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Showing posts with label long-lived. Show all posts
Showing posts with label long-lived. Show all posts

Friday, 21 August 2015

Friday wrap-up: 3/fb, ATLAS on Higgs LFV decays...

Wherein I list some (mostly) recent happenings, ramble a bit, and provide links, in an order roughly determined by importance and relevance to particle physics. Views are my own. Content very definitely skewed by my own leanings and by papers getting coverage, and it may not even be correct. It is a blog after all...

FYI, I've posted a list of recommended (active) high energy physics news and blog links in the sidebar, also here for those using a reader: A Perfectly Formed Puddle, A Quantum Diaries Survivor, ATLAS Blog, ATLAS Briefings, ATLAS News, Backreaction, CERN Press Releases, CERN Updates, CMS Blog: Cylindrical Onion, CMS Physics News, Collider Blog, Ellipsix, Interactions.org, Life and Physics, Life on the Lattice, Looking Inside the SM, Nautilus: Particle Physics, Neutrino Blog, Not Even Wrong, Of Particular Significance, PhysicsMatt, Preposterous Universe, Quanta Magazine: Physics, Quantum Diaries, RWTH Aachen, Resonaances, Tim Head, Transcyberphysix, symmetry magazine, the reference frame.

  • The XXVII International Symposium on Lepton Photon Interactions at High Energies (Lepton Photon 2015) has been going this week (indico/twitter). We heard from Mike Lamont about LHC performance; multiple commissioning issues (electron cloud, UFOs, ULO, ...), none of which are expected to be long term, mean that predicted integrated luminosity for ATLAS/CMS in 2015 is now at ~3/fb. [See also a brief story at New Scientist].
  • Following up the CMS 2.4σ excess from February, ATLAS on Monday placed their search for LFV Higgs decays in the $\mu\tau_{had}$ channel on the arXiv. Their result is consistent with zero, but also consistent with CMS. Their best fit is a $\mathcal{B}=(0.77\pm 0.62)\%$, compared to $\mathcal{B}=(0.84^{+0.39}_{-0.30})\%$ from CMS. One can see that the CMS search is more sensitive; this is likely driven by the fact that CMS also included the $\mu\tau_e$ channel. Do ATLAS have plans to look at this channel soon as well?
  • A few weeks ago we mentioned that LHCb announced preliminary results in a search for displaced light scalar bosons. The preprint is on the arXiv now, which allowed me to scrape their data points and reinterpret their branching limits for the real singlet scalar portal. For interest, the result is below in orange, quite similar to the approximate plot from that previous blog post (more information there). Anyway, LHCb have done a great job excluding parameter space!


  • The Dark Energy Survey (DES) has discovered eight new dwarf galaxy candidates (arXiv/press release), to add to the nine they discovered earlier this year. The sky is filling with satellites...


    Now taking bets on which one has an excess of gamma rays consistent with dark matter annihilation... 
  • On that note, the first paper pointing out the gamma ray excess in Reticulum II (on the day of the first DES dwarf galaxy candidates announcement) was published in Physical Review Letters this week. Tracy Slatyer has a Viewpoint here.
  • Mary K. Gaillard has a book out: A Singularly Unfeminine Profession: One Woman's Journey in Physics. There's a review on nature.com from Val Gibson.

Friday, 31 July 2015

Friday wrap-up: diboson excess, EPS-HEP, XENON100...

Wherein I list some (mostly) recent happenings, ramble a bit, and provide links, in an order roughly determined by importance and relevance to particle physics. Views are my own. Content very definitely skewed by my own leanings and by papers getting coverage, and it may not even be correct. It is a blog after all...

I am back from a six week tour of Europe (Greece for Planck conference, UK for seminar talks, Italy for ICTP Summer School and talk in Rome) followed by a proper two week holiday (Hawai'i for lava and turtles)... hence the inactivity here. In my absence, the diboson excess has been hot, the first 13 TeV results have been already trickling out, and in other good news it is 92% probable we are even doing something "worthwhile" -- hey, that's almost 2σ!

Let me attempt an incomplete summary of the last month...

  • It's been almost two months now since the ATLAS diboson excess hit the arXiv (see Resonaances for a description), and many theorists/phenomenologists have now had the time to digest and interpret the result. The paper has been cited 37 times, and I count 31 dedicated studies. Let's take a stroll through them in the hopes of learning (in some Bayesian sense -- of course you will have to unweight for selection bias) what is a likely explanation if the signal persists... [This is only a quick survey and probably not completely accurate; send me a message or leave a comment if you believe I've done any of these papers a grave injustice...]

