Showing 1,941 - 1,960 results of 2,059 for search 'detection array', query time: 0.09s Refine Results
  1. 1941

    PSZ2 G181.06+48.47. II. Radio Analysis of a Low-mass Cluster with Exceptionally Distant Radio Relics by Kamlesh Rajpurohit, Andra Stroe, Ewan O’Sullivan, Eunmo Ahn, Wonki Lee, Hyejeon Cho, M. James Jee, Reinout van Weeren, Lorenzo Lovisari, Kyle Finner, Aurora Simionescu, William Forman, Timothy Shimwell, Christine Jones, Zhenlin Zhu, Scott Randall

    Published 2025-01-01
    “…We report upgraded Giant Metrewave Radio Telescope and Karl J. Jansky Very Large Array radio observations of a low-mass merging galaxy cluster PSZ2 G181.06+48.47. …”
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    Article
  2. 1942

    Epigenetic Signatures of Dental Stem Cells: Insights into DNA Methylation and Noncoding RNAs by Rosanna Guarnieri, Agnese Giovannetti, Giulia Marigliani, Michele Pieroni, Tommaso Mazza, Ersilia Barbato, Viviana Caputo

    Published 2025-08-01
    “…This study reanalyzed publicly available DNA methylation data generated with Illumina Infinium HumanMethylation450 BeadChip arrays (450K arrays) from DPSCs, PDLSCs, and DFPCs. …”
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    Article
  3. 1943
  4. 1944
  5. 1945

    Recovering Pulsar Periodicity from Time-of-arrival Data by Finding the Shortest Vector in a Lattice by Dotan Gazith, Aaron B. Pearlman, Barak Zackay

    Published 2025-01-01
    “…The strict periodicity of pulsars is one of the primary ways through which their nature and environment can be studied, and it has also enabled precision tests of general relativity and studies of nanohertz gravitational waves using pulsar timing arrays (PTAs). Identifying such a periodicity from a discrete set of arrival times is a difficult algorithmic problem, In particular when the pulsar is in a binary system. …”
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    Article
  6. 1946

    Genome wide linkage mapping for black point resistance in a recombinant inbred line population of Zhongmai 578 and Jimai 22 by Tiantian Chen, Lei Li, Dan Liu, Yubing Tian, Lingli Li, Jianqi Zeng, Awais Rasheed, Shuanghe Cao, Xianchun Xia, Zhonghu He, Jindong Liu, Yong Zhang

    Published 2025-09-01
    “…A high-density genetic linkage map of the RIL population was constructed with the wheat 50K single nucleotide polymorphism (SNP) array. Six stable QTLs for black point resistance were detected, QBp.caas-2A, QBp.caas-2B1, QBp.caas-2B2, QBp.caas-2D, QBp.caas-3A, and QBp.caas-5B, which explained 2.1–28.8% of the phenotypic variances. …”
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    Article
  7. 1947

    Estimation of soil properties using Hyperspectral imaging and Machine learning by Eirini Chlouveraki, Nikolaos Katsenios, Aspasia Efthimiadou, Erato Lazarou, Kalliopi Kounani, Eleni Papakonstantinou, Dimitrios Vlachakis, Aikaterini Kasimati, Ioannis Zafeiriou, Borja Espejo-Garcia, Spyros Fountas

    Published 2025-03-01
    “…Hyperspectral sensors generate vast arrays of spectral bands, offering unprecedented opportunities to estimate soil properties quickly and cost-effectively when integrated into the appropriate machine learning (ML) pipeline. …”
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    Article
  8. 1948

    A Multiwavelength Study of the Dynamic Environment Surrounding the FUor V960 Mon by Philipp Weber, Silvio Ulloa, Sebastián Pérez, James Miley, Lucas Cieza, Sergei Nayakshin, Alice Zurlo, Hauyu Baobab Liu, Fernando Cruz-Sáenz de Miera, Antonio Hales, Antonio Garufi, Dimitris Stamatellos, Ágnes Kóspál, Viviana Guzmán

    Published 2025-01-01
    “…Moreover, the C ^18 O emission overlaps with the clumps of the detected fragmenting spiral arm. These findings provide the strongest evidence to date for a connection between infalling material, fragmentation, and the intensity outburst of a protostar. …”
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    Article
  9. 1949

