aprori algorithm, easy to understand and modify
標(biāo)簽: understand algorithm aprori modify
上傳時(shí)間: 2014-01-21
上傳用戶:cjl42111
Finite sample effects of the fast ICA algorithm
標(biāo)簽: algorithm effects Finite sample
上傳時(shí)間: 2016-09-03
上傳用戶:lxm
c algorithm for DSP real time processing
標(biāo)簽: processing algorithm real time
上傳時(shí)間: 2014-01-01
上傳用戶:csgcd001
用vc實(shí)現(xiàn)Apriori算法的全部功能.請(qǐng)大家盡情心使用!-the algorithm can be used vc Apriori algorithm to achieve the full. Please rest assured use!
標(biāo)簽: algorithm Apriori the achieve
上傳時(shí)間: 2013-12-20
上傳用戶:ynzfm
this directory contains the following: * The acdc algorithm for finding the approximate general (non-orthogonal) joint diagonalizer (in the direct Least Squares sense) of a set of Hermitian matrices. [acdc.m] * The acdc algorithm for finding the same for a set of Symmetric matrices. [acdc_sym.m](note that for real-valued matrices the Hermitian and Symmetric cases are similar however, in such cases the Hermitian version [acdc.m], rather than the Symmetric version[acdc_sym] is preferable. * A function that finds an initial guess for acdc by applying hard-whitening followed by Cardoso s orthogonal joint diagonalizer. Note that acdc may also be called without an initial guess, in which case the initial guess is set by default to the identity matrix. The m-file includes the joint_diag function (by Cardoso) for performing the orthogonal part. [init4acdc.m]
標(biāo)簽: approximate directory algorithm the
上傳時(shí)間: 2014-01-17
上傳用戶:hanli8870
The kernel-ica package is a Matlab program that implements the Kernel ICA algorithm for independent component analysis (ICA). The Kernel ICA algorithm is based on the minimization of a contrast function based on kernel ideas. A contrast function measures the statistical dependence between components, thus when applied to estimated components and minimized over possible demixing matrices, components that are as independent as possible are found.
標(biāo)簽: independent kernel-ica implements algorithm
上傳時(shí)間: 2014-01-17
上傳用戶:yiwen213
he algorithm is equivalent to Infomax by Bell and Sejnowski 1995 [1] using a maximum likelihood formulation. No noise is assumed and the number of observations must equal the number of sources. The BFGS method [2] is used for optimization. The number of independent components are calculated using Bayes Information Criterion [3] (BIC), with PCA for dimension reduction.
標(biāo)簽: equivalent likelihood algorithm Sejnowski
上傳時(shí)間: 2016-09-17
上傳用戶:Altman
擴(kuò)展遺傳算法SPEAII(Strength Paretor Evaluation Algorithm)算法的代碼實(shí)現(xiàn),良好的程序框架,便于向其他應(yīng)用領(lǐng)域擴(kuò)展,建議大家使用。
標(biāo)簽: Evaluation Algorithm Strength Paretor
上傳時(shí)間: 2013-12-24
上傳用戶:cursor
Visual C++實(shí)現(xiàn)的基因遺傳算法庫(kù)源代碼以演示程序Free Source Code for Genetic algorithm 2008年05月21日 C++, Windows, Win32, Visual Studio, MFC, STL, Arch, Dev, Design 基因遺傳算法都是針對(duì)概率的,所以因?yàn)槠潆S機(jī)的本質(zhì),導(dǎo)致其結(jié)果可能是好的,也可能是壞的,于是我們就需要一個(gè)方法確認(rèn)這個(gè)解到底有多大的可用性。這是通過(guò)計(jì)算相似擬合度進(jìn)行衡量的。染色體Chromosomes代表了基因遺傳算法的結(jié)果。每次迭代,算法生成一個(gè)染色體,這些子孫染色體又會(huì)產(chǎn)生新的迭代……關(guān)鍵內(nèi)容 這個(gè)基因算法庫(kù)是用 Visual Studio 2005 編寫的程序,第一個(gè)使用 Microsoft C/C++ 編譯器,第二個(gè)使用Intel C++ 編譯器。 如果你希望在你的程序你使用它,有兩個(gè)辦法,1是直接引用 Genetic Algorithm Library 項(xiàng)目,然后編譯;2是添加GeneticAlgorithm.lib 靜態(tài)鏈接庫(kù)到項(xiàng)目中
標(biāo)簽: algorithm Genetic Windows Visual
上傳時(shí)間: 2016-09-22
上傳用戶:silenthink
OFDMA Resource Allocation Simulations A Low Complexity Algorithm for Proportional
標(biāo)簽: Proportional Simulations Allocation Complexity
上傳時(shí)間: 2014-08-11
上傳用戶:xuanjie
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