نتایج جستجو برای: گشتاورهای سیستمی تعمیمیافته gmm

تعداد نتایج: 10698  

چرخۀ عمر از مهم‌ترین عواملی است که ویژگی‌های رفتاری شرکت را تعیین می‌کند و بر ساختار منابع، قابلیت‌ها و توانمندی‌های آن اثرگذار است. در این پژوهش، رفتار ریسک‌پذیر طی چرخۀ عمر شرکت و رابطۀ این رفتار با عملکرد مالی آتی بررسی شد. به این منظور، رفتار ریسک‌پذیر با استفاده از نوسان‌های تعدیل‌شدۀ نرخ بازده دارایی‌‌ها بر حسب صنعت، چرخۀ عمر با توجه به الگوی جریان‌های نقدی شرکت در طبقات عملیاتی، سرمایه‌گ...

2005
Yongguo Kang Zhiwei Shuang Jianhua Tao Wei Zhang Bo Xu

This paper proposes a new mapping method combining GMM and codebook mapping methods to transform spectral envelope for voice conversion system. After analyzing overly smoothing problem of GMM mapping method in detail, we propose to convert the basic spectral envelope by GMM method and convert envelope-subtracted spectral details by GMM and phone-tied codebook mapping method. Objective evaluatio...

2001
Chiyomi Miyajima Yosuke Hattori Keiichi Tokuda Takashi Masuko Takao Kobayashi Tadashi Kitamura

This paper presents a new approach to modeling speech spectra and pitch for text-independent speaker identification using Gaussian mixture models based on multi-space probability distribution (MSD-GMM). The MSD-GMM allows us to model continuous pitch values for voiced frames and discrete symbols representing unvoiced frames in a unified framework. Spectral and pitch features are jointly modeled...

Journal: :IEEE Access 2021

Impressive progress has been recently witnessed on deep unsupervised clustering and feature disentanglement. In this paper, we propose a novel method top of one recent architecture with explanation Gaussian mixture model (GMM) membership, accompanied by GMM loss to enhance the clustering. The is optimized explicitly computed parameters under our coupled inspired framework. Specifically, takes a...

1999
Li Liu Jialong He

The Gaussian mixture modeling (GMM) techniques are increasingly being used for both speaker identification and verification. Most of these models assume diagonal covariance matrices. Although empirically any distribution can be approximated with a diagonal GMM, a large number of mixture components are usually needed to obtain a good approximation. A consequence of using a large GMM is that its ...

Journal: :Journal of computational and graphical statistics : a joint publication of American Statistical Association, Institute of Mathematical Statistics, Interface Foundation of North America 2011
Guosheng Yin Yanyuan Ma Faming Liang Ying Yuan

The generalized method of moments (GMM) is a very popular estimation and inference procedure based on moment conditions. When likelihood-based methods are difficult to implement, one can often derive various moment conditions and construct the GMM objective function. However, minimization of the objective function in the GMM may be challenging, especially over a large parameter space. Due to th...

Journal: :CoRR 2017
Ping Li

The recently proposed “generalized min-max” (GMM) kernel [9] can be efficiently linearized, with direct applications in large-scale statistical learning and fast near neighbor search. The linearized GMM kernel was extensively compared in [9] with linearized radial basis function (RBF) kernel. On a large number of classification tasks, the tuning-free GMM kernel performs (surprisingly) well comp...

بررسی گروهی از مطالعات اخیر در حیطه منابع طبیعی، از یک سو نشان می­دهد که وفور منابع، در کشورهای غنی از منابع طبیعی، باعث کندی رشد اقتصادی شده است؛ و از سوی دیگر، توسعه انسانی و کیفیت نهادها و زیرساخت­های اجتماعی از عوامل مهم تأثیرگذار بر روی رشد و توسعه اقتصادی محسوب می‌شود. در مطالعه حاضر با استفاده از داده­های تابلویی پویا[1] و روش گشتاورهای تعمیم‌یافته[2](GMM)، ابتدا به تحلیل پدیده بلای مناب...

2007
Mitchell McLaren Robbie Vogt Sridha Sridharan

This paper demonstrates that modelling session variability during GMM training can improve the performance of a GMM supervector SVM speaker verification system. Recently, a method of modelling session variability in GMM-UBM systems has led to significant improvements when the training and testing conditions are subject to session effects. In this work, session variability modelling is applied d...

2009
Tobias Bocklet Tino Haderlein Florian Hönig Frank Rosanowski Elmar Nöth

We describe a GMM-UBM-based evaluation system for pathologic voices that uses standard cepstral features. Per speaker one GMM is created and its components are used to create a so-called GMM supervector. The supervector of each speaker is labeled with the intelligibility values obtained by human evaluation and is used to train an SVR. We studied different GMM supervectors containing different G...

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