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Voting Advice Applications and the Estimation of Party Positions - A Reliable Tool?

[journal article]

König, Pascal D.
Jäckle, Sebastian

Abstract

Data contained in Voting Advice Applications (VAAs) is not only a prerequisite for the vote recommendations they provide but can also be used for estimating party positions in low‐dimensional spaces. Given that VAAs can be designed differently in terms of their number of items and their measurement ... view more

Data contained in Voting Advice Applications (VAAs) is not only a prerequisite for the vote recommendations they provide but can also be used for estimating party positions in low‐dimensional spaces. Given that VAAs can be designed differently in terms of their number of items and their measurement level, how much can one trust the party positions obtained from this source? We tackle this question by exploiting relevant variation in a real‐world setting: three VAAs offered at the 2017 Lower Saxony election. Despite substantial design differences, the policy spaces extracted through an inductive scaling approach are highly convergent. Simulated random item removal from the pooled dataset of all three VAAs furthermore suggests that about 40 items yield satisfactory reliability of the party positions. Finally, we find that a priori assigning VAA‐items to ideological dimensions is potentially problematic as the interpretation of resulting party spaces may differ from the ones derived inductively.... view less

Keywords
voting behavior; decision making; party; party politics; election to the Landtag; Lower Saxony; Federal Republic of Germany

Classification
Political Process, Elections, Political Sociology, Political Culture

Document language
English

Publication Year
2018

Page/Pages
p. 187-203

Journal
Swiss political science review (SPSR) / Schweizerische Zeitschrift für Politikwissenschaft (SZPW) / Revue suisse de science politique (RSSP), 24 (2018) 2

DOI
https://doi.org/10.1111/spsr.12301

ISSN
1662-6370

Status
Postprint; peer reviewed

Licence
Deposit Licence - No Redistribution, No Modifications


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© 2007 - 2025 Social Science Open Access Repository (SSOAR).
Based on DSpace, Copyright (c) 2002-2022, DuraSpace. All rights reserved.