    Paper Authors Candidate Comment
    1507.07406 Faraggi, Guzzi $Z', W'$ String inspired GUTs
    1507.07102 Lane, Prichett $\rho, a_1$ Vector or axial triplet in composite Higgs
    1507.06499 Fritzsch $Z^*, W^*$ Excited states of composite weak bosons
    1507.06312 Kim et al. - EFT study
    1507.06018 Bian et al. $\rho$ Vector triplet in composite Higgs
    1507.05299 Anchordoqui et al. $Z'$ Leptophobic, string inspired
    1507.05310 Chao $H$ 2HDM
    1507.05028 Omura et al. $H$ 2HDM
    1507.04431 Chen, Nomura $H, H^\pm$ 2HDM
    1507.03553 Sanz Exotic glueballs Perhaps within composite Higgs framework
    1507.03428 Fukano et al. Dilaton e.g. scale-invariant generic heavy vector triplet model
    1507.03098 Cacciapaglia et al. Pseudoscalar Weak singlet with Wess-Zumino-Witten (effective) couplings
    1507.02483 Chiang et al. Composite Spin-0 Hidden confining gauge theory coupled to SM via D5 operators
    1507.01923 Dobrescu, Liu $W'$ $SU(2)_L\times SU(2)_R\times U(1)_{B-L}$ model
    1507.01638 Allanach et al. $Z', W'$ (motivated by EFT) within $SU(2)_L$ or $SU(2)_R$ vector triplet
    1507.01914 Carmona et al. Vector resonances Composite Higgs (non-custodial)
    1507.01681 Abe et al. Vector resonances Partially composite [G221 model with one dynamical SU(2)]
    1507.01584 Heeck, Patra $W_R$ $SU(2)_L\times SU(2)_R\times U(1)_{B-L}$
    1507.01185 Abe et al. $Z', W'$ G(221) 'three site moose model' e.g. KK excitations of weak bosons
    1507.00900 Cacciapaglia, Frandsen - Unitarity study
    1507.00268 Cao et al. $Z', W'$ In G221 and G331 models
    1507.00013 Brehmer et al. $W_R$ $SU(2)_L\times SU(2)_R\times U(1)'$
    1506.08688 Thamm et al. Composite $Z', W'$ Within vector triplet
    1506.07511 Gao et al. $W_R$ $SU(2)_L\times SU(2)_R\times U(1)_{B-L}$
    1506.06767 Alves et al. $Z'$ $U(1)_{d-u}$
    1506.06739 Aguilar-Saavedra $(VVX)$ Triboson final state mimicking a VV resonance
    1506.06736 Dobrescu, Liu $W'$ $SU(2)_L\times SU(2)_R\times U(1)_{B-L}$ model
    1506.06064 Cheung et al. $W'$ $SU(2)_L\times SU(2)_R\times U(1)'$
    1506.04392 Franzosi et al. Composite $Z', W'$ Within vector triplet
    1506.03931 Hisano et al. $Z'$ Leptophobic
    1506.03751 Fukano et al. Technirho Vector triplet within walking technicolour (composite) model

    Looks like the most popular explanation is a $W'$ within an extra vector triplet, either arising from an extended gauge sector (minimally a G221 model) or as a low-lying composite state. Less popular, but still well represented, are explanations via a leptophobic $Z'$ or a heavy Higgs in a 2HDM with the second Higgs doublet coupling strongly to the first generation quarks. A notable absence is any (minimal) SUSY explanation.

    Many (but certainly not all) of these models tend to predict observable $WZ$ and $WW$ resonances ($ZZ$ is difficult for a spin-1 due to Landau-Yang), usually in conjunction with $Wh$ (just by naive equivalence theorem). These are channels to keep an eye on during Run II.
  • The first 13 TeV results are already being released! E.g. check out all-these ATLAS notes which have appeared in the last couple of weeks (just in time for EPS-HEP). For the record, CMS had the first as far as I know (charged hadron pseudorapidity distributions).

    In particular, ATLAS released a plot (below) which beautifully agrees with the standard model as per usual: top quark pairs at 13 TeV just where they're supposed to be!


  • The EPS-HEP conference ran this week from 22-29 July. The slides are available on Indico here. I was impressed by the live webcast of plenary sessions, the daily newsletters, and the well-used hashtag which almost made it possible to attend the whole conference online. Some highlights for me...
    • LHCb presented preliminary results in their search for long-lived light scalars (see this talk [pdf] from Andrea Mauri) in $B\to K^* s \to K^*(\mu^+\mu^-)_{displaced}$ decays; they see no significant signal above background. Last year I gave a talk to the LHCb rare decays group motivating such a search, so it is very exciting to now see results! Below are the limits they set on the $B$ meson branching fraction for different lifetimes.


