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Sustainable power systems operations under renewable energy induced disjunctive uncertainties via machine learning-based robust optimization. (2022). Zhao, Ning ; You, Fengqi.
In: Renewable and Sustainable Energy Reviews.
RePEc:eee:rensus:v:161:y:2022:i:c:s1364032122003343.

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    RePEc:gam:jsusta:v:13:y:2021:i:24:p:13609-:d:698734.

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  28. Reduction of Power Imbalances Using Battery Energy Storage System in a Bulk Power System with Extremely Large Photovoltaics Interactions. (2021). Masuta, Taisuke ; Yoshioka, Taisei ; Udawalpola, Rajitha ; Takahashi, Kohei ; Ohtake, Hideaki.
    In: Energies.
    RePEc:gam:jeners:v:14:y:2021:i:3:p:522-:d:483478.

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  29. Uncertainty in Unit Commitment in Power Systems: A Review of Models, Methods, and Applications. (2021). Hong, Ying-Yi ; Francesco, Gerard.
    In: Energies.
    RePEc:gam:jeners:v:14:y:2021:i:20:p:6658-:d:656355.

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  30. Metaheuristic search in smart grid: A review with emphasis on planning, scheduling and power flow optimization applications. (2021). Giamarelos, N ; Stogiannos, M ; Papadimitrakis, M ; Livanos, N. A.-I., ; Zois, E N ; Alexandridis, A.
    In: Renewable and Sustainable Energy Reviews.
    RePEc:eee:rensus:v:145:y:2021:i:c:s1364032121003609.

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  31. Profit-based unit commitment problem: A review of models, methods, challenges, and future directions. (2021). Abdi, Hamdi.
    In: Renewable and Sustainable Energy Reviews.
    RePEc:eee:rensus:v:138:y:2021:i:c:s1364032120307905.

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  32. A novel cluster-based spinning reserve dynamic model for wind and PV power reinforcement. (2021). Nikolaidis, Pavlos ; Poullikkas, Andreas.
    In: Energy.
    RePEc:eee:energy:v:234:y:2021:i:c:s0360544221015188.

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  33. Improved Salp–Swarm Optimizer and Accurate Forecasting Model for Dynamic Economic Dispatch in Sustainable Power Systems. (2020). Ali, Ziad M ; Abdel-Nasser, Mohamed ; Mahmoud, Karar ; Mustafa, Eman.
    In: Sustainability.
    RePEc:gam:jsusta:v:12:y:2020:i:2:p:576-:d:307980.

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  34. A Generalized Unit Commitment and Economic Dispatch Approach for Analysing the Polish Power System under High Renewable Penetration. (2020). Suwaa, Wojciech ; Tokarski, Stanisaw ; Pluta, Marcin ; Raczyski, Maciej ; Zyk, Janusz ; Wyrwa, Artur.
    In: Energies.
    RePEc:gam:jeners:v:13:y:2020:i:8:p:1952-:d:345997.

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  35. An Adjusted Weight Metric to Quantify Flexibility Available in Conventional Generators for Low Carbon Power Systems. (2020). Abujarad, Saleh ; Mustafa, Mohd Wazir ; Vandevelde, Lieven ; Jamian, Jasrul Jamani ; Desmet, Jan ; Abdilahi, Abdirahman M.
    In: Energies.
    RePEc:gam:jeners:v:13:y:2020:i:21:p:5658-:d:436696.

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  36. Feasible Reserve in Day-Ahead Unit Commitment Using Scenario-Based Optimization. (2020). Huang, Yen-Chih ; Ocampo, Eric A ; Kuo, Cheng-Chien.
    In: Energies.
    RePEc:gam:jeners:v:13:y:2020:i:20:p:5239-:d:425143.

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  37. Day-ahead optimal dispatch of an integrated energy system considering time-frequency characteristics of renewable energy source output. (2020). Zhou, Xingqiu ; Qiu, QI ; Zheng, Lingwei ; Yang, Lan.
    In: Energy.
    RePEc:eee:energy:v:209:y:2020:i:c:s0360544220315425.

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  38. Expandable deep learning for real-time economic generation dispatch and control of three-state energies based future smart grids. (2020). Wang, Tao ; Gao, QI ; Zhao, Lulin ; Yin, Linfei.
    In: Energy.
    RePEc:eee:energy:v:191:y:2020:i:c:s036054421932256x.

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  39. Wind utilization and carbon emissions equilibrium: Scheduling strategy for wind-thermal generation system. (2019). .
    In: Energy & Environment.
    RePEc:sae:engenv:v:30:y:2019:i:6:p:1111-1131.

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  40. Smart Integration Based on Hybrid Particle Swarm Optimization Technique for Carbon Dioxide Emission Reduction in Eco-Ports. (2019). Swief, R A ; El-Amary, Noha H ; Balbaa, Alsnosy.
    In: Sustainability.
    RePEc:gam:jsusta:v:11:y:2019:i:8:p:2218-:d:222326.

