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13篇 您的检索式:作者名="ATHAR al"
    题名 作者 年代 出处 被引量
1Mechanism of ultraviolet B induced cell cycle arrest in G_2/M phase in immortalized skin keratinocytes with defective p53显示文摘Athar M Kim AL Ahmad N 2000Biochem Biophys Res Commun2000,277,1:1
2Mechanism of ultraviolet B-induced cell cycle arrest in G2/M phase in immortalized skin keratinocytes with defective p53显示文摘 Kim AL Ahmad N 2000Biochem Biophys Res Commun2000,277,1:1
3Mechanism of ultraviolet B- induced cell cycle arrest in G2/M phase in immortalized skin keratinocytes with defective p53 显示文摘Athar M Kim AL Ahmad N 2000Biochem Biophys Res Commun2000,277,1:1
4Multiplemolecular targets of resveratrol : Anti-carcinogenic mechanisms显示文摘Athar M Back JH Kopelovich L Bickers DR Kim AL 2009Arch Biochem Biophys2009,486,2:1
5Mechanism of ultraviolet B-induced cell cycle arrest in G2/M phase in immortalized skin keratinocytes with defectuve p53 显示文摘Athar M Kim AL Ahmad N 2000Biochem Biophys Res Commun2000,277,1:1
6Ultraviolet-B-induced G1 arrest is mediated by down regulation of cyclin-dependent kinase 4 in transformed keratinocytes lacking functional p53 显示文摘Kim AL Athar M Bickers DR 2002J Invest Dermatol2002,118,:1
7Induction of oxyradicals by arsenic: implication for mechanism of genotoxicity显示文摘Liu SX Athar M Lippai I st al 2001ProcatlAcadSci2001,98,:1
8Dietary sodi-um and chloride for twenty- nine- to forty- two- day- oldbroiler chickens at constant electrolyte balance under sub-tropical summer conditions 显示文摘MUSHTAQ T MIRZA M A ATHAR al 2007The Journal of AppliedPoultry Research2007,16,2:1
9Sonic hedgehog signaling in Basalcell nevus syndrome显示文摘Athar M Li C Kim AL 2014Cancer Res2014,74,18:1
10Mechanism of ultraviolet B -induced cell cycle arrest in G2/M phase in immortalized skin keratinocytes with defectuve p53 显示文摘Athar M Kim AL Ahmad N 2000Biochem Biophys Res Commun2000,277,1:1
11Mechanism of ultraviolet B induced cell cycle arrest in G2/M phase in immortalized skin keratinocytes with defective P53 显示文摘Athar M Kim AL Ahmad N 2000Biochem Biophys Res Commun2000,277,1:1
12Sonic hedgehog signaling in Basal cell nevus syndrome显示文摘Athar M Li C Kim AL ' 2014Cancer Res2014,74,18:1
13Smart Energy Management System Using Machine Learning显示文摘Energy management is an inspiring domain in developing of renewable energy sources.However,the growth of decentralized energy production is revealing an increased complexity for power grid managers,inferring more quality and reliability to regulate electricity flows and less imbalance between electricity production and demand.The major objective of an energy management system is to achieve optimum energy procurement and utilization throughout the organization,minimize energy costs without affecting production,and minimize environmental effects.Modern energy management is an essential and complex subject because of the excessive consumption in residential buildings,which necessitates energy optimization and increased user comfort.To address the issue of energy management,many researchers have developed various frameworks;while the objective of each framework was to sustain a balance between user comfort and energy consumption,this problem hasn’t been fully solved because of how difficult it is to solve it.An inclusive and Intelligent Energy Management System(IEMS)aims to provide overall energy efficiency regarding increased power generation,increase flexibility,increase renewable generation systems,improve energy consumption,reduce carbon dioxide emissions,improve stability,and reduce energy costs.Machine Learning(ML)is an emerging approach that may be beneficial to predict energy efficiency in a better way with the assistance of the Internet of Energy(IoE)network.The IoE network is playing a vital role in the energy sector for collecting effective data and usage,resulting in smart resource management.In this research work,an IEMS is proposed for Smart Cities(SC)using the ML technique to better resolve the energy management problem.The proposed system minimized the energy consumption with its intelligent nature and provided better outcomes than the previous approaches in terms of 92.11% accuracy,and 7.89% miss-rate.Ali Sheraz Akram Sagheer Abbas Muhammad Adnan Khan Atifa Athar Taher M.Ghazal Hussam Al Hamadi 2024Computers, Materials & Continua2024,78,1:0
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