      The simplest model which can give this phenomenology is the standard model plus a real singlet scalar (Higgs portal), as described in an earlier post here. The pertinent free parameters of that model are the light scalar mass and a mixing parameter, and this new result will constrain that parameter space. To get a feel for how much, I picked off the limit lines (sans the statistical fluctuations which can be scraped from the vector plot once the preprint is out) and translated them. [Here I am taking data from an unpublished plot presented at a conference... have I learned nothing from BICEP?] Anyway, the exclusion result is shown in orange in the following figure (the grey shaded regions indicate lifetimes of 0.1mm, 1mm, 1cm,... for more details on the plot see here):


      Interestingly, LHCb competes with the BaBar exclusion curve (grey) even for very low masses. It was not obvious at all that LHCb would be able to do this, since for these low masses the long-lived light scalars are very boosted and many will escape their detector. Looking forward to reading the preprint when it is out!
    • Two months ago we mentioned the new LHCb result on $R(D^*)=Br(B\to D^*\tau\nu)/Br(B\to D^*\mu\nu)$. The heavy flavour averaging group (HFAG) have now released their combination average; it's 3.9σ from the SM. (See talk from Marta Calvi [pdf]).
  • LHCb published in Nature Physics their exclusive measurement of $|V_{ub}|$ in $\Lambda_b$ decays, an important result in resolving the $V_{ub}$ puzzle. You can read the LHCb release here. It has been on the arXiv since April, so it's not a "hot off the press" result, nevertheless it is now for some reason being picked up by various news sources as a blow for supersymmetry (see-these-four-examples). Good to know that if we see nothing in LHC Run II there is at least one way to sell the null result to the media... even though as a scientist such a result would be extremely interesting!
  • LHCb have claimed the discovery of pentaquarks (paper here and EPS-HEP slides from Sheldon Stone here [pdf]), a $J/\psi p$ resonance in $\Lambda_b\to J/\psi p K$ decays.


    This comes 12 years after SPring-8 first announced (the later ruled out) evidence for such states. One cool thing about the LHCb result is that you can even see it by eye in the Dalitz plot (below as line in $m^2_{J/\psi p}$); the LHCb team cannot account for it with any known $\Lambda^*$ resonance or interference. The best fit is in fact found by including two new $uudc\bar{c}$ pentaquark states.


    There's a good Quantum Diaries post from Adam Davis about it here (see also nature news, symmetry, Jon Butterworth, and Tommaso Dorigo + comments).
  • This week the XENON Collaboration released an arXiv paper, "Search for Event Rate Modulation in XENON100 Electronic Recoil Data". They see a 2.8σ annual modulation signal in low energy single scatterings with a phase consistent with DAMA/LIBRA (!) ... and then pour a serious amount of cold water on the measurement. In order of decreasing temperature, here are the buckets they use: (1) There is no globally significant modulation in the data. (2) The phase of the annual modulation signal deviates from that expected for a standard dark matter halo by 2.5σ. (3) The amplitude is much lower than that expected if DAMA/LIBRA was correct. (4) A 2.5σ annual modulation signal is seen in low energy multiple scatterings as well.

    Some comments now... Bucket (1) is lukewarm; we should only be interested in annual modulation for a dark matter hypothesis and there is no look-elsewhere effect. For buckets (2) and (3) let's look first at their Figure 4.


    Bucket (2) is room temperature. The phase of an annual modulation hypothesis is found to be inconsistent from the standard stationary halo expectation by 2.5σ. However, it is plain to see that it is consistent with the DAMA/LIBRA phase. If there is some bulk rotation/movement in the halo, perhaps this can be explained? Bucket (3) is certainly chilly, but there are two things to keep in mind. The amplitude is calculated for a particular model (WIMP-electron scattering with axial vector coupling), and the two experiments have very different targets (NaI crystal versus Xenon). Unfortunately we cannot compare apples with apples here and a conversion must take place, for which there is more information in a second XENON paper. For the last bucket let's look at their Figure 3.


    Bucket (4) is potentially large and freezing; a dark matter explanation should not induce an annual modulation in low energy multiple scatterings, and it appears to at 2.5σ. However, I can find nowhere in the paper where they quote the phase of this modulation! If indeed the phase is consistent with the single scattering phase, then this would be evidence for a background origin. Note that XENON100 is in Gran Sasso, as is DAMA/LIBRA, thus such a measurement would have implications for the DAMA/LIBRA result. So, XENON, what is the phase of the annual modulation in low energy multiple scatterings?
  • Those following this blog will know we have been documenting somewhat the status of the galactic central excess of gamma rays seen in the Fermi data. The excess (over standard astrophysical backgrounds) is undeniably there, but the question of course to be answered is its origin: dark matter, or some (not yet fully understood) baryonic astrophysics? The most popular explanation in the latter set is by some population of millisecond pulsars (i.e. point sources) [see Sabine Hossenfelder's post here]. Recently, some-studies have analysed the Fermi data to see if the excess prefers a diffuse (e.g. dark matter) or point source origin. Both of the studies find a preference for a point source origin...

