{"id":558885,"date":"2019-01-03T15:04:32","date_gmt":"2019-01-03T23:04:32","guid":{"rendered":"https:\/\/cm-edgetun.pages.dev\/en-us\/research\/?post_type=msr-research-item&#038;p=558885"},"modified":"2019-01-03T15:04:32","modified_gmt":"2019-01-03T23:04:32","slug":"better-effectiveness-metrics-for-serps-cards-and-rankings","status":"publish","type":"msr-research-item","link":"https:\/\/cm-edgetun.pages.dev\/en-us\/research\/publication\/better-effectiveness-metrics-for-serps-cards-and-rankings\/","title":{"rendered":"Better effectiveness metrics for SERPs, cards, and rankings"},"content":{"rendered":"<p>Offline metrics for IR evaluation are often derived from a user model that seeks to capture the interaction between the user and the ranking, conflating the interaction with a ranking of documents with the user&#8217;s interaction with the search results page. A desirable property of any effectiveness metric is if the scores it generates over a set of rankings correlate well with the &#8220;satisfaction&#8221; or &#8220;goodness&#8221; scores attributed to those same rankings by a population of searchers.<br \/>\nUsing data from a large-scale web search engine, we find that offline effectiveness metrics do not correlate well with a behavioural measure of satisfaction that can be inferred from user activity logs. We then examine three mechanisms to improve the correlation: tuning the model parameters; improving the label coverage, so that more kinds of item are labelled and hence included in the evaluation; and modifying the underlying user models that describe the metrics. In combination, these three mechanisms transform a wide range of common metrics into &#8220;card-aware&#8221; variants which allow for the gain from cards (or snippets), varying probabilities of clickthrough, and good abandonment. <\/p>\n","protected":false},"excerpt":{"rendered":"<p>Offline metrics for IR evaluation are often derived from a user model that seeks to capture the interaction between the user and the ranking, conflating the interaction with a ranking of documents with the user&#8217;s interaction with the search results page. A desirable property of any effectiveness metric is if the scores it generates over [&hellip;]<\/p>\n","protected":false},"featured_media":0,"template":"","meta":{"msr-url-field":"","msr-podcast-episode":"","msrModifiedDate":"","msrModifiedDateEnabled":false,"ep_exclude_from_search":false,"_classifai_error":"","msr-author-ordering":null,"msr_publishername":"ACM","msr_publisher_other":"","msr_booktitle":"","msr_chapter":"","msr_edition":"","msr_editors":"","msr_how_published":"","msr_isbn":"","msr_issue":"","msr_journal":"","msr_number":"","msr_organization":"","msr_pages_string":"","msr_page_range_start":"","msr_page_range_end":"","msr_series":"","msr_volume":"","msr_copyright":"","msr_conference_name":"Australasian Document Computing 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