نتایج جستجو برای: تخمینزنندههای پانل پویای gmm آرنالو بوند
تعداد نتایج: 11319 فیلتر نتایج به سال:
ادبیات اخیر اقتصادی توسعه نهاد ها و موسسات مالی را به عنوان یکی از عوامل مهم توضیحی رشد بلند مدت اقتصادی معرفی می کند. در واقع می توان گفت توسعه نهاد ها و موسسات مالی در شرایط باز بودن اقتصاد طی فرایند آزادسازی مالی و تجاری موثر تر واقع می شوند. این مطالعه بر اساس مدل های پانل پویا (dpd) و با استفاده از تخمین زن گشتاورهای تعمیم یافته (gmm) ، طی دوره زمانی ???? تا ???5به بررسی تأثیر باز بودن اقت...
در سال های اخیر بسیاری از محققین تلاش کرده اند که آیا برای رشد اقتصادی تنها اکتفا نمودن به منابع فسیلی و پایان پذیر کافی به نظر می رسد یا اینکه باید از انرژی های تجدیدپذیر نیز به منظوررشد اقتصادی بیشتر استفاده نمود؟ در این پژوهش رابطه ی بین مصرف انرژی های تجدیدپذیر و رشد اقتصادی مورد بررسی قرار گرفته است. این مطالعه با استفاده از مدل پانل دیتا پویا(gmm) صورت گرفته است. نمونه آماری استفاده شده د...
The present study evaluates MBCM and GMM solutions for both ASV and ASI problems involving text-independent telephone speech from the King speech database. The MBCM's accuracy is enhanced by selectively removing those classi ers within the model which perform worst (pruning). An unpruned MBCM outperforms a GMM for ASV and speakers taken from within the same dialectic region (San Diego, CA). Onc...
This paper examines GMM and ML estimation of econometric models and the theory of Hausman tests with sampling weights. Weighted conditional GMM can be more e$cient than weighted conditional MLE, an ine$cient alternative to full information MLE under choice-based sampling, unless regressions have homoscedastic additive disturbances or sampling weights are independent of exogenous variables. GMM ...
Point-of-Interest (POI) recommendation is a significant service for location-based social networks (LBSNs). It recommends new places such as clubs, restaurants, and coffee bars to users. Whether recommended locations meet users’ interests depends on three factors: user preference, social influence, and geographical influence. Hence extracting the information from users’ check-in records is the ...
Subspace Gaussian mixture model(GMM) is an alternative approach to approximate the probabilistic density function (p.d.f) of a set of independent identical distributed (i.i.d) data with prior density estimates. In this approach, the prior density of GMM parameters is estimated from a development dataset, and when predict the new enrolled data, the prior knowledge can be utilised by criteria lik...
Image segmentation techniques are considered the main artifact against which the computer can visualize the objects in that scene and for further processing, many hand segmentation techniques are adopted in this direction which consumes the color cue as the enjoinder tools for spotting the skin pixels and non-skin pixels, GMM has been implemented successfully in this area which can tone single ...
We develop a GMM estimator for the distribution of a variable where summary statistics are available only for intervals of the random variable. Without individual data, once cannot calculate the weighting matrix for the GMM estimator. Instead, we propose a simulated weighting matrix based on a first-step consistent estimate. When the functional form of the underlying distribution is unknown, we...
The problem of context recognition from mobile audio data is considered. We consider ten different audio contexts (such as car, bus, office and outdoors) prevalent in daily life situations. We choose mel-frequency cepstral coefficient (MFCC) parametrization and present an extensive comparison of six different classifiers: knearest neighbor (kNN), vector quantization (VQ), Gaussian mixture model...
Speaker indexing has recently emerged as an important task due to the rapidly growing volume of audio archives. Current filtration techniques still suffer from problems both in accuracy and efficiency. In this paper an efficient method to simulate GMM scoring is presented. Simulation is done by fitting a GMM not only to every target speaker but also to every test utterance, and then computing t...
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