    This morning I stumbled upon a (days old) CERN Seminar from Tracy Slatyer, who may be in a unique position to comment on the issue, being an author of one of those new studies, as well as an author on one of the well cited papers arguing a dark matter interpretation. Below is the conclusion slide from the Slatyer talk, where it is interesting to see that the game has changed, with preference now for a point source origin over dark matter.


    This is science in action; it sounds like some very interesting new astrophysics will be revealed by the time the book is closed on this excess, and this should be celebrated.
  • The PASCOS conference happened at ICTP at the end of last month; a very many interesting plenary talks (~30 mins each) are available as videos and worth a peruse.
  • Frank Wilczek's new book on beauty in nature is out. See Peter Woit's blog for a good summary and further links.
  • Over the coming weeks, Stephen Hawking will be answering (some) submitted questions on artificial intelligence in a reddit AMA.
  • The Kepler mission has discovered the first ~Earth-sized planet within the habitable zone of a Sun-like star [see xkcd]. There has been significant hype; for a no-nonsense take see Bad Astronomy. You can read the actual paper [pdf] here; they state, "The likelihood that this planet has a rocky composition lies between 49% and 62%."
  • And while I was away, New Horizons flew by Pluto! In the tradition of ending each post with stunning shots of space, this probably takes the cake: the money shot in natural colour, a surface shot, and the farewell. Truly magnificent. (For more information, Nat Geo has a good story).

Friday, 8 May 2015

Friday wrap-up: Collisions, displaced Higgs decays...

Wherein I list some (mostly) recent happenings, ramble a bit, and provide links, in an order roughly determined by importance and relevance to particle physics. Views are my own. Content very definitely skewed by my own leanings and by papers getting coverage, and it may not even be correct. It is a blog after all...

  • The LHC has seen collisions at injection energy, 450 GeV per beam. There's a little more you can read at symmetry magazine; still plenty of calibration to be done. Here's one of the events in the ATLAS detector, a far cry from the messy environment we'll see at 13 TeV...


    As well, CMS has a visualisation of one of their events on YouTube.
  • Pheno 2015 happened this week in Pittsburgh. Definitely worth perusing the interesting talks on the indico page.
  • I uploaded an arXiv preprint on Monday, "Constraining portals with displaced Higgs decay searches at the LHC." One of the primary purposes of the LHC is to study the properties of the newly discovered Higgs boson in great detail. Even though we have now measured its mass to within ~0.2%, it is still possible that it is decaying to exotic particles 20% of the time! So it is clearly sensible to search for exotic Higgs decays. I concentrated on one possibility: the decay to a pair of long-lived particles which each subsequently decay around 1 metre from the beam pipe...

    Such long-lived particles are well-motivated; typically all you need is an approximate symmetry (which is by definition technically natural à la 't Hooft) in your model which if exact would result in a stable particle. This appears to be coming into vogue at the moment as we see natural SUSY being pushed into compressed and long-lived areas of parameter space; for example, if you violate R-parity just slightly then the would-be neutralino dark matter candidate can become long-lived. I became interested in this sort of phenomenology from a much simpler standard model (SM) extension: by a real singlet scalar field $S$. In that case you can write down a potential term $\zeta \phi^\dagger\phi S^2$ which mixes the Higgs boson and a new mass eigenstate $s$ after symmetry breaking. As $\zeta\to 0$ the $S$ field decouples from the SM and becomes stable, so for small $\zeta$ it is long-lived. It is possible that the $S$ also directly couples to some dark sector uncharged under the SM forces, so-called Higgs portal models. Anyway, the Higgs we know and love can decay to two $s$ particles which, in the simplest case, decay to SM particles somewhere in the middle of the detector. Else the $s$ could have some complex cascade decay into hidden sector states which subsequently decay in the middle of the detector (often called hidden valley models).

    You can do a similar thing with a massive dark photon, the so-called vector portal. In fact, the possibilities are many and varied, which presents two complementary challenges: how do collaborations present their results in the most model-independent way possible? and how do phenomenologists reinterpret the results in the context of their own models? The point of my paper was to explore these questions...