    Genome-wide linkage mapping of Fusarium crown rot in common wheat (Triticum aestivum L.) by Faji Li, Can Guo, Qi Zhao, Weie Wen, Shengnan Zhai, Xinyou Cao, Cheng Liu, Dungong Cheng, Jun Guo, Yan Zi, Aifeng Liu, Jianmin Song, Jianjun Liu, Jindong Liu, Haosheng Li

    Published 2024-11-01
    “…Notably, QFCR.caas-5BL and QFCR.caas-6BS had been previously detected, whereas QFCR.caas-3AL, QFCR.caas-3DL, and QFCR.caas-7DS are novel loci. …”
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    Article
  10. 1950

    Spatiotemporal responses to a rural highway by four mammal species by Caitlin K. Brett, Anna R. Mehner, John H. Young, Sarah E. Lehnen, Richard J. Kline

    Published 2025-07-01
    “…This study used camera trap arrays to quantify activity surrounding FM106 for four mammal species. …”
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    Article
  11. 1951

    Novel long noncoding lncARF mediated hyperhomocysteinemia-induced atherosclerosis via autophagy inhibition in foam cells by Ning Ding, Shengchao Ma, Qingning Chang, Lin Xie, Guizhong Li, Yinju Hao, Jiantuan Xiong, Anning Yang, Xiaoling Yang, Yideng Jiang, Huiping Zhang

    Published 2025-07-01
    “…Mass spectrometry, RNA pull-down and RNA immunoprecipitation (RIP) assays were employed to uncover a mechanistic role of lncARF. Mass array assay and chromatin immunoprecipitation (ChIP) were used to detect the transcriptional activation of lncARF mediated by transcription factor. …”
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    Article
  12. 1952

    Identification of genetic loci for grain yield-related traits in the wheat population Zhongmai 578/Jimai 22 by Dan LIU, De-hui ZHAO, Jian-qi ZENG, Rabiu Sani SHAWAI, Jing-yang TONG, Ming LI, Fa-ji LI, Shuo ZHOU, Wen-li HU, Xian-chun XIA, Yu-bing TIAN, Qian ZHU, Chun-ping WANG, De-sen WANG, Zhong-hu HE, Jin-dong LIU, Yong ZHANG

    Published 2023-07-01
    “…The parents and 262 RILs were genotyped using the wheat 50K single nucleotide polymorphism (SNP) array. A high-density genetic map was constructed with 1 501 non-redundant bin markers, spanning 2 384.95 cM. …”
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    Article
  13. 1953

