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Europe Says<p><a href="https://www.europesays.com/2247210/" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://www.</span><span class="">europesays.com/2247210/</span><span class="invisible"></span></a> ETFGI Reports That Assets Invested In The ETFs Industry In Japan Reached A New Record Of US$648.38 Billion At The End Of The First Half Of 2025 <a href="https://pubeurope.com/tags/AllRegions" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>AllRegions</span></a> <a href="https://pubeurope.com/tags/derivatives" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>derivatives</span></a> <a href="https://pubeurope.com/tags/ExchangeTradedProducts" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>ExchangeTradedProducts</span></a> <a href="https://pubeurope.com/tags/general" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>general</span></a> <a href="https://pubeurope.com/tags/japan" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>japan</span></a> <a href="https://pubeurope.com/tags/Statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Statistical</span></a></p>
Alo Japan<p><a href="https://www.alojapan.com/1322366/etfgi-reports-that-assets-invested-in-the-etfs-industry-in-japan-reached-a-new-record-of-us648-38-billion-at-the-end-of-the-first-half-of-2025/" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://www.</span><span class="ellipsis">alojapan.com/1322366/etfgi-rep</span><span class="invisible">orts-that-assets-invested-in-the-etfs-industry-in-japan-reached-a-new-record-of-us648-38-billion-at-the-end-of-the-first-half-of-2025/</span></a> ETFGI Reports That Assets Invested In The ETFs Industry In Japan Reached A New Record Of US$648.38 Billion At The End Of The First Half Of 2025 <a href="https://channels.im/tags/AllRegions" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>AllRegions</span></a> <a href="https://channels.im/tags/derivatives" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>derivatives</span></a> <a href="https://channels.im/tags/ExchangeTradedProducts" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>ExchangeTradedProducts</span></a> <a href="https://channels.im/tags/general" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>general</span></a> <a href="https://channels.im/tags/Japan" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Japan</span></a> <a href="https://channels.im/tags/JapanNews" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>JapanNews</span></a> <a href="https://channels.im/tags/JapanTopics" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>JapanTopics</span></a> <a href="https://channels.im/tags/news" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>news</span></a> <a href="https://channels.im/tags/Statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Statistical</span></a> ETFGI,&nbsp;a leading independent research and consultancy firm renowned for its expertise in subscription research, consulting services, events, and ETF TV on global ETF industry trends, reported to</p>
Alo Japan<p><a href="https://www.alojapan.com/1279434/eex-celebrates-fifth-anniversary-of-japan-power-futures-market/" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://www.</span><span class="ellipsis">alojapan.com/1279434/eex-celeb</span><span class="invisible">rates-fifth-anniversary-of-japan-power-futures-market/</span></a> EEX Celebrates Fifth Anniversary Of Japan Power Futures Market <a href="https://channels.im/tags/Australasia" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Australasia</span></a> <a href="https://channels.im/tags/commodities" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>commodities</span></a> <a href="https://channels.im/tags/derivatives" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>derivatives</span></a> <a href="https://channels.im/tags/europe" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>europe</span></a> <a href="https://channels.im/tags/exchange" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>exchange</span></a> <a href="https://channels.im/tags/general" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>general</span></a> <a href="https://channels.im/tags/Japan" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Japan</span></a> <a href="https://channels.im/tags/JapanNews" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>JapanNews</span></a> <a href="https://channels.im/tags/news" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>news</span></a> <a href="https://channels.im/tags/Statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Statistical</span></a> The European Energy Exchange (EEX) marks the fifth anniversary of the launch of its power trading platform on the Japanese power derivatives market. Since its inception in May 2020, the total volume traded on this market totalled 160 TWh, making it the fastest growing EEX power d…</p>
Europe Says<p><a href="https://www.europesays.com/2097124/" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://www.</span><span class="">europesays.com/2097124/</span><span class="invisible"></span></a> EEX Celebrates Fifth Anniversary Of Japan Power Futures Market <a href="https://pubeurope.com/tags/australasia" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>australasia</span></a> <a href="https://pubeurope.com/tags/Commodities" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Commodities</span></a> <a href="https://pubeurope.com/tags/derivatives" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>derivatives</span></a> <a href="https://pubeurope.com/tags/Europe" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Europe</span></a> <a href="https://pubeurope.com/tags/exchange" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>exchange</span></a> <a href="https://pubeurope.com/tags/general" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>general</span></a> <a href="https://pubeurope.com/tags/japan" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>japan</span></a> <a href="https://pubeurope.com/tags/Statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Statistical</span></a></p>
