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How Latent Semantic Analysis Handle Semantics

I have gone through LSA method. It is said that LSA can be used for semantic analysis. But I can not understand how it is working in LSA. Can anyone please tell me how LSA handle semantics.
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LDA for topic modeling: Simplest Explanation

I am searching for a super easy tutorial which describes LDA for topic modeling in a larege group of documents. I found this to be the simplest one, but still I am not getting the whole picture. Can ...
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Can I use SemanticVector package for creating semantic space?

I am new to work with Semantic Spaces. I want to build the semantic space in which we can measure the Semantic similarity between the two sentences and give them a relatedness score. While searching ...
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99 views

LSA - Feature selection

I have this SVD decomposition of the document I've read this page, but I don't understand how can I compute the best feature for document separation. I know that: S x Vt gives me relation ...
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146 views

In Latent Semantic Analysis, how do you recombine the decomposed matrices after truncating the singular values?

I'm reading Matrix decompositions and latent semantic indexing (Online edition © 2009 Cambridge UP) I'm trying to understand how you reduce the number of dimensions in a matrix. There's an example on ...
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55 views

Extracting topic from a webpage

I am trying to learn some machine learning, but unfortunately unsupervised learning is not treating me well and I was hoping some semi-supervised learning courtesy of StackOverflow might be able to ...
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302 views

Latent semantic analysis (LSA) single value decomposition (SVD) understanding

Bear with me through my modest understanding of LSI (Mechanical Engineering background): After performing SVD in LSI, you have 3 matrices: U, S, and V transpose. U compares words with topics and S ...
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231 views

How to generate recommendation with matrix factorization

I've read some papers of Matrix Factorization(Latent Factor Model) in Recommendation System,and I can implement the algorithm.I can get the similar RMSE result like the paper said on the MovieLens ...
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500 views

How to do Latent Semantic Analysis on a very large dataset

I am trying to run LSA or Principal component analysis on a very large dataset, about 50,000 documents and over 300,000 words/terms, to reduce the dimensionality so I can graph the documents in 2-d. ...
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205 views

Is there a memory implementation of the SparseVectorsFromSequenceFiles, RowIdJob and RowSimilarityJob jobs

I've been working on performing Latent Semantic Analysis using the SparseVectorsFromSequenceFiles, RowIdJob and RowSimilarityJob Hadoop jobs provided by Mahout, which run Map/Reduce jobs. I've been ...