    Constraining the Cosmic-Ray Energy Based on Observations of Nearby Galaxy Clusters by LHAASO by Zhen Cao, F. Aharonian, Y. X. Bai, Y. W. Bao, D. Bastieri, X. J. Bi, Y. J. Bi, W. Bian, A. V. Bukevich, C. M. Cai, W. Y. Cao, Zhe Cao, J. Chang, J. F. Chang, A. M. Chen, E. S. Chen, H. X. Chen, Liang Chen, Long Chen, M. J. Chen, M. L. Chen, Q. H. Chen, S. Chen, S. H. Chen, S. Z. Chen, T. L. Chen, X. B. Chen, X. J. Chen, Y. Chen, N. Cheng, Y. D. Cheng, M. C. Chu, M. Y. Cui, S. W. Cui, X. H. Cui, Y. D. Cui, B. Z. Dai, H. L. Dai, Z. G. Dai, Danzengluobu, Y. X. Diao, X. Q. Dong, K. K. Duan, J. H. Fan, Y. Z. Fan, J. Fang, J. H. Fang, K. Fang, C. F. Feng, H. Feng, L. Feng, S. H. Feng, X. T. Feng, Y. Feng, Y. L. Feng, S. Gabici, B. Gao, C. D. Gao, Q. Gao, W. Gao, W. K. Gao, M. M. Ge, T. T. Ge, L. S. Geng, G. Giacinti, G. H. Gong, Q. B. Gou, M. H. Gu, F. L. Guo, J. Guo, X. L. Guo, Y. Q. Guo, Y. Y. Guo, Y. A. Han, O. A. Hannuksela, M. Hasan, H. H. He, H. N. He, J. Y. He, X. Y. He, Y. He, S. Hernández-Cadena, Y. K. Hor, B. W. Hou, C. Hou, X. Hou, H. B. Hu, S. C. Hu, C. Huang, D. H. Huang, J. J. Huang, T. Q. Huang, W. J. Huang, X. T. Huang, X. Y. Huang, Y. Huang, Y. Y. Huang, X. L. Ji, H. Y. Jia, K. Jia, H. B. Jiang, K. Jiang, X. W. Jiang, Z. J. Jiang, M. Jin, S. Kaci, M. M. Kang, I. Karpikov, D. Khangulyan, D. Kuleshov, K. Kurinov, B. B. Li, Cheng Li, Cong Li, D. Li, F. Li, H. B. Li, H. C. Li, Jian Li, Jie Li, K. Li, L. Li, R. L. Li, S. D. Li, T. Y. Li, W. L. Li, X. R. Li, Xin Li, Y. Z. Li, Zhe Li, Zhuo Li, E. W. Liang, Y. F. Liang, S. J. Lin, B. Liu, C. Liu, D. Liu, D. B. Liu, H. Liu, H. D. Liu, J. Liu, J. L. Liu, J. R. Liu, M. Y. Liu, R. Y. Liu, S. M. Liu, W. Liu, X. Liu, Y. Liu, Y. Liu, Y. N. Liu, Y. Q. Lou, Q. Luo, Y. Luo, H. K. Lv, B. Q. Ma, L. L. Ma, X. H. Ma, J. R. Mao, Z. Min, W. Mitthumsiri, G. B. Mou, H. J. Mu, Y. C. Nan, A. Neronov, K. C. Y. Ng, M. Y. Ni, L. Nie, L. J. Ou, P. Pattarakijwanich, Z. Y. Pei, J. C. Qi, M. Y. Qi, J. J. Qin, A. Raza, C. Y. Ren, D. Ruffolo, A. Sáiz, M. Saeed, D. Semikoz, L. Shao, O. Shchegolev, Y. Z. Shen, X. D. Sheng, Z. D. Shi, F. W. Shu, H. C. Song, Yu. V. Stenkin, V. Stepanov, Y. Su, D. X. Sun, H. Sun, Q. N. Sun, X. N. Sun, Z. B. Sun, N. H. Tabasam, J. Takata, P. H. T. Tam, H. B. Tan, Q. W. Tang, R. Tang, Z. B. Tang, W. W. Tian, C. N. Tong, L. H. Wan, C. Wang, G. W. Wang, H. G. Wang, H. H. Wang, J. C. Wang, K. Wang, Kai Wang, Kai Wang, L. P. Wang, L. Y. Wang, L. Y. Wang, R. Wang, W. Wang, X. G. Wang, X. J. Wang, X. Y. Wang, Y. Wang, Y. D. Wang, Z. H. Wang, Z. X. Wang, Zheng Wang, D. M. Wei, J. J. Wei, Y. J. Wei, T. Wen, S. S. Weng, C. Y. Wu, H. R. Wu, Q. W. Wu, S. Wu, X. F. Wu, Y. S. Wu, S. Q. Xi, J. Xia, J. J. Xia, G. M. Xiang, D. X. Xiao, G. Xiao, Y. L. Xin, Y. Xing, D. R. Xiong, Z. Xiong, D. L. Xu, R. F. Xu, R. X. Xu, W. L. Xu, L. Xue, D. H. Yan, J. Z. Yan, T. Yan, C. W. Yang, C. Y. Yang, F. F. Yang, L. L. Yang, M. J. Yang, R. Z. Yang, W. X. Yang, Y. H. Yao, Z. G. Yao, X. A. Ye, L. Q. Yin, N. Yin, X. H. You, Z. Y. You, Y. H. Yu, Q. Yuan, H. Yue, H. D. Zeng, T. X. Zeng, W. Zeng, M. Zha, B. B. Zhang, B. T. Zhang, F. Zhang, H. Zhang, H. M. Zhang, H. Y. Zhang, J. L. Zhang, Li Zhang, P. F. Zhang, P. P. Zhang, R. Zhang, S. R. Zhang, S. S. Zhang, W. Y. Zhang, X. Zhang, X. P. Zhang, Yi Zhang, Yong Zhang, Z. P. Zhang, J. Zhao, L. Zhao, L. Z. Zhao, S. P. Zhao, X. H. Zhao, Z. H. Zhao, F. Zheng, W. J. Zhong, B. Zhou, H. Zhou, J. N. Zhou, M. Zhou, P. Zhou, R. Zhou, X. X. Zhou, X. X. Zhou, B. Y. Zhu, C. G. Zhu, F. R. Zhu, H. Zhu, K. J. Zhu, Y. C. Zou, X. Zuo