Statistics Globe<p>ggplot2 is the gold standard when it comes to data visualization.</p><p>The image in this post showcases examples of ggplot2 visualizations, demonstrating its versatility to create a wide range of plots with nearly limitless customization options.</p><p>Check out my online course, "Data Visualization in R Using ggplot2 &amp; Friends," for a deeper dive into creating stunning plots with ggplot2. </p><p>More info: <a href="https://statisticsglobe.com/online-course-data-visualization-ggplot2-r" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://</span><span class="ellipsis">statisticsglobe.com/online-cou</span><span class="invisible">rse-data-visualization-ggplot2-r</span></a></p><p><a href="https://mastodon.social/tags/package" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>package</span></a> <a href="https://mastodon.social/tags/dataviz" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>dataviz</span></a> <a href="https://mastodon.social/tags/statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>statistical</span></a> <a href="https://mastodon.social/tags/tidyverse" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>tidyverse</span></a> <a href="https://mastodon.social/tags/pythondeveloperjobs" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>pythondeveloperjobs</span></a></p>
💧🌏 Greg Cocks<p>Grfin Tools—User Guide And Methods For Modeling Landslide Runout And Debris-Flow Growth And Inundation<br>--<br><a href="https://pubs.usgs.gov/publication/tm14A3" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://</span><span class="ellipsis">pubs.usgs.gov/publication/tm14</span><span class="invisible">A3</span></a> &lt;-- shared USGS publication<br>--<br><a href="https://code.usgs.gov/grfintools/grfintools" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://</span><span class="ellipsis">code.usgs.gov/grfintools/grfin</span><span class="invisible">tools</span></a> &lt;-- shared USGS software release<br>--<br>H/T Jonathan Perkins USGS<br>[ another open source resource for everyone from the USGS ~smile~ ]<br><a href="https://techhub.social/tags/GIS" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>GIS</span></a> <a href="https://techhub.social/tags/spatial" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>spatial</span></a> <a href="https://techhub.social/tags/mapping" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>mapping</span></a> <a href="https://techhub.social/tags/opensource" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>opensource</span></a> <a href="https://techhub.social/tags/openlibrary" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>openlibrary</span></a> <a href="https://techhub.social/tags/Grfin" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Grfin</span></a> <a href="https://techhub.social/tags/software" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>software</span></a> <a href="https://techhub.social/tags/package" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>package</span></a> <a href="https://techhub.social/tags/regional" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>regional</span></a> <a href="https://techhub.social/tags/debrisflow" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>debrisflow</span></a> <a href="https://techhub.social/tags/engineeringgeology" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>engineeringgeology</span></a> <a href="https://techhub.social/tags/geology" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>geology</span></a> <a href="https://techhub.social/tags/inundation" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>inundation</span></a> <a href="https://techhub.social/tags/spatialanalysis" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>spatialanalysis</span></a> <a href="https://techhub.social/tags/spatiotemporal" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>spatiotemporal</span></a> <a href="https://techhub.social/tags/geophysics" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>geophysics</span></a> <a href="https://techhub.social/tags/geophysical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>geophysical</span></a> <a href="https://techhub.social/tags/massmovement" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>massmovement</span></a> <a href="https://techhub.social/tags/landslide" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>landslide</span></a> <a href="https://techhub.social/tags/lahar" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>lahar</span></a> <a href="https://techhub.social/tags/volcano" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>volcano</span></a> <a href="https://techhub.social/tags/rock" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>rock</span></a> <a href="https://techhub.social/tags/avalanche" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>avalanche</span></a> <a href="https://techhub.social/tags/model" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>model</span></a> <a href="https://techhub.social/tags/modeling" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>modeling</span></a> <a href="https://techhub.social/tags/statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>statistical</span></a> <a href="https://techhub.social/tags/geostatistics" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>geostatistics</span></a> <a href="https://techhub.social/tags/water" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>water</span></a> <a href="https://techhub.social/tags/hydrology" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>hydrology</span></a> <a href="https://techhub.social/tags/downstream" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>downstream</span></a> <a href="https://techhub.social/tags/elevation" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>elevation</span></a> <a href="https://techhub.social/tags/remotesensing" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>remotesensing</span></a> <a href="https://techhub.social/tags/DEM" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>DEM</span></a> <a href="https://techhub.social/tags/flow" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>flow</span></a> <a