Computer-aided diagnosis based on hand thermal, RGB images, and grip force using artificial intelligence as screening tool for rheumatoid arthritis in women
Rheumatoid arthritis (RA) is an autoimmune disorder that typically affects people between 23 and 60 years old causing chronic synovial inflammation, symmetrical polyarthritis, destruction of large and small joints, and chronic disability. Clinical diagnosis of RA is stablished by current ACR-EULAR c...
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Published in | Medical & biological engineering & computing Vol. 59; no. 2; pp. 287 - 300 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
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Berlin/Heidelberg
Springer Berlin Heidelberg
01.02.2021
Springer Nature B.V |
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Abstract | Rheumatoid arthritis (RA) is an autoimmune disorder that typically affects people between 23 and 60 years old causing chronic synovial inflammation, symmetrical polyarthritis, destruction of large and small joints, and chronic disability. Clinical diagnosis of RA is stablished by current ACR-EULAR criteria, and it is crucial for starting conventional therapy in order to minimize damage progression. The 2010 ACR-EULAR criteria include the presence of swollen joints, elevated levels of rheumatoid factor or anti-citrullinated protein antibodies (ACPA), elevated acute phase reactant, and duration of symptoms. In this paper, a computer-aided system for helping in the RA diagnosis, based on quantitative and easy-to-acquire variables, is presented. The participants in this study were all female, grouped into two classes: class I, patients diagnosed with RA (
n
= 100), and class II corresponding to controls without RA (
n
= 100). The novel approach is constituted by the acquisition of thermal and RGB images, recording their hand grip strength or gripping force. The weight, height, and age were also obtained from all participants. The color layout descriptors (CLD) were obtained from each image for having a compact representation. After, a wrapper forward selection method in a range of classification algorithms included in WEKA was performed. In the feature selection process, variables such as hand images, grip force, and age were found relevant, whereas weight and height did not provide important information to the classification. Our system obtains an AUC ROC curve greater than 0.94 for both thermal and RGB images using the RandomForest classifier. Thirty-eight subjects were considered for an external test in order to evaluate and validate the model implementation. In this test, an accuracy of 94.7% was obtained using RGB images; the confusion matrix revealed our system provides a correct diagnosis for all participants and failed in only two of them (5.3%).
Graphical abstract |
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AbstractList | Rheumatoid arthritis (RA) is an autoimmune disorder that typically affects people between 23 and 60 years old causing chronic synovial inflammation, symmetrical polyarthritis, destruction of large and small joints, and chronic disability. Clinical diagnosis of RA is stablished by current ACR-EULAR criteria, and it is crucial for starting conventional therapy in order to minimize damage progression. The 2010 ACR-EULAR criteria include the presence of swollen joints, elevated levels of rheumatoid factor or anti-citrullinated protein antibodies (ACPA), elevated acute phase reactant, and duration of symptoms. In this paper, a computer-aided system for helping in the RA diagnosis, based on quantitative and easy-to-acquire variables, is presented. The participants in this study were all female, grouped into two classes: class I, patients diagnosed with RA (n = 100), and class II corresponding to controls without RA (n = 100). The novel approach is constituted by the acquisition of thermal and RGB images, recording their hand grip strength or gripping force. The weight, height, and age were also obtained from all participants. The color layout descriptors (CLD) were obtained from each image for having a compact representation. After, a wrapper forward selection method in a range of classification algorithms included in WEKA was performed. In the feature selection process, variables such as hand images, grip force, and age were found relevant, whereas weight and height did not provide important information to the classification. Our system obtains an AUC ROC curve greater than 0.94 for both thermal and RGB images using the RandomForest classifier. Thirty-eight subjects were considered for an external test in order to evaluate and validate the model implementation. In this test, an accuracy of 94.7% was obtained using RGB images; the confusion matrix revealed our system provides a correct diagnosis for all participants and failed in only two of them (5.3%). Graphical abstract. Rheumatoid arthritis (RA) is an autoimmune disorder that typically affects people between 23 and 60 years old causing chronic synovial inflammation, symmetrical polyarthritis, destruction of large and small joints, and chronic disability. Clinical diagnosis of RA is stablished by current ACR-EULAR criteria, and it is crucial for starting conventional therapy in order to minimize damage progression. The 2010 ACR-EULAR criteria include the presence of swollen joints, elevated levels of rheumatoid factor or anti-citrullinated protein antibodies (ACPA), elevated acute phase reactant, and duration of symptoms. In this paper, a computer-aided system for helping in the RA diagnosis, based on quantitative and easy-to-acquire variables, is presented. The participants in this study were all female, grouped into two classes: class I, patients diagnosed with RA ( n = 100), and class II corresponding to controls without RA ( n = 100). The novel approach is constituted by the acquisition of thermal and RGB images, recording their hand grip strength or gripping force. The weight, height, and age were also obtained from all participants. The color layout descriptors (CLD) were obtained from each