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Dive into the research topics where Saeed Amizadeh is active.

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Featured researches published by Saeed Amizadeh.


international joint conference on artificial intelligence | 2011

An efficient framework for constructing generalized locally-induced text metrics

Saeed Amizadeh; Shuguang Wang; Milos Hauskrecht

In this paper, we propose a new framework for constructing text metrics which can be used to compare and support inferences among terms and sets of terms. Our metric is derived from data-driven kernels on graphs that let us capture global relations among terms and sets of terms, regardless of their complexity and size. To compute the metric efficiently for any two subsets of terms, we develop an approximation technique that relies on the precompiled term-term similarities. To scale-up the approach to problems with huge number of terms, we develop and experiment with a solution that sub-samples the term space. We demonstrate the benefits of the whole framework on two text inference tasks: prediction of terms in the article from its abstract and query expansion in information retrieval.


siam international conference on data mining | 2012

Sampling Strategies to Evaluate the Performance of Unknown Predictors.

Hamed Valizadegan; Saeed Amizadeh; Milos Hauskrecht

The focus of this paper is on how to select a small sample of examples for labeling that can help us to evaluate many different classification models unknown at the time of sampling. We are particularly interested in studying the sampling strategies for problems in which the prevalence of the two classes is highly biased toward one of the classes. The evaluation measures of interest we want to estimate as accurately as possible are those obtained from the contingency table. We provide a careful theoretical analysis on sensitivity, specificity, and precision and show how sampling strategies should be adapted to the rate of skewness in data in order to effectively compute the three aforementioned evaluation measures.


IEEE Transactions on Autonomous Mental Development | 2012

Interactive Learning in Continuous Multimodal Space: A Bayesian Approach to Action-Based Soft Partitioning and Learning

Hadi Firouzi; Majid Nili Ahmadabadi; Babak Nadjar Araabi; Saeed Amizadeh; Maryam S. Mirian; Roland Siegwart


international conference on advanced intelligent mechatronics | 2007

A Bayesian approach to conceptualization using reinforcement learning

Saeed Amizadeh; Majid Nili Ahmadabadi; Babak Nadjar Araabi; Roland Siegwart


uncertainty in artificial intelligence | 2012

Variational dual-tree framework for large-scale transition matrix approximation

Saeed Amizadeh; Bo Thiesson; Milos Hauskrecht


JMLR workshop and conference proceedings | 2012

Factorized Diusion Map Approximation

Saeed Amizadeh; Hamed Valizadegan; Milos Hauskrecht


uncertainty in artificial intelligence | 2013

The Bregman variational dual-tree framework

Saeed Amizadeh; Bo Thiesson; Milos Hauskrecht


Archive | 2013

Non-parametric graph-based methods for large scale problems

Milos Hauskrecht; Saeed Amizadeh


international conference on artificial intelligence and statistics | 2012

Factorized Diffusion Map Approximation

Saeed Amizadeh; Hamed Valizadegan; Milos Hauskrecht


national conference on artificial intelligence | 2010

Latent variable model for learning in pairwise markov networks

Saeed Amizadeh; Milos Hauskrecht

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Shuguang Wang

University of Pittsburgh

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