href="https://techhub.social/tags/runout" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>runout</span></a> <a href="https://techhub.social/tags/risk" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>risk</span></a> <a href="https://techhub.social/tags/hazard" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>hazard</span></a> <a href="https://techhub.social/tags/tools" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>tools</span></a> <a href="https://techhub.social/tags/slope" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>slope</span></a> <a href="https://techhub.social/tags/erosion" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>erosion</span></a> <a href="https://techhub.social/tags/drainage" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>drainage</span></a> <a href="https://techhub.social/tags/network" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>network</span></a> <a href="https://techhub.social/tags/channel" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>channel</span></a> <a href="https://techhub.social/tags/channelisation" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>channelisation</span></a> <a href="https://techhub.social/tags/userguide" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>userguide</span></a> <br>@USGS</p>
Gilles DePemig :TwinPines:<p>At our <a href="https://social.coop/tags/statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>statistical</span></a> consult, I helped a <a href="https://social.coop/tags/master" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>master</span></a> student with her meta-analysis in <a href="https://social.coop/tags/R" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>R</span></a> . She "admitted" she wrote all code with the help of <a href="https://social.coop/tags/chatGPT" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>chatGPT</span></a> . (of course, it's the only one, right?)</p><p>One hour in, I typed ?forest (the basic R command prompting documentation about the specific function she was using, forest), because I needed to know something about an function argument. </p><p>She was shocked to see the help file being displayed saying "Wow, where did you find all this information?"</p><p><a href="https://social.coop/tags/RTFM" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>RTFM</span></a></p>
Statistics Globe<p>When performing multiple imputation of missing data, it is essential to evaluate how the imputed values compare to the observed data.</p><p>The attached image, created with the bwplot() function, showcases how the distributions of observed and imputed values vary across different imputations for multiple variables.</p><p>I’ll be hosting an 8-week online workshop on Missing Data Imputation in R: <a href="https://statisticsglobe.com/online-workshop-missing-data-imputation-r" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://</span><span class="ellipsis">statisticsglobe.com/online-wor</span><span class="invisible">kshop-missing-data-imputation-r</span></a></p><p><a href="https://mastodon.social/tags/dataanalytics" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>dataanalytics</span></a> <a href="https://mastodon.social/tags/dataviz" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>dataviz</span></a> <a href="https://mastodon.social/tags/statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>statistical</span></a> <a href="https://mastodon.social/tags/database" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>database</span></a> <a href="https://mastodon.social/tags/datavisualization" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>datavisualization</span></a> <a href="https://mastodon.social/tags/package" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>package</span></a></p>
Statistics Globe<p>I recently stumbled upon the gt package for R programming, a real game-changer for anyone looking to elevate their table game!</p><p>Developed by Richard Iannone and colleagues, it simplifies table creation, supporting a seamless workflow from data frames or tibbles to professional tables.</p><p>More info: <a href="https://gt.rstudio.com/" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://</span><span class="">gt.rstudio.com/</span><span class="invisible"></span></a></p><p>More information: <a href="http://eepurl.com/gH6myT" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">http://</span><span class="">eepurl.com/gH6myT</span><span class="invisible"></span></a></p><p><a href="https://mastodon.social/tags/data" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>data</span></a> <a href="https://mastodon.social/tags/dataanalytics" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>dataanalytics</span></a> <a href="https://mastodon.social/tags/dataanalytics" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>dataanalytics</span></a> <a href="https://mastodon.social/tags/statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>statistical</span></a></p>
Statistics Globe<p>Dimensionality reduction simplifies high-dimensional data while retaining its essential features. It’s a powerful tool for improving data analysis, visualization, and machine learning performance.</p><p>Image credit to Wikipedia: <a href="https://en.wikipedia.org/wiki/Dimensionality_reduction#/media/File:PCA_Projection_Illustration.gif" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://</span><span class="ellipsis">en.wikipedia.org/wiki/Dimensio</span><span class="invisible">nality_reduction#/media/File:PCA_Projection_Illustration.gif</span></a></p><p>I've developed an in-depth course on PCA theory and its application in R programming. Check out this link for more details: <a href="https://statisticsglobe.com/online-course-pca-theory-application-r" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://</span><span class="ellipsis">statisticsglobe.com/online-cou</span><span class="invisible">rse-pca-theory-application-r</span></a></p><p><a href="https://mastodon.social/tags/rstudio" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>rstudio</span></a> <a href="https://mastodon.social/tags/datastructure" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>datastructure</span></a> <a href="https://mastodon.social/tags/programming" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>programming</span></a> <a href="https://mastodon.social/tags/package" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>package</span></a> <a href="https://mastodon.social/tags/statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>statistical</span></a> <a href="https://mastodon.social/tags/bigdata" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>bigdata</span></a></p>
