Publication | Open Access
Literature Review on the Smart City Resources Analysis with Big Data Methodologies
13
Citations
13
References
2024
Year
EngineeringSmart CityBig Data AnalyticsSpatiotemporal DatabaseSocial SciencesBig Data ModelData ScienceData MiningSmart City GovernanceInternet Of ThingsSmart DataPrediction AlgorithmsUrban ApplicationData ManagementSensor DataPredictive AnalyticsGeographyKnowledge DiscoveryTemporal Pattern RecognitionUrban PlanningBig Data MethodologiesComputer ScienceTimeseries PredictionForecastingLiterature ReviewData Stream MiningTechnologySpatio-temporal ModelBig Data
Abstract This article provides a systematic literature review on applying different algorithms to municipal data processing, aiming to understand how the data were collected, stored, pre-processed, and analyzed, to compare various methods, and to select feasible solutions for further research. Several algorithms and data types are considered, finding that clustering, classification, correlation, anomaly detection, and prediction algorithms are frequently used. As expected, the data is of several types, ranging from sensor data to images. It is a considerable challenge, although several algorithms work very well, such as Long Short-Term Memory (LSTM) for timeseries prediction and classification.
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