Literature DB >> 26640328

Network Model-Assisted Inference from Respondent-Driven Sampling Data.

Krista J Gile1, Mark S Handcock1.   

Abstract

Respondent-Driven Sampling is a widely-used method for sampling hard-to-reach human populations by link-tracing over their social networks. Inference from such data requires specialized techniques because the sampling process is both partially beyond the control of the researcher, and partially implicitly defined. Therefore, it is not generally possible to directly compute the sampling weights for traditional design-based inference, and likelihood inference requires modeling the complex sampling process. As an alternative, we introduce a model-assisted approach, resulting in a design-based estimator leveraging a working network model. We derive a new class of estimators for population means and a corresponding bootstrap standard error estimator. We demonstrate improved performance compared to existing estimators, including adjustment for an initial convenience sample. We also apply the method and an extension to the estimation of HIV prevalence in a high-risk population.

Entities:  

Keywords:  Exponential-family random graph model; Hard-to-reach population sampling; Link-tracing; Network sampling; Social networks

Year:  2015        PMID: 26640328      PMCID: PMC4669074          DOI: 10.1111/rssa.12091

Source DB:  PubMed          Journal:  J R Stat Soc Ser A Stat Soc        ISSN: 0964-1998            Impact factor:   2.483


  9 in total

1.  MODELING SOCIAL NETWORKS FROM SAMPLED DATA.

Authors:  Mark S Handcock; Krista J Gile
Journal:  Ann Appl Stat       Date:  2010       Impact factor: 2.083

2.  Adaptive web sampling.

Authors:  Steven K Thompson
Journal:  Biometrics       Date:  2006-12       Impact factor: 2.571

3.  Effectiveness of respondent-driven sampling for recruiting drug users in New York City: findings from a pilot study.

Authors:  Abu S Abdul-Quader; Douglas D Heckathorn; Courtney McKnight; Heidi Bramson; Chris Nemeth; Keith Sabin; Kathleen Gallagher; Don C Des Jarlais
Journal:  J Urban Health       Date:  2006-05       Impact factor: 3.671

4.  statnet: Software Tools for the Representation, Visualization, Analysis and Simulation of Network Data.

Authors:  Mark S Handcock; David R Hunter; Carter T Butts; Steven M Goodreau; Martina Morris
Journal:  J Stat Softw       Date:  2008       Impact factor: 6.440

Review 5.  Using respondent-driven sampling methodology for HIV biological and behavioral surveillance in international settings: a systematic review.

Authors:  Mohsen Malekinejad; Lisa Grazina Johnston; Carl Kendall; Ligia Regina Franco Sansigolo Kerr; Marina Raven Rifkin; George W Rutherford
Journal:  AIDS Behav       Date:  2008-06-17

6.  Respondent-Driven Sampling: An Assessment of Current Methodology.

Authors:  Krista J Gile; Mark S Handcock
Journal:  Sociol Methodol       Date:  2010-08

7.  Respondent-driven sampling as Markov chain Monte Carlo.

Authors:  Sharad Goel; Matthew J Salganik
Journal:  Stat Med       Date:  2009-07-30       Impact factor: 2.373

8.  Diagnostics for Respondent-driven Sampling.

Authors:  Krista J Gile; Lisa G Johnston; Matthew J Salganik
Journal:  J R Stat Soc Ser A Stat Soc       Date:  2014-05-01       Impact factor: 2.483

9.  The most severe HIV epidemic in Europe: Ukraine's national HIV prevalence estimates for 2007.

Authors:  Y V Kruglov; Y V Kobyshcha; T Salyuk; O Varetska; A Shakarishvili; V P Saldanha
Journal:  Sex Transm Infect       Date:  2008-08       Impact factor: 3.519

  9 in total
  25 in total

1.  HIV Prevalence Among People Who Inject Drugs in Greater Kuala Lumpur Recruited Using Respondent-Driven Sampling.

Authors:  Alexander R Bazazi; Forrest Crawford; Alexei Zelenev; Robert Heimer; Adeeba Kamarulzaman; Frederick L Altice
Journal:  AIDS Behav       Date:  2015-12

2.  Reaching men who have sex with men: a comparison of respondent-driven sampling and time-location sampling in Guatemala City.

Authors:  Gabriela Paz-Bailey; William Miller; Ray W Shiraishi; Jerry O Jacobson; Taiwo O Abimbola; Sanny Y Chen
Journal:  AIDS Behav       Date:  2013-11

3.  Estimating uncertainty in respondent-driven sampling using a tree bootstrap method.

Authors:  Aaron J Baraff; Tyler H McCormick; Adrian E Raftery
Journal:  Proc Natl Acad Sci U S A       Date:  2016-12-07       Impact factor: 11.205

4.  Overlooked Threats to Respondent Driven Sampling Estimators: Peer Recruitment Reality, Degree Measures, and Random Selection Assumption.

Authors:  Jianghong Li; Thomas W Valente; Hee-Sung Shin; Margaret Weeks; Alexei Zelenev; Gayatri Moothi; Heather Mosher; Robert Heimer; Eduardo Robles; Greg Palmer; Chinekwu Obidoa
Journal:  AIDS Behav       Date:  2018-07

5.  Sampling Migrants from their Social Networks: The Demography and Social Organization of Chinese Migrants in Dar es Salaam, Tanzania.

Authors:  M Giovanna Merli; Ashton Verdery; Ted Mouw; Jing Li
Journal:  Migr Stud       Date:  2016-06-01

6.  A SIMULATION-BASED FRAMEWORK FOR ASSESSING THE FEASIBILITY OF RESPONDENT-DRIVEN SAMPLING FOR ESTIMATING CHARACTERISTICS IN POPULATIONS OF LESBIAN, GAY AND BISEXUAL OLDER ADULTS.

Authors:  Maryclare Griffin; Krista J Gile; Karen I Fredricksen-Goldsen; Mark S Handcock; Elena A Erosheva
Journal:  Ann Appl Stat       Date:  2018-11-13       Impact factor: 2.083

7.  THE GRAPHICAL STRUCTURE OF RESPONDENT-DRIVEN SAMPLING.

Authors:  Forrest W Crawford
Journal:  Sociol Methodol       Date:  2016-08-01

8.  An Empirical Analysis of the Impact of Recruitment Patterns on RDS Estimates among a Socially Ordered Population of Female Sex Workers in China.

Authors:  Thespina J Yamanis; M Giovanna Merli; William Whipple Neely; Felicia Feng Tian; James Moody; Xiaowen Tu; Ersheng Gao
Journal:  Sociol Methods Res       Date:  2013-08

9.  Evaluating Variance Estimators for Respondent-Driven Sampling.

Authors:  Michael W Spiller; Krista J Gile; Mark S Handcock; Corinne M Mar; Cyprian Wejnert
Journal:  J Surv Stat Methodol       Date:  2017-08-17

10.  Generalizing the Network Scale-Up Method: A New Estimator for the Size of Hidden Populations.

Authors:  Dennis M Feehan; Matthew J Salganik
Journal:  Sociol Methodol       Date:  2016-09-20
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