OMICS International organises 3000+ Global Conferenceseries Events every year across USA, Europe & Asia with support from 1000 more scientific Societies and Publishes 700+ Open Access Journals which contains over 50000 eminent personalities, reputed scientists as editorial board members.
Open Access Journals gaining more Readers and Citations
700 Journals and 15,000,000 Readers Each Journal is getting 25,000+ Readers
Journal of Clinical & Experimental Pathology received 2975 citations as per Google Scholar report
Articles published in Journal of Clinical & Experimental Pathology have been cited by esteemed scholars and scientists all around the world. Journal of Clinical & Experimental Pathology has got h-index 17, which means every article in Journal of Clinical & Experimental Pathology has got 17 average citations.
Following are the list of articles that have cited the articles published in Journal of Clinical & Experimental Pathology.
2023 | 2022 | 2021 | 2020 | 2019 | 2018 | 2017 | 2016 | |
---|---|---|---|---|---|---|---|---|
Total published articles |
56 | 33 | 60 | 47 | 23 | 27 | 31 | 42 |
Conference proceedings |
17 | 19 | 0 | 0 | 0 | 142 | 148 | 165 |
Citations received as per Google Scholar, other indexing platforms and portals |
31 | 130 | 146 | 171 | 150 | 167 | 189 | 174 |
Journal total citations count | 2975 |
Journal impact factor | 3 |
Journal 5 years impact factor | 3.95 |
Journal cite score | 3.61 |
Journal h-index | 17 |
Journal h-index since 2019 | 12 |
![]() |
Masoori L, Moin-Vaziri V, Kheirandish F, Akhoundi B, Haghighi A, et al. (2015) Sero-Prevalence Study of Visceral Leishmaniasis Using Direct Agglutination Test (DAT) in Children Up to 12 Years Old in Delphan City, Lorestan Province: Introduce A New Focus Of VL In Iran. Medical Journal of Tabriz University of Medical Sciences and Health Services 36: 68-73. |
View at Publisher | View at Google Scholar | |
![]() |
Jahangir AB, Akhoundi B, Mohebali M, Ghaderipour A, Kakoee Z, et al. (2013) Seroepidemiological Survey of Human Visceral Leishmaniasis in Ilam Province, West of Iran In 2013. 10: 56. |
View at Publisher | View at Google Scholar | |
![]() |
Ahmadi A, Hajilooi M, Solgi G, Abasi M, Bazmani A, et al. (2016) Evaluation of interleukin 8+ 2767 A/T polymorphism in visceral leishmaniasis. Asian Pacific Journal of Tropical Medicine 9: 1075-1077. |
View at Publisher | View at Google Scholar | |
![]() |
Arzamani K, Fazeli R, Shirzadi MR, Raeghi S, Arzamani M, et al. () Visceral Leishmaniasis in North Khorasan Province, Iran. |
View at Publisher | View at Google Scholar | |
![]() |
Rajabi M, Mansourian A, Pilesjö P, Bazmani A (2014) Environmental modelling of visceral leishmaniasis by susceptibility-mapping using neural networks: a case study in north-western Iran. Geospatial health. 9: 179-191. |
View at Publisher | View at Google Scholar | |
![]() |
Hajjaran H, Mohebali M, Teimouri A, Oshaghi MA, Mirjalali H, et al. (2014) Identification and phylogenetic relationship of Iranian strains of various Leishmania species isolated from cutaneous and visceral cases of leishmaniasis based on N-acetylglucosamine-1-phosphate transferase gene. Infection, Genetics and Evolution 26: 203-212. |
View at Publisher | View at Google Scholar | |
![]() |
Hamzavi Y, Hamzeh B, Mohebali M, Akhoundi B, Ajhang K, et al. (2012) Human visceral leishmaniasis in Kermanshah province, western Iran, during 2011-2012. Iranian journal of parasitology 7: 49. |
View at Publisher | View at Google Scholar | |