    So I had a go at reinterpreting two searches already performed by ATLAS, in a very simple way: by running Monte Carlo simulations, calculating decay probabilities, and folding in the provided particle reconstruction efficiencies as a function of the decay distance of the long-lived particles. As phenomenologists we are reliant upon these provided efficiencies, as there is no tool available to reliably calculate them ourselves. As we move on the journey which constitutes the bulk of the paper, we learn some valuable life lessons about what efficiency table information the collaborations could provide to make the life of phenomenologists wanting to reinterpret their searches (and there are a few of us out there!) much easier. Those life lessons are summarised in the conclusion.

    As well, at the end of the day I was able to make my own contribution to the portal model exclusion space, with the pretty pictures below...


  • There's an article at Nautilus on "The Admiral of the String Theory Wars" AKA Peter Woit. As might be intuited, the article describes the string theory wars around the time when Woit released his book, "Not Even Wrong." It touches on his arXiv trackback controversy and feud with Polchinski. (Also I learned that Motl once compared Woit to bin Laden...). Woit said a few words about the article on his blog. There is also some discussion there on the following...
  • You should be able to find Amanda Peet's hour long Perimeter Institute public lecture on string theory on YouTube within a day or so.

Friday, 27 February 2015

Friday wrap-up: leptogenesis, displaced vertices, mass extinctions, data scraping...

Wherein I list some (mostly) recent happenings, ramble a bit, and provide links, in an order roughly determined by importance and relevance to particle physics.
  • Doing the rounds lately has been a new mechanism for leptogenesis: (post-inflationary) Higgs relaxation leptogenesis. APS has a synopsis and Scientific American has a story (never let difficult physics stop a title containing both "Higgs" and "antimatter"). Kusenko, Pearce and Yang achieve the observed matter-antimatter asymmetry using this mechanism in only the minimal Type I see-saw model. The Type I see-saw is a very nice model for neutrino masses, and it can explain leptogenesis via the Fukugita-Yanagida mechanism (1986), but it is not possible to do both without ceding naturalness. For me, this provokes an interesting question: is there any way of doing natural leptogenesis in the Type I see-saw without adding new particles? The only ways I am aware of are resonant leptogenesis and neutrino oscillations. This could be another (and would be a nice selling point for the mechanism) if it can work with $M_N\lesssim 10^7$ GeV... but this requires further thought and investigation; in the examples they give (Figure 2) the right-handed neutrinos are much heavier than this requirement.
  • Tom Kibble's recollections on the history of electroweak symmetry breaking are online. I don't think there is anything in there that is particularly new, but it is a nice short document written at an accessible level. Here is an excerpt on the three-year gap between the Higgs mechanism and the electroweak theory:

    The 1964 papers [on avoiding the Goldstone theorem] from the three groups attracted very little attention at the time. Talks on the subject were often greeted with scepticism. By the end of that year, the mechanism was known, and Glashow’s (and Salam and Ward’s) SU(2)×U(1) model was known. But, surprisingly perhaps, it still took three more years for anyone to put the two together. This may have been in part at least because many of us were still thinking primarily of a gauge theory of strong interactions, not weak... A unified gauge theory of weak and electromagnetic interactions of leptons was first proposed by Weinberg later that year. Essentially the same model was presented independently by Salam in lectures he gave at Imperial College in the autumn of 1967 — he called it the electroweak theory... Weinberg and Salam both speculated that their theory was renormalizable, but they could not prove it... Renormalizability was finally proved by a young student, Gerard ’t Hooft, in 1971, a real tour de force using methods developed by his supervisor, Martinus Veltman.
  • I'm seeing a bunch of articles linking mass extinctions to disk dark matter again this week. The origin appears to be a press release from NYU on a paper by a Professor of Biology who appears to be an expert in extinction events. You can read it in full for free here. The paper, which is in a monthly notices journal, seems to me to be largely a review, perhaps with the new suggestion of linking the work of Abbas-Abbas on clumpy dark matter capture causing large-scale volcanism with the Randall-Reece disk dark matter scenario to explain the ~35 Myr period in mass-extinction events. For that reason it is disappointing to not see any reference to those authors in the press release or the related articles circling around. Maybe as a consolation, given the buzz around those articles, it is clear that Randall's new book should sell by title alone!
  • A new arXiv preprint shows that in elliptical galaxies, the central stellar velocity dispersion (a surrogate for the central black hole mass) is more tightly correlated to the total gravitating mass of the galaxy rather than the stellar mass, connecting central black holes of elliptical galaxies with their dark matter halo.
  • A separate preprint has observed nearly-spherical streams of ionized gas winds coming from an active central black hole. Bad Astronomy has a nice article about it. The winds transfer energy into the galaxy well beyond the gravitational influence of the black hole, affecting the galaxy's evolution.
  • I learned this week that it is actually fairly easy to extract data from a vector plot. This is a common task for the phenomenologist so I will explain two examples below for reference, since I haven't seen it written anywhere in detail; skip this point if you're not interested.

