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  7. Topics
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We are analyzing https://link.springer.com/article/10.1186/s13059-017-1188-0.

Title:
CIDR: Ultrafast and accurate clustering through imputation for single-cell RNA-seq data | Genome Biology
Description:
Most existing dimensionality reduction and clustering packages for single-cell RNA-seq (scRNA-seq) data deal with dropouts by heavy modeling and computational machinery. Here, we introduce CIDR (Clustering through Imputation and Dimensionality Reduction), an ultrafast algorithm that uses a novel yet very simple implicit imputation approach to alleviate the impact of dropouts in scRNA-seq data in a principled manner. Using a range of simulated and real data, we show that CIDR improves the standard principal component analysis and outperforms the state-of-the-art methods, namely t-SNE, ZIFA, and RaceID, in terms of clustering accuracy. CIDR typically completes within seconds when processing a data set of hundreds of cells and minutes for a data set of thousands of cells. CIDR can be downloaded at https://github.com/VCCRI/CIDR .
Website Age:
28 years and 1 months (reg. 1997-05-29).

Matching Content Categories {šŸ“š}

  • Education
  • Science
  • Technology & Computing

Content Management System {šŸ“}

What CMS is link.springer.com built with?

Custom-built

No common CMS systems were detected on Link.springer.com, and no known web development framework was identified.

Traffic Estimate {šŸ“ˆ}

What is the average monthly size of link.springer.com audience?

🌠 Phenomenal Traffic: 5M - 10M visitors per month


Based on our best estimate, this website will receive around 7,642,828 visitors per month in the current month.

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How Does Link.springer.com Make Money? {šŸ’ø}

We can't tell how the site generates income.

The purpose of some websites isn't monetary gain; they're meant to inform, educate, or foster collaboration. Everyone has unique reasons for building websites. This could be an example. Link.springer.com has a secret sauce for making money, but we can't detect it yet.

Keywords {šŸ”}

cidr, data, clustering, cells, set, cell, dropout, scrnaseq, expression, article, clusters, dropouts, types, analysis, google, scholar, algorithm, number, singlecell, principal, additional, algorithms, file, figure, function, gene, fig, distances, tsne, imputation, index, human, coordinates, neurons, dissimilarity, expected, adjusted, rand, pubmed, single, samples, cluster, output, zifa, sets, brain, dimensionality, reduction, distance, rate,

Topics {āœ’ļø}

scrna-seq single-cell rna-seq single-cell rna-seq data single-cell rna-seq full size image scrna-seq data sets scrna-seq data set scrna-seq data analysis bulk rna-seq samples recent scrna-seq studies single-cell transcriptome data article download pdf cell-type molecular signatures scrna-seq data rna-seq experiment calinski–harabasz index versus dropout-affected data set interpretable meta-clustering framework studying cell-type heterogeneity scrna-seq technology single-cell transcriptomes modified bi-clustering algorithm art dimensionality-reduction package /vccri/cidr/releases/tag/0 brain data set iterative expectation-maximization algorithm d_{\text{data}}\left art dimensionality-reduction algorithms full access log-transformed expression values $$d_{\text{true}}\left single-cell genomics =\left\{ \begin{array}{ll} 0 biological data sets data sets transformed figure s9 shows privacy choices/manage cookies simulated data set understanding brain development cell-cycle stage medical research council single cell level creative commons license dropout data set cell-type assignments principal coordinate analysis scrna-seq o_{ki}-o_{kj} human brain [20] human brain simulation data set

Questions {ā“}

  • Ward’s hierarchical agglomerative clustering method: which algorithms implement Ward’s criterion?

