CYIRJul 9, 2020

On the Social and Technical Challenges of Web Search Autosuggestion Moderation

arXiv:2007.05039v112 citations
AI Analysis

It addresses the social and technical issues in automated suggestion systems, which impact users of web search and similar applications, but is incremental as it reflects on past efforts.

The paper examines the persistent challenges in moderating problematic autosuggestions in web search engines, such as bias and inappropriate content, by analyzing solutions along a pipeline and highlighting their complexity across applications.

Past research shows that users benefit from systems that support them in their writing and exploration tasks. The autosuggestion feature of Web search engines is an example of such a system: It helps users in formulating their queries by offering a list of suggestions as they type. Autosuggestions are typically generated by machine learning (ML) systems trained on a corpus of search logs and document representations. Such automated methods can become prone to issues that result in problematic suggestions that are biased, racist, sexist or in other ways inappropriate. While current search engines have become increasingly proficient at suppressing such problematic suggestions, there are still persistent issues that remain. In this paper, we reflect on past efforts and on why certain issues still linger by covering explored solutions along a prototypical pipeline for identifying, detecting, and addressing problematic autosuggestions. To showcase their complexity, we discuss several dimensions of problematic suggestions, difficult issues along the pipeline, and why our discussion applies to the increasing number of applications beyond web search that implement similar textual suggestion features. By outlining persistent social and technical challenges in moderating web search suggestions, we provide a renewed call for action.

Foundations

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