    Usually, if I need to scrape a plot (often exclusion curves) I just use WebPlotDigitizer, however there are some plots with many points or indiscernible lines which are not amenable to that method. For example, the BaBar limit on dark photons is a nightmare:


    But it is a vector plot, so in principle it should be possible to extract the information on how to draw the curve. Here is one way...

    First save the page of the .pdf as an .svg file (I used inkscape). When you open the .svg file in a text editor you will find some intuitive syntax describing how to draw the plot. We want to pick out the BaBar line, so I looked for an occurrence of stroke:#000000 (a black line) associated with a list of numbers. If you do this yourself you will find those numbers in the following context inside a "path" element:

    d="m 146.558,372.935 0.639,-122.326 1.668,4.96 1.625,1.169 ...

    According to the syntax, in general a path element contains a d="(path data)" attribute, where the ‘d’ attribute contains the moveto, line, curve (both cubic and quadratic Béziers), arc and closepath instructions. In the above case we have a lower case m which indicates relative moveto's which will draw the line of interest. To get the points then we just have to transcribe the list into our favourite format and write a for-do loop (or similar) to obtain absolute positions.

    In Mathematica, this can be done by replacing spaces with "},{" and adding opening and closing brackets to obtain the list:

    pts={{146.558, 372.935},{0.639, -122.326},{1.668, 4.96},{1.625, 1.169},...

    Then the for-do loop is just

    Lpts=Length[pts];
    relpts=pts;
    Do[
      relpts[[i]]=relpts[[i-1]]+relpts[[i]]
    ,{i,2,Lpts}]


    Which upon plotting looks like the following:


    Now all you have to do is rescale your axes!

    Another example is Fig. 3 of the recent BaBar long-lived particle search:


    After saving as a .svg, you will see that the plots are made up of many (many) points. Say you wanted all the cyan points. Each point appears as its own path object in the file like so:

    ...
             style="fill:#00ffff;fill-opacity:1;fill-rule:evenodd;stroke:none" /><path
             d="m 1087.05,7047.46 c 0,1.66 -1.35,3 -3.01,3 -1.65,0 -3,-1.34 -3,-3 0,-1.66 1.35,-3 3,-3 1.66,0 3.01,1.34 3.01,3"
             id="path16732"
             style="fill:#00ffff;fill-opacity:1;fill-rule:evenodd;stroke:none" /><path
             d="m 1085.84,7048.66 c 0,1.66 -1.34,3 -3,3 -1.65,0 -3,-1.34 -3,-3 0,-1.65 1.35,-3 3,-3 1.66,0 3,1.35 3,3"

    ...


    All the points you want are the coordinates after the m. So you just need to get them somehow. There are no doubt multiple approaches to this. In bash you could grep or awk or sed your way there. For this example I used the command

    $ sed -n '/fill:#00ffff/{n;p;}' BaBar1502.svg > cyanpts.dat

    to print to file all the lines after a line with a match for fill:#00ffff. If you paste that document into a spreadsheet program you can then pick off the numbers of interest into columns.
  • In video media:
    • A promo video from CERN with some nice shots of the LHC experiment: The LHC is preparing to start. [2 minutes]
    • Here is a drone flying over the ALICE detector. [3 minutes]
    • I missed this talk by Dan Hooper from a few weeks ago. Some talk on the central excess is at 28-46 mins. There is also a fun anecdote about astrophysicist Troy Porter. [1 hour]
    • Katie Mack talking about Mars plumes, the star that passed through the Oort Cloud 70,000 years ago, the Europa Clipper mission, and Ceres on breakfast radio. Begins at 2:13. [9 minutes]
    • SmarterEveryday is starting a space series with a personal touch. In the first video astronaut Don Pettit shows how he turns off the streetlight at the end of his driveway with a laser so that he can better view the night sky. [4 minutes]
    • Mary Somerville, Alan Turing, and Stephen Hawking autographs in The Royal Society Charter Book at Objectivity. [5 minutes]
  • Interstellar's rapidly spinning black hole was slowed down for aesthetic reasons during rendering, to reduce the resulting brightness asymmetry and blueshift.

  • As we know, the arXiv surpassed $10^6$ papers last month and increased its article identifier sequence number to 5-digits to cope with the fact that they are nearing $10^4$ monthly submissions. Hot on arXiv's tail, now viXra has surpassed $10^4$ submissions! The real winner though is the snarxiv, with well over $\infty$ submissions...
  • The bright spot on Ceres is actually two bright spots! (Ceres is opening its other eye...)

