external quark momenta in the minimal supersymmetric four-generation standard model. We find that the contribution of the gluino box diagram is negligible compared to those of other diagrams, and that the charged Higgs box diagram dominates over the W boson box by a factor of 2–5 for most of the parameter ranges. This means that [Formula: see text] mixing in this model will be much bigger than that of the minimal standard model. When the ratio v2/v1 of the vev’s of the two neutral Higgs fields is smaller than ~0.6 or bigger than ~30, the dominance of the charged Higgs box becomes more significant.
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36

Biino, C., and S. Palestini. "Mixing andCP violation in the $$B^0 - \bar B^0 $$ systemssystems." La Rivista del Nuovo Cimento 14, no. 2 (February 1991): 1–23. http://dx.doi.org/10.1007/bf02813497.

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37

YU, Peng, Haruki MATSUURA, and Akiko ASADA. "Designing a Robust Mixed-Model Assembly Line Appropriate for Mixing Ratio Variations ." Innovation and Supply Chain Management 8, no. 2 (2014): 74–79. http://dx.doi.org/10.14327/iscm.8.74.

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38

KIMURA, KUMIKO, SACHIKO KOKUBO, ATSUKO NITTA, and AKIO SUGAMOTO. "$B^0 - \bar{B}^0$ MIXING IN A MINIMAL DYNAMICALLY BREAKING MODEL WITH TOP QUARK CONDENSATION." International Journal of Modern Physics A 07, no. 06 (March 10, 1992): 1097–110. http://dx.doi.org/10.1142/s0217751x9200048x.

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The [Formula: see text] mixing is studied through numerical estimation of box diagrams in a minimal dynamically breaking model with [Formula: see text] condensation. The calculation is performed in the bubble approximation in which the phenomenological introduction of the Kobayashi-Maskawa matrix is to be consistent with the gauge ivnariance. The value obtained for the mixing parameter is at most by a considerable percentage smaller than the usual standard model calculation at one loop.
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39

Martínez-Vidal, F. "Measurement of B mixing and oscillations at LEP." Nuclear Physics B - Proceedings Supplements 65, no. 1-3 (June 1998): 199–204. http://dx.doi.org/10.1016/s0920-5632(97)01001-3.

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40

Baek, Seungwon, Jong Hun Jeon, and C. S. Kim. "Bs0–B¯s0 mixing in leptophobic Z′ model." Physics Letters B 641, no. 2 (October 2006): 183–88. http://dx.doi.org/10.1016/j.physletb.2006.08.041.

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41

Beneke, M., G. Buchalla, and I. Dunietz. "Mixing-induced CP asymmetries in inclusive B decays." Physics Letters B 393, no. 1-2 (February 1997): 132–42. http://dx.doi.org/10.1016/s0370-2693(96)01648-6.

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42

Goto, Toru, Noriaki Kitazawa, Yasuhiro Okada, and Minoru Tanaka. "Model-independent analysis ofB−B¯mixing andCPviolation inBdecays." Physical Review D 53, no. 11 (June 1, 1996): 6662–65. http://dx.doi.org/10.1103/physrevd.53.6662.

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43

PAULINI, MANFRED. "B LIFETIMES, MIXING AND CP VIOLATION AT CDF." International Journal of Modern Physics A 14, no. 18 (July 20, 1999): 2791–886. http://dx.doi.org/10.1142/s0217751x99001391.

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We review the status of bottom quark physics at the CDF experiment. The measurements reported are based on about 110 pb -1 of data collected at the Fermilab Tevatron [Formula: see text] Collider operating at [Formula: see text]. In particular, we review results on B hadron lifetimes, measurements of the time dependence of [Formula: see text] oscillations, and a search for CP violation in [Formula: see text] decays. Prospects for future B physics at CDF in the next run of the Tevatron Collider, starting in the year 2000, are also presented.
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44

Ruiz, A. "CP violation and B mixing in CDF-II." Nuclear Physics B - Proceedings Supplements 93, no. 1-3 (March 2001): 356–61. http://dx.doi.org/10.1016/s0920-5632(00)01135-x.

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45

Trine, Stéphanie, Susanne Westhoff, and Sören Wiesenfeldt. "Probing Yukawa unification with K and B mixing." Journal of High Energy Physics 2009, no. 08 (August 4, 2009): 002. http://dx.doi.org/10.1088/1126-6708/2009/08/002.

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46

Schwarzschild, Bertram. "Neutral B Mesons Show Surprisingly Large Flavor Mixing." Physics Today 40, no. 8 (August 1987): 17–20. http://dx.doi.org/10.1063/1.2820139.

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47

CIBINETTO, GIANLUIGI. "CHARM MIXING AND CP VIOLATION AT B-FACTORIES." International Journal of Modern Physics: Conference Series 35 (January 2014): 1460413. http://dx.doi.org/10.1142/s201019451460413x.

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CP violation in charm decays is expected to be very small in the Standard Model, at the level of 0.1% or less. A sizable excess of CP violation with respect to the Standard Model predictions could be a signature of new physics. We report on recent searches for CP violation in charm meson decays at BABAR and Belle experiments. In particular we report a lifetime ratio analysis of D0 → K+K−, π+π− with respect to D0 → K−π+ decays, which is sensitive to [Formula: see text] mixing and CP violation. We report also on searches for CPV in the 3-body D+ → K+K−π+ decay and for decay modes with a [Formula: see text] in the final state, such as [Formula: see text].
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48

Lipkin, Harry J., and A. I. Sanda. "Isospin invariance, CP violation and B−B̄ mixing." Physics Letters B 201, no. 4 (February 1988): 541–45. http://dx.doi.org/10.1016/0370-2693(88)90615-6.

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49

Chkareuli, J. L. "B meson mixing and low-energy dynamical flavour." Physics Letters B 246, no. 3-4 (August 1990): 498–502. http://dx.doi.org/10.1016/0370-2693(90)90637-l.

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50

Allés, Bartolomé. "Vector-like fermions could enhance the B− mixing." Physics Letters B 221, no. 3-4 (May 1989): 343–48. http://dx.doi.org/10.1016/0370-2693(89)91721-8.

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