117 research outputs found

    Where Do the Leaders Trade?

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    In the present paper we concentrate on the interaction and sharing of the information between the organized markets in the Czech Republic. Moreover, the interesting principal-agent problem between the Prague Stock Exchange (PSE) and RMS (over the counter system) is studied to identify the leaders and followers in the information transmission process. The analysis shows that new information penetrates through the main market of the PSE, and that RMS dominates on the segments with lower liquidity. The leading position of the PSE was confirmed via VAR models. Basically, a shock on the PSE affected all segments of both markets, while a shock to any segment of the RMS had an effect (if any) only on the corresponding segment of the PSE. Because of missing links between some market segments, we conclude that the PSE-RMS do not behave as one integrated market yet.http://deepblue.lib.umich.edu/bitstream/2027.42/39438/3/wp48.pd

    Where Do the Leaders Trade?

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    In the present paper we concentrate on the interaction and sharing of the information between the organized markets in the Czech Republic. Moreover, the interesting principal-agent problem between the Prague Stock Exchange (PSE) and RMS (over the counter system) is studied to identify the leaders and followers in the information transmission process. The analysis shows that new information penetrates through the main market of the PSE, and that RMS dominates on the segments with lower liquidity. The leading position of the PSE was confirmed via VAR models. Basically, a shock on the PSE affected all segments of both markets, while a shock to any segment of the RMS had an effect (if any) only on the corresponding segment of the PSE. Because of missing links between some market segments, we conclude that the PSE-RMS do not behave as one integrated market yet.comovements of financial markets, emerging markets, Granger causality, integration of emerging markets

    Search for dark matter produced in association with bottom or top quarks in √s = 13 TeV pp collisions with the ATLAS detector

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    A search for weakly interacting massive particle dark matter produced in association with bottom or top quarks is presented. Final states containing third-generation quarks and miss- ing transverse momentum are considered. The analysis uses 36.1 fb−1 of proton–proton collision data recorded by the ATLAS experiment at √s = 13 TeV in 2015 and 2016. No significant excess of events above the estimated backgrounds is observed. The results are in- terpreted in the framework of simplified models of spin-0 dark-matter mediators. For colour- neutral spin-0 mediators produced in association with top quarks and decaying into a pair of dark-matter particles, mediator masses below 50 GeV are excluded assuming a dark-matter candidate mass of 1 GeV and unitary couplings. For scalar and pseudoscalar mediators produced in association with bottom quarks, the search sets limits on the production cross- section of 300 times the predicted rate for mediators with masses between 10 and 50 GeV and assuming a dark-matter mass of 1 GeV and unitary coupling. Constraints on colour- charged scalar simplified models are also presented. Assuming a dark-matter particle mass of 35 GeV, mediator particles with mass below 1.1 TeV are excluded for couplings yielding a dark-matter relic density consistent with measurements

    Measurement of the charge asymmetry in top-quark pair production in the lepton-plus-jets final state in pp collision data at s=8TeV\sqrt{s}=8\,\mathrm TeV{} with the ATLAS detector

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    Measurement of the W boson polarisation in ttˉt\bar{t} events from pp collisions at s\sqrt{s} = 8 TeV in the lepton + jets channel with ATLAS

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    Measurements of top-quark pair differential cross-sections in the eμe\mu channel in pppp collisions at s=13\sqrt{s} = 13 TeV using the ATLAS detector

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    Search for single production of vector-like quarks decaying into Wb in pp collisions at s=8\sqrt{s} = 8 TeV with the ATLAS detector

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