  • This week we won't end on space images. Instead I reproduce a poem by Thomas Otto called "LHC" (I enjoyed the final stanza):

    I - LHC

    Cold
    Ice cold
    Arctic cold
    Nitrogen cold
    Argon cold
    Helium cold
    Colder than the cosmos:
    Superfluid Helium cold

    In the cold,
    Powerful currents
    Engender magnetic forces
    Ushering protons left and right.

    Protons travelling on the crests of ethereal waves
    Close to light speed
    100 billion at a time, a galaxy of protons.

    Wave after wave emerging from the cold
    Spilling galaxies into the void
    Galaxies of protons collide
    To re-create the origins.

    II - CMS

    A cylinder from glass and steel,
    A mythical animal hunched deep in its cave,
    Swallowing bunches of protons,
    Like a frog catching flies.

    Protons colliding, the debris on paths bent by magnetic forces
    Electrical signals through a network of cables
    The animal’s thoughts light up,
    A memory of the origins

    III - CERN

    Bright minds
    Tackling tough problems:
    Accuracy of the data,
    Beauty of the theory,
    And origins of the visible universe.

    Seasoned researchers,
    At ease with latest physical science:
    Handling strings and triggers,
    Seeing light in crystals,
    And integrating over 26 hidden dimensions.

    At lunchtime,
    A challenge like no other:
    Looking for a parking space,
    Queuing for a menu,
    And searching a place to put their meal tray.

Friday, 13 February 2015

Friday wrap-up: Planck, long-lived particles, dark matter, neutrinos...

Wherein I list some (mostly) recent happenings, ramble a bit, and provide links, in an order roughly determined by importance and relevance to particle physics.

  • As for the rest 2015 Planck release, the base cosmological parameters have hardly changed (see e.g. Table 1 of this paper). ΛCDM of course continues to explain everything extremely well. The $\Sigma m_\nu$ upper limit is down to 0.17 eV (Planck TT, TE, EE+lowP+BAO) at best, almost at a level to rule out an inverted hierarchy ($\Sigma m_\nu\gtrsim 0.1$ eV). $N_{eff}$ is still at 3.04 ± 0.18 (Planck TT, TE, EE+lowP+BAO), consistent with the standard value 3.046. There is no longer a hint of an excess there. As for inflation, Jester weighed in, and Planck present their results in this paper:


    Looks like the canonical Starobinsky $R^2$ inflation (1980) is taking the lead, but time will tell... experiments will need to probe at the level r~0.001 to test it.
  • BaBar released a new paper, "Search for Long-Lived Particles in e+e− Collisions". No significant signal is observed. It seems worth mentioning that they see a high local significance of events in the dimuon mode at $m_{\mu\mu}\approx 212$ MeV, which interestingly is very close to the HyperCP anomaly, but they say it is consistent with background from photon conversions. Anyway, from the point of view of a phenomenologist I especially like the effort BaBar has put into presenting their results in a model independent way. For example:

    1. They provide upper limits on $\sigma(e^+e^-\to LX)\mathcal{B}(L\to f)\epsilon(f)$, where $L$ is the long-lived particle and $f$ is the final state, which are completely agnostic of the production mechanism.
    2. They provide limits on $\mathcal{B}(B\to LX_s)\mathcal{B}(L\to f)$ where $X_s$ is "strange stuff", which reduces significantly some theoretical uncertainties for exotic $B$ decays and increases the possible signal yield.
    3. They look at six different two-body final states.
    4. On top of this, they will provide the full efficiency as a function of $m$, $c\tau$ and $p_T$ in supplementary material, so that their results can be reinterpreted.

    Very well done from BaBar. Their measurement has implications for a very simple extension of the Standard Model with a real singlet scalar mixing with the Higgs (a Higgs portal). I have quickly reinterpreted their Fig. 3 bounds (1 cm < $c\tau_L$ < 100 cm) on the $\mu^+\mu^-$, $\pi^+\pi^-$ and $K^+K^-$ final states, assuming the limit lines are $\mathcal{B}(B\to LX_s)\mathcal{B}(L\to f)\lesssim 10^{-6.5}$...



    The above plot shows exclusions (within solid lines) for the model as a function of light scalar mass and mixing (see a previous paper of ours). The incremental shadings represent different lifetime regions and the shaded region between 0.28 GeV and 4 GeV masses indicates a very uncertain region for branching predictions; between we choose the most recent calculation (still >20 years old!) below 1.4 GeV and a perturbative calculation above. The approximate exclusion from BaBar is shown as the purple dashed line. Indeed they are exploring previously unexplored parameter space of interest for an inflationary model of Bezrukov/Gorbunov (between black dashed lines). They are limited by difficult backgrounds between 0.37 GeV and 0.86 GeV masses. The purple dotted line indicates the region they would have excluded if they could limit $\mu^+\mu^-$ and $\pi^+\pi^-$ final states to the same level in that region. 
    I am interested to get my hands on the supplementary material when it is released.
  • A new paper published in Nature Physics (not on the arXiv [edit: now it is]) this week is doing the rounds; it infers that there must be dark matter in the inner region (within the solar circle) of our own galaxy. It's behind a paywall, but there is a press release here. The main plot is below.

