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Dive into the research topics where Somdeb Sarkhel is active.

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Featured researches published by Somdeb Sarkhel.


international joint conference on artificial intelligence | 2017

Efficient Inference for Untied MLNs

Somdeb Sarkhel; Deepak Venugopal; Nicholas Ruozzi; Vibhav Gogate

We address the problem of scaling up localsearch or sampling-based inference in Markov logic networks (MLNs) that have large shared substructures but no (or few) tied weights. Such untied MLNs are ubiquitous in practical applications. However, they have very few symmetries, and as a result lifted inference algorithms–the dominant approach for scaling up inference–perform poorly on them. The key idea in our approach is to reduce the hard, time-consuming sub-task in sampling algorithms, computing the sum of weights of features that satisfy a full assignment, to the problem of computing a set of partition functions of graphical models, each defined over the logical variables in a first-order formula. The importance of this reduction is that when the treewidth of all the graphical models is small, it yields an order of magnitude speedup. When the treewidth is large, we propose an over-symmetric approximation and experimentally demonstrate that it is both fast and accurate.


Journal of Machine Learning Research | 2014

Lifted MAP inference for Markov logic networks

Somdeb Sarkhel; Deepak Venugopal; Parag Singla; Vibhav Gogate


national conference on artificial intelligence | 2015

Just count the satisfied groundings: scalable local-search and sampling based inference in MLNs

Deepak Venugopal; Somdeb Sarkhel; Vibhav Gogate


national conference on artificial intelligence | 2016

Scalable training of Markov logic networks using approximate counting

Somdeb Sarkhel; Deepak Venugopal; Tuan Anh Pham; Parag Singla; Vibhav Gogate


neural information processing systems | 2015

Fast lifted MAP inference via partitioning

Somdeb Sarkhel; Parag Singla; Vibhav Gogate


national conference on artificial intelligence | 2016

On parameter tying by quantization

Li Chou; Somdeb Sarkhel; Nicholas Ruozzi; Vibhav Gogate


neural information processing systems | 2014

An Integer Polynomial Programming Based Framework for Lifted MAP Inference

Somdeb Sarkhel; Deepak Venugopal; Parag Singla; Vibhav Gogate


international conference on artificial intelligence and statistics | 2014

Lifted MAP Inference for Markov Logic Networks

Somdeb Sarkhel; Deepak Venugopal; Parag Singla; Vibhav Gogate


national conference on artificial intelligence | 2013

Lifting WALKSAT-based local search algorithms for map inference

Somdeb Sarkhel; Vibhav Gogate


national conference on artificial intelligence | 2018

Automatic Parameter Tying: A New Approach for Regularized Parameter Learning in Markov Networks

Li Chou; Pracheta Sahoo; Somdeb Sarkhel; Nicholas Ruozzi; Vibhav Gogate

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Vibhav Gogate

University of Texas at Dallas

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Deepak Venugopal

University of Texas at Dallas

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Parag Singla

Indian Institute of Technology Delhi

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Li Chou

University of Texas at Dallas

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Tuan Anh Pham

University of Texas at Dallas

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