نتایج جستجو برای: خود همبستگى جزئى arima ایستگاه قائمشهر
تعداد نتایج: 162761 فیلتر نتایج به سال:
با توجه به اهمیت پیش بینی بارش، نیاز به وجود آمار دارای کیفیت مناسب، یا با طول بسنده در مطالعات آبشناسی و اینکه نبودن داده های ثبت شده arima بارش در بسیاری از حوضههای آبخیز، استفاده از گروههای زمانی بارش تولید شده با شبیههایی، مانند زنجیرهی مارکوفی برای تولید بارش در یک ایستگاه موضوعی مهم و متداول شده است. با توجه به ضریب اهمیت و تأثیر زیاد توزیع مکانی بارندگی در ویژگیهای آبنگار خروجی از ی...
Demand planning for electricity consumption is a key success factor for the development of any countries. However, this can only be achieved if the demand is forecasted accurately. In this research, different forecasting methods—autoregressive integrated moving average (ARIMA), artificial neural network (ANN) and multiple linear regression (MLR)—were utilized to formulate prediction models of t...
Two smoothing strategies combined with autoregressive integrated moving average (ARIMA) and autoregressive neural networks (ANNs) models to improve the forecasting of time series are presented. The strategy of forecasting is implemented using two stages. In the first stage the time series is smoothed using either, 3-point moving average smoothing, or singular value Decomposition of the Hankel m...
Previous research for short-term traffic prediction mostly forecasts only one time interval ahead. Such a methodology may not be adequate for response to emergency circumstances and road maintenance activities that last for a few hours or a longer period. In this study, various approaches, including naïve factor methods, exponential weighted moving average (EWMA), autoregressive integrated movi...
This work aims to treat the parameter estimation problem for fractional-integrated autoregressive moving average (F-ARIMA) processes under external noise. Unlike the conventional approaches from the perspective of the time domain, a maximum likelihood (ML) method is developed in the frequency domain since the power spectrum of an F-ARIMA process is in a very explicit and more simple form. Howev...
This manuscript deals with the similarity querying problems for cases where data loss exists. Limitations in traditional methodologies for querying incomplete data in database, data mining and information retrieval research has urged to shift into development of different new innovative models. This Investigation is done based on a model developed based on ARIMA constructional model to check th...
For the fractional ARIMA model, we demonstrate that wrong model speciication might lead to serious problems of inference in nite samples. We assess the performance of various model selection criteria when the true model is fractionally integrated and the alternatives of interest are ARMA and fractional ARIMA models. The likelihood of successful identiication increases substantially with rising ...
BACKGROUND The infection rate of syphilis in China has increased dramatically in recent decades, becoming a serious public health concern. Early prediction of syphilis is therefore of great importance for heath planning and management. METHODS In this paper, we analyzed surveillance time series data for primary, secondary, tertiary, congenital and latent syphilis in mainland China from 2005 t...
یکی از اجزای بسیار مهم بودجه دولت درآمدهای مالیاتی کشور می باشد. اطلاع از میزان درآمدهای مالیاتی قابل حصول در منابع مختلف مالیاتی، علاوه بر تخصیص بهینه منابع در جهت وصول آنها، دولت را درانجام برنامه ریزی های دقیق مالی کمک کرده و میزان مشارکت مردم را در تأمین مالی هزینه های عمومی دولت مشخص می کند. در این تحقیق، با بکارگیری اطلاعات آماری سالهای 84-1350، درآمدهای مالیاتی مستقیم (شرکت ها، درآمد وثر...
BACKGROUND Hepatitis is a serious public health problem with increasing cases and property damage in Heng County. It is necessary to develop a model to predict the hepatitis epidemic that could be useful for preventing this disease. METHODS The autoregressive integrated moving average (ARIMA) model and the generalized regression neural network (GRNN) model were used to fit the incidence data ...
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