image for having a compact representation. After, a wrapper forward selection method in a range of classification algorithms included in WEKA was performed. In the feature selection process, variables such as hand images, grip force, and age were found relevant, whereas weight and height did not provide important information to the classification. Our system obtains an AUC ROC curve greater than 0.94 for both thermal and RGB images using the RandomForest classifier. Thirty-eight subjects were considered for an external test in order to evaluate and validate the model implementation. In this test, an accuracy of 94.7% was obtained using RGB images; the confusion matrix revealed our system provides a correct diagnosis for all participants and failed in only two of them (5.3%). Graphical abstract Rheumatoid arthritis (RA) is an autoimmune disorder that typically affects people between 23 and 60 years old causing chronic synovial inflammation, symmetrical polyarthritis, destruction of large and small joints, and chronic disability. Clinical diagnosis of RA is stablished by current ACR-EULAR criteria, and it is crucial for starting conventional therapy in order to minimize damage progression. The 2010 ACR-EULAR criteria include the presence of swollen joints, elevated levels of rheumatoid factor or anti-citrullinated protein antibodies (ACPA), elevated acute phase reactant, and duration of symptoms. In this paper, a computer-aided system for helping in the RA diagnosis, based on quantitative and easy-to-acquire variables, is presented. The participants in this study were all female, grouped into two classes: class I, patients diagnosed with RA (n = 100), and class II corresponding to controls without RA (n = 100). The novel approach is constituted by the acquisition of thermal and RGB images, recording their hand grip strength or gripping force. The weight, height, and age were also obtained from all participants. The color layout descriptors (CLD) were obtained from each image for having a compact representation. After, a wrapper forward selection method in a range of classification algorithms included in WEKA was performed. In the feature selection process, variables such as hand images, grip force, and age were found relevant, whereas weight and height did not provide important information to the classification. Our system obtains an AUC ROC curve greater than 0.94 for both thermal and RGB images using the RandomForest classifier. Thirty-eight subjects were considered for an external test in order to evaluate and validate the model implementation. In this test, an accuracy of 94.7% was obtained using RGB images; the confusion matrix revealed our system provides a correct diagnosis for all participants and failed in only two of them (5.3%). |
Author | Cantillo-Negrete, Jessica Navarro-Zarza, José E. Cuevas-Valencia, René E. Hernández-Rosales, Diana E. Alarcón-Paredes, Antonio Guzmán-Guzmán, Iris P. Alonso, Gustavo A. |
Author_xml | – sequence: 1 givenname: Antonio surname: Alarcón-Paredes fullname: Alarcón-Paredes, Antonio organization: Facultad de Ingeniería, Universidad Autónoma de Guerrero – sequence: 2 givenname: Iris P. surname: Guzmán-Guzmán fullname: Guzmán-Guzmán, Iris P. organization: Facultad de Ciencias Químico-Biológicas, Universidad Autónoma de Guerrero – sequence: 3 givenname: Diana E. surname: Hernández-Rosales fullname: Hernández-Rosales, Diana E. organization: Facultad de Ingeniería, Universidad Autónoma de Guerrero – sequence: 4 givenname: José E. surname: Navarro-Zarza fullname: Navarro-Zarza, José E. organization: Hospital General Dr. Raymundo Abarca Alarcón – sequence: 5 givenname: Jessica surname: Cantillo-Negrete fullname: Cantillo-Negrete, Jessica organization: Division of Medical Engineering Research, Instituto Nacional de Rehabilitación “Luis Guillermo Ibarra Ibarra” – sequence: 6 givenname: René E. surname: Cuevas-Valencia fullname: Cuevas-Valencia, René E. organization: Facultad de Ingeniería, Universidad Autónoma de Guerrero – sequence: 7 givenname: Gustavo A. surname: Alonso fullname: Alonso, Gustavo A. email: gsilverio@uagro.mx organization: Facultad de Ingeniería, Universidad Autónoma de Guerrero |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/33420616$$D View this record in MEDLINE/PubMed |
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CitedBy_id | crossref_primary_10_3389_fimmu_2024_1409555 crossref_primary_10_2139_ssrn_4191391 crossref_primary_10_1038_s41598_023_42111_3 crossref_primary_10_3390_diagnostics13213298 crossref_primary_10_3390_medicina59122139 crossref_primary_10_1016_j_jtherbio_2022_103404 crossref_primary_10_1016_j_intimp_2024_112238 crossref_primary_10_1007_s13755_023_00246_7 crossref_primary_10_1007_s40744_022_00475_4 |
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Keywords | Medical assistive strategy Gripping force Rheumatoid arthritis Computer-aided diagnosis Machine learning |
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Snippet | Rheumatoid arthritis (RA) is an autoimmune disorder that typically affects people between 23 and 60 years old causing chronic synovial inflammation,... Rheumatoid arthritis (RA) is an autoimmune disorder that typically affects people between 23 and 60 years old causing chronic synovial inflammation,... |
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SubjectTerms | Algorithms Antibodies Arthritis Artificial intelligence Autoimmune diseases Biomedical and Life Sciences Biomedical Engineering and Bioengineering Biomedicine Citrulline Classification Color imagery Computer Applications Diagnosis Grasping Grip force Grip strength Human Physiology Image acquisition Imaging Joint diseases Joints (anatomy) Medical diagnosis Medical imaging Model accuracy Original Article Polyarthritis Radiology Rheumatoid arthritis Rheumatoid factor Weight |
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Title | Computer-aided diagnosis based on hand thermal, RGB images, and grip force using artificial intelligence as screening tool for rheumatoid arthritis in women |
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