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  41. Energy Storage System Analysis Review for Optimal Unit Commitment. (2019). Hong, Ying-Yi ; Senjyu, Tomonobu ; Mandal, Paras ; Adewuyi, Oludamilare Bode ; Or, Harun ; Hemeida, Ashraf Mohamed.
    In: Energies.
    RePEc:gam:jeners:v:13:y:2019:i:1:p:158-:d:302956.

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  42. Effect of Different Interval Lengths in a Rolling Horizon MILP Unit Commitment with Non-Linear Control Model for a Small Energy System. (2019). Zimmermann, Tobias ; Erichsen, Gerrit ; Kather, Alfons.
    In: Energies.
    RePEc:gam:jeners:v:12:y:2019:i:6:p:1003-:d:214041.

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  43. An Improved Constrained Order Optimization Algorithm for Uncertain SCUC Problem Solving. (2019). Huang, Yuehua ; Liu, Songkai ; Yang, Nan ; Jia, Junjie ; Chen, Haoze ; Xing, Chao ; Zhu, Binxin.
    In: Energies.
    RePEc:gam:jeners:v:12:y:2019:i:23:p:4498-:d:291026.

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  44. Quantum computing for energy systems optimization: Challenges and opportunities. (2019). You, Fengqi ; Ajagekar, Akshay.
    In: Energy.
    RePEc:eee:energy:v:179:y:2019:i:c:p:76-89.

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  45. Analytic versus solver-based calculated daily operations of district energy plants. (2019). Ostergaard, Poul Alberg ; Andersen, Anders N.
    In: Energy.
    RePEc:eee:energy:v:175:y:2019:i:c:p:333-344.

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  46. A Unit Commitment and Economic Dispatch Model of the GB Electricity Market – Formulation and Application to Hydro Pumped Storage. (2019). Newbery, David M ; McCarty, T ; Chyong, C-K., .
    In: Cambridge Working Papers in Economics.
    RePEc:cam:camdae:1968.

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  47. Power System Day-Ahead Unit Commitment Based on Chance-Constrained Dependent Chance Goal Programming. (2018). Li, Zhiwei ; Jin, Tianran ; Zhao, Shuqiang ; Liu, Jinshan.
    In: Energies.
    RePEc:gam:jeners:v:11:y:2018:i:7:p:1718-:d:155536.

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  48. Scheduling Model for Renewable Energy Sources Integration in an Insular Power System. (2018). Shafie-Khah, Miadreza ; Lujano-Rojas, Juan M ; Osorio, Gerardo J.
    In: Energies.
    RePEc:gam:jeners:v:11:y:2018:i:1:p:144-:d:125807.

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  49. Improving wind power integration by a novel short-term dispatch model based on free heat storage and exhaust heat recycling. (2018). Zhou, Zhigang ; Zheng, Jinfu ; Wang, Jinda ; Zhao, Jianing.
    In: Energy.
    RePEc:eee:energy:v:160:y:2018:i:c:p:940-953.

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  50. A stochastic mid-term scheduling for integrated wind-thermal systems using self-adaptive optimization approach: A comparative study. (2018). Niknam, Taher ; Shafie-Khah, Miadreza ; Aghaei, Jamshid ; Massrur, Hamid Reza.
    In: Energy.
    RePEc:eee:energy:v:155:y:2018:i:c:p:552-564.

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  51. A comparison of price-taker and production cost models for determining system value, revenue, and scheduling of concentrating solar power plants. (2018). Denholm, Paul ; Mehos, Mark ; Jorgenson, Jennie ; Martinek, Janna.
    In: Applied Energy.
    RePEc:eee:appene:v:231:y:2018:i:c:p:854-865.

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  52. An integrated framework for operational flexibility assessment in multi-period power system planning with renewable energy production. (2018). Abdin, Islam F ; Zio, Enrico.
    In: Applied Energy.
    RePEc:eee:appene:v:222:y:2018:i:c:p:898-914.

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  53. An 8-Zone ISO-NE Test System with Physically-Based Wind Power. (2017). Tesfatsion, Leigh ; Li, Wanning.
    In: ISU General Staff Papers.
    RePEc:isu:genstf:201701310800001017.

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  54. A Metaheuristic Approach to the Multi-Objective Unit Commitment Problem Combining Economic and Environmental Criteria. (2017). , Luis.
    In: Energies.
    RePEc:gam:jeners:v:10:y:2017:i:12:p:2029-:d:121125.

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  55. Merit order or unit-commitment: How does thermal power plant modeling affect storage demand in energy system models?. (2017). Fichter, T ; Cebulla, F.
    In: Renewable Energy.
    RePEc:eee:renene:v:105:y:2017:i:c:p:117-132.

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