    Published 2025-01-01
    “…As CRs propagate through the intracluster medium, they generate diffuse γ -rays detectable by arrays such as LHAASO. These γ -rays result from proton–proton (pp) collisions of very high-energy cosmic rays or inverse Compton (IC) scattering of positron-electron pairs created by pγ interactions of ultra-high-energy cosmic rays (UHECRs). …”
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    Article
  14. 1954

    Design and Demonstration of MOCVD-Grown <italic>p</italic>-Type Al<sub>x</sub>Ga<sub>1-x</sub>N&#x002F;GaN Quantum Well Infrared Photodetector by Alireza Lanjani, Benjamin McEwen, Vincent Meyers, David Hill, Winston K. Chan, Emma Rocco, Shadi Omranpour, F. Shahedipour-Sandvik

    Published 2024-01-01
    “…Quantum well infrared photodetectors (QWIPs) have been demonstrated to be a suitable candidate for IR detection applications. These detectors attracted increasing interest due to their design flexibility and broad spectral absorption from short wave (SWIR) to long wave infrared (LWIR) and high uniformity. …”
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    Article
  15. 1955

    IL-19 as a promising theranostic target to reprogram the glioblastoma immunosuppressive microenvironment by Gilbert Aaron Lee, Justin Bo-Kai Hsu, Yu-Wei Chang, Li-Chun Hsieh, Yi-Tien Li, Ying Chieh Wu, Cheng-Ying Chu, Yung-Hsiao Chiang, Wan-Yuo Guo, Chih-Chun Wu, Liang-Wei Chen, Hung-Wen Kao, Wan-Li Lin, Li‑Wen Tseng, Ting-Wei Weng, Duen-Pang Kuo, Sho-Jen Cheng, Yung-Chieh Chen, Shiu-Wen Huang, Hsing-Jien Kung, Cheng-Yu Chen

    Published 2025-03-01
    “…Prussian blue staining further confirmed the localization of these nanoparticles in tumor tissues, verifying their potential as a diagnostic tool for detecting IL-19 expression in glioblastoma. This system offers a theranostic approach, integrating diagnostic imaging and targeted therapy for IL-19-expressing GBM. …”
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    Article
  16. 1956

    The JCMT Legacy Release: SCUBA-2 850 μm Coadds and Catalogs by Sarah F. Graves, Jessica T. Dempsey, Graham S. Bell, David S. Berry, Iain M. Coulson, Malcolm J. Currie, Per Friberg, Tim Jenness, Doug Johnstone, Junhao Liu, Steven Mairs, Harriet A. L. Parsons, Harold Pena, Mark G. Rawlings, Holly S. Thomas, Jan G. A. Wouterloot

    Published 2024-01-01
    “…We present the James Clerk Maxwell Telescope (JCMT) 850 μ m Legacy Release, containing uniformly reduced, coadded tiles, and catalogs of detected emission, for the 850 μ m data from all Submillimetre Common User Bolometer Array 2 (SCUBA-2) observations taken between 2011 February 2 and 2020 August 1. …”
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    Article
  17. 1957
  18. 1958

    A deep learning model to predict Ki-67 positivity in oral squamous cell carcinoma by Francesco Martino, Gennaro Ilardi, Silvia Varricchio, Daniela Russo, Rosa Maria Di Crescenzo, Stefania Staibano, Francesco Merolla

    Published 2024-12-01
    “…Aside from classification, detection, and segmentation models, predictive models are gaining traction since they can impact diagnostic processes and laboratory activity, lowering consumable usage and turnaround time. …”
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    Article
  19. 1959
  20. 1960