Unsupervised online clustering and detection algorithms using crowdsourced data for malaria diagnosis
•An unsupervised method with crowdsourced data to detect forms in images is proposed.•The procedure consists of a clustering and a detection stage based on the EM algorithm.•The method accounts for outliers and is robust to unreliable annotators.•An online implementation of the method suited for str...
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| Published in | Pattern recognition Vol. 86; pp. 209 - 223 |
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| Main Authors | , , |
| Format | Journal Article Publication |
| Language | English |
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Elsevier Ltd
01.02.2019
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| Online Access | Get full text |
| ISSN | 0031-3203 1873-5142 |
| DOI | 10.1016/j.patcog.2018.09.001 |
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| Abstract | •An unsupervised method with crowdsourced data to detect forms in images is proposed.•The procedure consists of a clustering and a detection stage based on the EM algorithm.•The method accounts for outliers and is robust to unreliable annotators.•An online implementation of the method suited for streaming data is presented.•Experimental results with real data for Malaria diagnose support the approach.
Crowdsourced data in science might be severely error-prone due to the inexperience of annotators participating in the project. In this work, we present a procedure to detect specific structures in an image given tags provided by multiple annotators and collected through a crowdsourcing methodology. The procedure consists of two stages based on the Expectation–Maximization (EM) algorithm, one for clustering and the other one for detection, and it gracefully combines data coming from annotators with unknown reliability in an unsupervised manner. An online implementation of the approach is also presented that is well suited to crowdsourced streaming data. Comprehensive experimental results with real data from the MalariaSpot project are also included. |
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| AbstractList | •An unsupervised method with crowdsourced data to detect forms in images is proposed.•The procedure consists of a clustering and a detection stage based on the EM algorithm.•The method accounts for outliers and is robust to unreliable annotators.•An online implementation of the method suited for streaming data is presented.•Experimental results with real data for Malaria diagnose support the approach.
Crowdsourced data in science might be severely error-prone due to the inexperience of annotators participating in the project. In this work, we present a procedure to detect specific structures in an image given tags provided by multiple annotators and collected through a crowdsourcing methodology. The procedure consists of two stages based on the Expectation–Maximization (EM) algorithm, one for clustering and the other one for detection, and it gracefully combines data coming from annotators with unknown reliability in an unsupervised manner. An online implementation of the approach is also presented that is well suited to crowdsourced streaming data. Comprehensive experimental results with real data from the MalariaSpot project are also included. © . This manuscript version is made available under the CC-BY-NC-ND 4.0 license http://creativecommons.org/licenses/by-nc-nd/4.0/ Crowdsourced data in science might be severely error-prone due to the inexperience of annotators participating in the project. In this work, we present a procedure to detect specific structures in an image given tags provided by multiple annotators and collected through a crowdsourcing methodology. The procedure consists of two stages based on the Expectation–Maximization (EM) algorithm, one for clustering and the other one for detection, and it gracefully combines data coming from annotators with unknown reliability in an unsupervised manner. An online implementation of the approach is also presented that is well suited to crowdsourced streaming data. Comprehensive experimental results with real data from the MalariaSpot project are also included. Peer Reviewed |
| Author | Cabrera-Bean, Margarita Díaz-Vilor, Carles Pagès-Zamora, Alba |
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| Cites_doi | 10.1186/1475-2875-10-364 10.1016/j.procs.2016.07.024 10.2307/2346806 10.1016/j.patcog.2012.04.031 10.1016/j.patcog.2016.03.010 10.1109/TIT.1982.1056489 10.1016/j.patcog.2017.11.023 10.1016/j.patcog.2014.10.003 10.1111/j.2517-6161.1984.tb01296.x 10.1109/34.990138 10.1111/j.1467-9868.2009.00698.x 10.1016/S0031-3203(03)00059-1 |
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| Contributor | Universitat Politècnica de Catalunya. Departament de Teoria del Senyal i Comunicacions Universitat Politècnica de Catalunya. SPCOM - Grup de Recerca de Processament del Senyal i Comunicacions |
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| Keywords | Crowdsourcing Online EM algorithm Unreliable annotators MalariaSpot Unsupervised method |
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| SubjectTerms | Contractació externa Contracting out Crowdsourcing Enginyeria de la telecomunicació Innovacions tecnològiques MalariaSpot Online EM algorithm Pattern recognition systems Processament del senyal Reconeixement de formes Reconeixement de formes (Informàtica) Technological innovations Unreliable annotators Unsupervised method Àrees temàtiques de la UPC |
| Title | Unsupervised online clustering and detection algorithms using crowdsourced data for malaria diagnosis |
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