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6 results for “constant light”

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zenodo48/100

Dataset for "Light Scalar Meson and Decay Constant in SU(3) Gauge Theory with Eight Dynamical Flavors"

<p><strong>Decoding File Names</strong>: Consider the file name f8l24t48b48m00889_S0.csv.&nbsp; We will break down the meaning of the various pieces of the filename</p> <ul> <li>&quot;f8&quot; means 8 Dirac flavors.</li> <li>&quot;l24t48&quot; means 24<sup>3</sup>&times;48 lattice.</li> <li>&quot;b48&quot; means beta=4.8, related to the inverse bare gauge coupling.</li> <li>&quot;m00889&quot; means fermion mass m=0.00889.</li> <li>&quot;S&quot; means flavor-singlet scalar meson. Other options are &quot;P&quot; for flavor non-singlet pseudoscalar meson and &quot;C&quot; for flavor non-singlet scalar meson.</li> <li>&quot;0&quot; an integer from 0 to 4 proportional to the squared length of the spatial momentum vector of the correlation function.</li> </ul> <p><strong>Columns of the CSV files</strong>: Each line of the CSV file should contain 41 entries, separated by commas. Refer to the Eq. (8) which defines model A in the accompanying paper to understand the physical interpretation of these parameters.</p> <ol> <li>Model number: 1 is model A, 2 is model B, 3 is model C.</li> <li>n<sub>max</sub>: the number of non-oscillating states in the fit.</li> <li>j<sub>max</sub>: the number of oscillating states in the fit.</li> <li>t<sub>min</sub>: the minimum t value used in the fit.</li> <li>t<sub>max</sub>: the maximum t value used in the fit.</li> <li>𝜒<sup>2</sup> of the fit.</li> <li><span class="math-tex">\(\log\ p\left(\left.M\right|D\right)\)</span>: log of model probability used in Bayesian model averaging.</li> <li>fit value for c<sub>0</sub> (model A) or <span class="math-tex">\(\overline{c}_0\)</span> (model B).</li> <li>fit error for c<sub>0</sub> (model A) or <span class="math-tex">\(\overline{c}_0\)</span> (model B).</li> <li>fit value for c<sub>1</sub>.</li> <li>fit error for c<sub>1</sub>.</li> <li>fit value for c<sub>2</sub>.</li> <li>fit error for c<sub>2</sub>.</li> <li>fit value for c<sub>3</sub>.</li> <li>fit error for c<sub>3</sub>.</li> <li>fit value for c<sub>4</sub>.</li> <li>fit error for c<sub>4</sub>.</li> <li>fit value for <span class="math-tex">\(c_1^\prime\)</span>.</li> <li>fit error for <span class="math-tex">\(c_1^\prime\)</span></li> <li>fit value for <span class="math-tex">\(c_2^\prime\)</span>.</li> <li>fit error for <span class="math-tex">\(c_2^\prime\)</span>.</li> <li>fit value for <span class="math-tex">\(c_3^\prime\)</span>.</li> <li>fit error for <span class="math-tex">\(c_3^\prime\)</span>.</li> <li>fit value for <span class="math-tex">\(c_4^\prime\)</span>.</li> <li>fit error for <span class="math-tex">\(c_4^\prime\)</span>.</li> <li>fit value for <span class="math-tex">\(\log(E_2 - E_1)\)</span>.</li> <li>fit error for <span class="math-tex">\(\log(E_2-E_1)\)</span>.</li> <li>fit value for <span class="math-tex">\(\log(E_3-E_2)\)</span>.</li> <li>fit error for <span class="math-tex">\(\log(E_3-E_2)\)</span>.</li> <li>fit value for <span class="math-tex">\(\log(E_4-E_3)\)</span>.</li> <li>fit error for <span class="math-tex">\(\log(E_4-E_3)\)</span>.</li> <li>fit value for <span class="math-tex">\(\log(E_2^\prime - E_1^\prime)\)</span>.</li> <li>fit error for <span class="math-tex">\(\log(E_2^\prime - E_1^\prime)\)</span>.</li> <li>fit value for <span class="math-tex">\(\log(E_3^\prime - E_2^\prime)\)</span>.</li> <li>fit error for <span class="math-tex">\(\log(E_3^\prime - E_2^\prime)\)</span>.</li> <li>fit value for <span class="math-tex">\(\log(E_4^\prime - E_3^\prime)\)</span>.</li> <li>fit error for <span class="math-tex">\(\log(E_4^\prime - E_3^\prime)\)</span>.</li> <li>fit value for <span class="math-tex">\(\log(E_1)\)</span>.</li> <li>fit error for <span class="math-tex">\(\log(E_1)\)</span>.</li> <li>fit value for <span class="math-tex">\(\log(E_1^\prime)\)</span>.</li> <li>fit error for <span class="math-tex">\(\log(E_1^\prime)\)</span>.</li> </ol>

opencc-by-4.0Jun 2023View details →
zenodo28/100

Data and code for: "Mixed evidence for species diversity affecting ecological forecasts in constant versus declining light "

<p>Data and code for the article "<strong><span>Mixed evidence for species diversity affecting ecological forecasts in constant versus declining light&nbsp;</span></strong>"</p>

openApr 2024View details →
geo20/100

Analysis of gene expression in the wild type and rel- strains of Synechococcus elongatus PCC7942 with RNA sequencing during constant light conditions

GEO Series GSE103462. Synechococcus elongatus PCC 7942 = FACHB-805. 8 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenDec 2017View details →
geo20/100

Analysis of gene expression in the rel- + relA+ and rel- + relAE335Q strains of Synechococcus elongatus PCC7942 with RNA sequencing during constant light conditions

GEO Series GSE103463. Synechococcus elongatus PCC 7942 = FACHB-805. 8 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenDec 2017View details →
geo20/100

WT and fhy3 mutant in constant red light

GEO Series GSE201929. Arabidopsis thaliana. 8 samples. Type: Expression profiling by array.

openGEO-OpenMay 2022View details →
geo12/100

Sex-specific expression during asexual development of Neurospora crassa under constant light condition

GEO Series GSE26209. Neurospora crassa. 26 samples. Type: Expression profiling by array.

openGEO-OpenJun 2011View details →

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