Schema {šŸ—ŗļø}

WebPage:
      mainEntity:
         headline:CIDR: Ultrafast and accurate clustering through imputation for single-cell RNA-seq data
         description:Most existing dimensionality reduction and clustering packages for single-cell RNA-seq (scRNA-seq) data deal with dropouts by heavy modeling and computational machinery. Here, we introduce CIDR (Clustering through Imputation and Dimensionality Reduction), an ultrafast algorithm that uses a novel yet very simple implicit imputation approach to alleviate the impact of dropouts in scRNA-seq data in a principled manner. Using a range of simulated and real data, we show that CIDR improves the standard principal component analysis and outperforms the state-of-the-art methods, namely t-SNE, ZIFA, and RaceID, in terms of clustering accuracy. CIDR typically completes within seconds when processing a data set of hundreds of cells and minutes for a data set of thousands of cells. CIDR can be downloaded at https://github.com/VCCRI/CIDR .
         datePublished:2017-03-28T00:00:00Z
         dateModified:2017-03-28T00:00:00Z
         pageStart:1
         pageEnd:11
         license:http://creativecommons.org/publicdomain/zero/1.0/
         sameAs:https://doi.org/10.1186/s13059-017-1188-0
         keywords:
            Single-cell
            scRNA-seq
            Dropout
            Imputation
            Dimensionality reduction
            Clustering
            Cell type
            Animal Genetics and Genomics
            Human Genetics
            Plant Genetics and Genomics
            Microbial Genetics and Genomics
            Bioinformatics
            Evolutionary Biology
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            issn:
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         author:
               name:Peijie Lin
               affiliation:
                     name:Victor Chang Cardiac Research Institute
                     address:
                        name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
                        type:PostalAddress
                     type:Organization
                     name:University of New South Wales
                     address:
                        name:St Vincent’s Clinical School, University of New South Wales, Darlinghurst, Australia
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               name:Michael Troup
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                     name:Victor Chang Cardiac Research Institute
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                        name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
                        type:PostalAddress
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                     name:Victor Chang Cardiac Research Institute
                     address:
                        name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
                        type:PostalAddress
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                        name:St Vincent’s Clinical School, University of New South Wales, Darlinghurst, Australia
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ScholarlyArticle:
      headline:CIDR: Ultrafast and accurate clustering through imputation for single-cell RNA-seq data
      description:Most existing dimensionality reduction and clustering packages for single-cell RNA-seq (scRNA-seq) data deal with dropouts by heavy modeling and computational machinery. Here, we introduce CIDR (Clustering through Imputation and Dimensionality Reduction), an ultrafast algorithm that uses a novel yet very simple implicit imputation approach to alleviate the impact of dropouts in scRNA-seq data in a principled manner. Using a range of simulated and real data, we show that CIDR improves the standard principal component analysis and outperforms the state-of-the-art methods, namely t-SNE, ZIFA, and RaceID, in terms of clustering accuracy. CIDR typically completes within seconds when processing a data set of hundreds of cells and minutes for a data set of thousands of cells. CIDR can be downloaded at https://github.com/VCCRI/CIDR .
      datePublished:2017-03-28T00:00:00Z
      dateModified:2017-03-28T00:00:00Z
      pageStart:1
      pageEnd:11
      license:http://creativecommons.org/publicdomain/zero/1.0/
      sameAs:https://doi.org/10.1186/s13059-017-1188-0
      keywords:
         Single-cell
         scRNA-seq
         Dropout
         Imputation
         Dimensionality reduction
         Clustering
         Cell type
         Animal Genetics and Genomics
         Human Genetics
         Plant Genetics and Genomics
         Microbial Genetics and Genomics
         Bioinformatics
         Evolutionary Biology
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         name:BioMed Central
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            type:ImageObject
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      author:
            name:Peijie Lin
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                  name:Victor Chang Cardiac Research Institute
                  address:
                     name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
                     type:PostalAddress
                  type:Organization
                  name:University of New South Wales
                  address:
                     name:St Vincent’s Clinical School, University of New South Wales, Darlinghurst, Australia
                     type:PostalAddress
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                     name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
                     type:PostalAddress
                  type:Organization
            type:Person
            name:Joshua W. K. Ho
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                  name:Victor Chang Cardiac Research Institute
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                     name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
                     type:PostalAddress
                  type:Organization
                  name:University of New South Wales
                  address:
                     name:St Vincent’s Clinical School, University of New South Wales, Darlinghurst, Australia
                     type:PostalAddress
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      name:Victor Chang Cardiac Research Institute
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         name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
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         name:St Vincent’s Clinical School, University of New South Wales, Darlinghurst, Australia
         type:PostalAddress
      name:Victor Chang Cardiac Research Institute
      address:
         name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
         type:PostalAddress
      name:Victor Chang Cardiac Research Institute
      address:
         name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
         type:PostalAddress
      name:University of New South Wales
      address:
         name:St Vincent’s Clinical School, University of New South Wales, Darlinghurst, Australia
         type:PostalAddress
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      url:https://www.springernature.com/app-sn/public/images/logo-springernature.png
Person:
      name:Peijie Lin
      affiliation:
            name:Victor Chang Cardiac Research Institute
            address:
               name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
               type:PostalAddress
            type:Organization
            name:University of New South Wales
            address:
               name:St Vincent’s Clinical School, University of New South Wales, Darlinghurst, Australia
               type:PostalAddress
            type:Organization
      name:Michael Troup
      affiliation:
            name:Victor Chang Cardiac Research Institute
            address:
               name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
               type:PostalAddress
            type:Organization
      name:Joshua W. K. Ho
      affiliation:
            name:Victor Chang Cardiac Research Institute
            address:
               name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
               type:PostalAddress
            type:Organization
            name:University of New South Wales
            address:
               name:St Vincent’s Clinical School, University of New South Wales, Darlinghurst, Australia
               type:PostalAddress
            type:Organization
      email:[email protected]
PostalAddress:
      name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
      name:St Vincent’s Clinical School, University of New South Wales, Darlinghurst, Australia
      name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
      name:Victor Chang Cardiac Research Institute, Darlinghurst, Australia
      name:St Vincent’s Clinical School, University of New South Wales, Darlinghurst, Australia

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