![]() |
Mohammadiha A, Mohebali M, Haghighi A, Mahdian R, Abadi AR, et al. (2013) Comparison of real-time PCR and conventional PCR with two DNA targets for detection of Leishmania (Leishmania) infantum infection in human and dog blood samples. Experimental parasitology 133: 89-94. |
View at Publisher | View at Google Scholar | |
![]() |
Hajjaran H, Mohebali M, Mamishi S, Vasigheh F, Oshaghi MA, et al. (2013) Molecular identification and polymorphism determination of cutaneous and visceral leishmaniasis agents isolated from human and animal hosts in Iran. BioMed research international 28: 2013. |
View at Publisher | View at Google Scholar | |
![]() |
Martínez–de la Puente J, Moreno–Indias I, Hernández–Castellano LE, Argüello A, Ruiz S, et al. (2012) Host-feeding pattern of Culex theileri (Diptera: Culicidae), potential vector of Dirofilaria immitis in the Canary Islands, Spain. Journal of medical entomology 49: 1419-1423. |
View at Publisher | View at Google Scholar | |
![]() |
Bravo-Barriga D, Parreira R, Almeida AP, Calado M, Blanco-Ciudad J, et al. (2016) Culex pipiens as a potential vector for transmission of Dirofilaria immitis and other unclassified Filarioidea in Southwest Spain. Veterinary parasitology 223: 173-180. |
View at Publisher | View at Google Scholar | |
![]() |
Kemenesi G, Kurucz K, Kepner A, Dallos B, Oldal M, et al. (2015) Circulation of Dirofilaria repens, Setaria tundra, and Onchocercidae species in Hungary during the period 2011–2013. Veterinary parasitology 214: 108-113. |
View at Publisher | View at Google Scholar | |
![]() |
Ferreira CA, de Pinho Mixão V, Novo MT, Calado MM, Gonçalves LA, et al. (2015) First molecular identification of mosquito vectors of Dirofilaria immitis in continental Portugal. Parasites & vectors 8: 139. |
View at Publisher | View at Google Scholar | |
![]() |
Morchón R, Carretón E, González-Miguel J, Mellado-Hernández I (2012) Heartworm disease (Dirofilaria immitis) and their vectors in Europe–new distribution trends. Frontiers in physiology 3: 75-85. |
View at Publisher | View at Google Scholar | |
![]() |
Shaikh J, Bangal P, Pandhre R, Saini V (2016) Lung Cancer: Brief Account of Advanced and Traditional Treatments and Diagnosis. Archives in Cancer Research. |
View at Publisher | View at Google Scholar | |
![]() |
Gautami J, Nadu T (2012) Research and Reviews: Journal of Pharmaceutics and Nanotechnology. |
View at Publisher | View at Google Scholar | |
![]() |
Rudolph M, Anzeneder T, Schulz A, Beckmann G, Byrne AT, et al. (2016) AKT1 E17K mutation profiling in breast cancer: prevalence, concurrent oncogenic alterations, and blood-based detection. BMC cancer 16: 622. |
View at Publisher | View at Google Scholar | |
![]() |
Liau JY, Lee YH, Tsai JH, Yuan CT, Chu CY, et al. (2017) Frequent PIK3CA activating mutations in nipple adenomas. Histopathology 70: 195-202. |
View at Publisher | View at Google Scholar | |
![]() |
Liau JY, Lan J, Hong JB, Tsai JH, Kuo KT, et al. (2016) Frequent PIK3CA-activating mutations in hidradenoma papilliferums. Human pathology 55: 57-62. |
View at Publisher | View at Google Scholar | |
![]() |
Ang D, VanSandt AM, Beadling C, Warrick A, West RB, et al. (2012) Biphasic papillary and lobular breast carcinoma with PIK3CA and IDH1 mutations. Diagnostic Molecular Pathology 21: 221-224. |
View at Publisher | View at Google Scholar | |
Make the best use of Scientific Research and information from our 700 + peer reviewed, Open Access Journals