                      

    The authors have compiled an exhaustive list of rotation curve measurements (red), as well as gathered a set of models for the baryonic contribution from which they form their "baryonic bracket" (grey). The lower panel shows that all baryonic-only models are already ruled out at 5-sigma by the time we arrive at our galactic radii. Hence there must be a dark matter component in the inner Milky Way. They do not appeal to any dark matter density profile, so in that sense it is a model-independent result (but of course it is not independent of the baryonic models!). Nevertheless you can see that a typical Navarro-Frenk-White profile models the residuals extremely well. This is nice to know.

    It is interesting that you can already infer dark matter just with measurements of the rotation curve within the solar circle, and I suppose the result may also be useful to constrain dark matter distributions of interest to direct and indirect detection. I do not think it is "the first observational proof of the presence of dark matter in the innermost part of the Milky Way" as the press release claims (the paper does not claim this). It is obvious that you need some dark matter component in the Milky Way to explain the rotation curve measurements at large galactic radii, and nobody thinks that all that dark matter is accumulated beyond 8 kpc! Those measurements are already observational evidence for dark matter in the inner Milky Way. Regardless, Hooper et al. already saw dark matter at the galactic centre...
  • IceCube have released their results on the flavour ratio of astrophysical neutrinos above 35 TeV. They release a very nice plot which fits the observed flavour ratio at Earth:


    Averaging neutrino oscillations over astronomical distances would give a value in the blue triangle for any flavour ratio at the source. The blue circle $\approx(1:1:1)_{Earth}$ marks the expected value for pion decays as the dominant source. Any measurement inconsistent with the (very thin) blue triangle would be a signal of new neutrino physics, such as neutrino decay, sterile neutrinos, or CPT violation (see for example here and here). Tommasso discusses it a little more here. [Edit: there is a short article at the IceCube web site also.]
  • If you'd like to read some more on the "Firewall Phenomenology with Astrophysical Neutrinos" paper that appeared on hep-ph last week, Bee at Backreaction has written a nice summary. The paper shows that IceCube's PeV neutrinos could be explained by a suitable emission spectra from black hole firewalls.
  • CMS is alive! Magnet comes on next week.
  • Physicist Val Fitch, whose discovery (along with James Cronin) of CP violation in a 1964 experiment won him the 1980 Nobel Prize, has died at the age of 91. Read about his life and contributions here.
  • Steven Weinberg has written a history book, released a few weeks ago. According to the About, "To Explain the World is a sweeping, ambitious account of how difficult it was to discover the goals and methods of modern science, and the impact of this discovery on human knowledge and development." For some reason it even garnered praise from Ian McEwan.
  • IPMU has recently published a 26 page transcript [pdf] of a conversation with Edward Witten after he was awarded a Kyoto Prize last year for "Outstanding Contributions to the Development of Mathematical Sciences through the Exploration of Superstring Theory". Peter Woit highlights some excerpts and talks about it on his blog.
  • This blog post has a gif showing the history of planet detection in 1 minute, and the exoplanet gold rush starting at the year ~2000, with some discussion. Here's where we were by the end of last year:

  • On fake academic journals and "Rogeting".
  • SpaceX launched the Deep Space Climate Observatory (DSCOVR) on Wednesday. You can watch the launch and read a little about it at space.com. DSCOVR will sit at the L1 Lagrange point between the Earth and the Sun, observe the climate, and serve as an early alert "buoy" for geomagnetic storms. The satellite is the resurrection of a previous project championed by Al Gore; he wrote, "DSCOVR has embarked on its mission to further our understanding of Earth and enable citizens and scientists alike to better understand the reality of the climate crisis and envision its solutions. DSCOVR will also give us a wonderful opportunity to see the beauty and fragility of our planet and, in doing so, remind us of the duty to protect our only home."
  • Finishing up with some photos from space for the week:
    • Rosetta took an incredible shot of its comet. Tomorrow it will make its closest approach yet at 6 km above the surface, the Sun at its back.

      comet
    • Lastly, here is an image of galaxies SDSSCGB 8842.3 and SDSSCGB 8842.4 as pictured by Hubble and released on Monday