Statistics Globe<p>Misinterpretation of correlation and causation is a common issue in data analysis. Correlation measures the strength and direction of a relationship between two variables, but it does not imply that one variable causes the other.</p><p>Consider the statement, "Dinosaurs didn't read. Now they are extinct."</p><p>For regular tips on data science, statistics, Python, and R programming, check out my free email newsletter: <a href="http://eepurl.com/gH6myT" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">http://</span><span class="">eepurl.com/gH6myT</span><span class="invisible"></span></a></p><p><a href="https://mastodon.social/tags/analysis" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>analysis</span></a> <a href="https://mastodon.social/tags/bigdata" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>bigdata</span></a> <a href="https://mastodon.social/tags/statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>statistical</span></a></p>
Chuck Darwin<p>Krugman: <br>This is, by the way, [what] standard autocratic regimes are known for. </p><p>⭐️In some ways, among their first targets are <a href="https://c.im/tags/statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>statistical</span></a> <a href="https://c.im/tags/agencies" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>agencies</span></a> because ➡️ they want the numbers to say what they want the numbers to say. </p><p>I’ve been at conferences in Asia where the Chinese government announces that the economy grew 5.3 percent. </p><p>And everyone at the conference asks not “why did the Chinese economy grow by 5.3 percent?” but “why did the Chinese government decide to say that it grew by 5.3 percent?” </p><p>⭐️The numbers are our political statements, not reality. </p><p>🆘And if I were a federal employee at the Bureau of Labor Statistics, <br>I would be extremely frightened; <br>quite quickly they’re going to be in the line of fire.</p><p>The last time around, back during the Obama years, when there was a lot of "inflation truthers" claiming that the inflation numbers were being manipulated to make it look like there was less inflation than there was. </p><p>❌Such accusations are always projections<br>—it’s what they would do, not what was actually happening. </p><p>We turned to various kinds of private sector independent measures of inflation, many of which were originally developed by economists in places like Argentina, <br>where manipulation of the data was standard so they developed their own ways to measure. </p><p>We’re going to be having to do that. </p><p>⚠️ My guess is by sometime next year, we’re going to be having to look at proxies for what’s actually happening to the economy, <br>possibly for what’s actually happening to crime, <br>because the official numbers are going to be corrupted.</p><p> <a href="https://c.im/tags/DataManipulation" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>DataManipulation</span></a> <a href="https://c.im/tags/FakeFigures" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>FakeFigures</span></a></p>
Statistics Globe<p>In Bayesian inference, a credible interval is a range of values within which a parameter lies with a certain probability, given the observed data and prior beliefs. The image of this post (based on this Wikipedia image: <a href="https://en.wikipedia.org/wiki/Credible_interval#/media/File:Highest_posterior_density_interval.svg" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://</span><span class="ellipsis">en.wikipedia.org/wiki/Credible</span><span class="invisible">_interval#/media/File:Highest_posterior_density_interval.svg</span></a>) represents a 90% highest-density credible interval of a posterior probability distribution.</p><p>More details: <a href="http://eepurl.com/gH6myT" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">http://</span><span class="">eepurl.com/gH6myT</span><span class="invisible"></span></a></p><p><a href="https://mastodon.social/tags/statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>statistical</span></a> <a href="https://mastodon.social/tags/datasciencecourse" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>datasciencecourse</span></a> <a href="https://mastodon.social/tags/datascience" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>datascience</span></a> <a href="https://mastodon.social/tags/rprogramming" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>rprogramming</span></a> <a href="https://mastodon.social/tags/datastructure" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>datastructure</span></a></p>
António Domingues<p>I was expressing my suprise that someone doing any sort of <a href="https://genomic.social/tags/bioinformatics" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>bioinformatics</span></a> <a href="https://genomic.social/tags/Computational_Biology" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Computational_Biology</span></a> work doesn't use or see the value of <a href="https://genomic.social/tags/git" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>git</span></a>.</p><p>The reply was that in their experience, in the sub-field of <a href="https://genomic.social/tags/statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>statistical</span></a> <a href="https://genomic.social/tags/genetics" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>genetics</span></a> (industry and academia) version-control is not the norm. In fact, sharing code and having <a href="https://genomic.social/tags/reproducibility" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>reproducibility</span></a> is not a thing. </p><p>Is this everyone else's experience?</p>
Statistics Globe<p>Hypothesis testing is a key statistical method that allows us to draw conclusions about populations based on sample data. Choosing the right test is essential for obtaining accurate and reliable results.</p><p>Interested in learning more? Check out my online course on Statistical Methods in R, starting September 9, 2024, where we dive deeper into hypothesis testing and other key statistical methods.</p><p>Take a look here for more details: <a href="https://statisticsglobe.com/online-course-statistical-methods-r" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://</span><span class="ellipsis">statisticsglobe.com/online-cou</span><span class="invisible">rse-statistical-methods-r</span></a></p><p><a href="https://mastodon.social/tags/StatisticalAnalysis" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>StatisticalAnalysis</span></a> <a href="https://mastodon.social/tags/Data" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Data</span></a> <a href="https://mastodon.social/tags/statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>statistical</span></a></p>
Statistics Globe<p>I recently came across the raybevel R package by Tyler Morgan-Wall. It's focused on creating 3D bevels and straight skeletons, useful for tasks such as offsetting polygons or generating 3D models of roofs and beveled edges.</p><p>Installation instructions and examples to get started: <a href="https://www.raybevel.com/" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://www.</span><span class="">raybevel.com/</span><span class="invisible"></span></a></p><p>See this link for additional information: <a href="http://eepurl.com/gH6myT" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">http://</span><span class="">eepurl.com/gH6myT</span><span class="invisible"></span></a></p><p><a href="https://mastodon.social/tags/programmer" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>programmer</span></a> <a href="https://mastodon.social/tags/database" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>database</span></a> <a href="https://mastodon.social/tags/Statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Statistical</span></a> <a href="https://mastodon.social/tags/DataAnalytics" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>DataAnalytics</span></a> <a href="https://mastodon.social/tags/Rpackage" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Rpackage</span></a> <a href="https://mastodon.social/tags/RStats" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>RStats</span></a></p>
Statistics Globe<p>Diving into Principal Component Analysis (PCA) unveils two heroes of data simplification: Eigenvalues and Eigenvectors. More info in my online course: <a href="https://statisticsglobe.com/online-course-pca-theory-application-r" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://</span><span class="ellipsis">statisticsglobe.com/online-cou</span><span class="invisible">rse-pca-theory-application-r</span></a></p><p><a href="https://mastodon.social/tags/DataAnalytics" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>DataAnalytics</span></a> <a href="https://mastodon.social/tags/DataScience" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>DataScience</span></a> <a href="https://mastodon.social/tags/Data" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Data</span></a> <a href="https://mastodon.social/tags/R4DS" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>R4DS</span></a> <a href="https://mastodon.social/tags/RStats" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>RStats</span></a> <a href="https://mastodon.social/tags/Statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Statistical</span></a></p>
Statistics Globe<p>Matplotlib and plotly stand out as two of the most popular data visualization libraries in Python.</p><p>For more information, visit this link: <a href="https://statisticsglobe.com/matplotlib-vs-plotly-python" rel="nofollow noopener" translate="no" target="_blank"><span class="invisible">https://</span><span class="ellipsis">statisticsglobe.com/matplotlib</span><span class="invisible">-vs-plotly-python</span></a></p><p><a href="https://mastodon.social/tags/DataVisualization" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>DataVisualization</span></a> <a href="https://mastodon.social/tags/pythoncode" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>pythoncode</span></a> <a href="https://mastodon.social/tags/datasciencetraining" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>datasciencetraining</span></a> <a href="https://mastodon.social/tags/Python" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Python</span></a> <a href="https://mastodon.social/tags/Statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Statistical</span></a> <a href="https://mastodon.social/tags/Data" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>Data</span></a> <a href="https://mastodon.social/tags/VisualAnalytics" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>VisualAnalytics</span></a></p>
Daniele de Rigo<p>2/</p><p>"When <a href="https://hostux.social/tags/ComplexSystems" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>ComplexSystems</span></a>, such as the overturning circulation, undergo critical transitions by changing a control parameter λ through a critical value λᶜ, a structural change in the <a href="https://hostux.social/tags/dynamics" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>dynamics</span></a> happens. The previously statistically stable state ceases to exist and the system moves to a different statistically stable state. The system undergoes a bifurcation [...] there are <a href="https://hostux.social/tags/EarlyWarning" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>EarlyWarning</span></a> signals (EWSs), <a href="https://hostux.social/tags/statistical" class="mention hashtag" rel="nofollow noopener" target="_blank">#<span>statistical</span></a> quantities, which also change before the tipping happens" [1]</p>