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Query processing by, for, and of the masses: putting the user in the loop

Query processing by, for, and of the masses: putting the user in the loop
按大众、为大众、为大众的查询处理:将用户置于循环中
批准号:
46166-2009
负责人:
Lakshmanan, Laks
金额:
$4.37万
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2013
资助国家:
加拿大
项目状态:
已结题
起止时间:
2013-01-01 至 2014-12-31

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中文摘要
翻译
今天的网络搜索仅限于用户向通用搜索引擎提交关键字搜索查询,并筛选大型线性排序的答案列表。虽然这对于许多目的来说是令人满意的,但它忽略了Web 2.0的出现所推动的重要趋势,即用户搜索的内容信息与他们的社交档案(活动和连接)的集成增加,从而导致社交内容网站。首先,像del.icio.us和flickr这样的网站最初是作为社交内容网站出现的:用户可以建立社交关系,标记内容项目并与朋友分享。其次,越来越多的像亚马逊这样的纯内容网站现在允许用户对商品进行标记/评级,并与朋友分享。同样,像facebook这样的社交网站也允许用户与朋友分享内容。第三,有一个明确的趋势,虚拟社会内容网站:例如,大多数新闻网站允许用户与他们的朋友分享新闻文章,比如MySpace。在所有这些社会内容网站-虚拟的和真实的-中,存在关于内容项和用户以及关于用户提供的内容的丰富的结构化信息。以与其他网站相同的方式对待社交内容网站,会错过利用这些网站中存在的重要内容和社交结构。我们设想的未来,特定领域的社会内容网站将越来越多地为用户提供一个有吸引力的替代相比,通用的搜索引擎。在这个项目中,我们将研究从信息检索风格搜索,数据库风格查询,推荐系统,社交网络,图形建模和查询,数据分析和数据挖掘丰富的社会和内容结构,多维查询和OLAP技术的组合,以显着丰富和提高用户体验与社会内容网站的集合。用户将能够在不同的答案组之间无缝切换:这些组可以包括各种粒度级别的内容项,或“推荐”那些项的“类似”项,或推荐项及其标签/评级的“类似”或专家用户,或可能使用户感兴趣的其他“主题”,从而产生用于信息发现的强大范例。
英文摘要
Today's web search is confined to users submitting a keyword search query to a generic search engine and sifting through a large linearly ordered list of answers. While this is satisfactory for many purposes, it ignores the significant trends, spurred by the advent of Web 2.0, toward increased integration of content information that users search for and their social profiles (activities and connections), leading to social content sites. First, sites like del.icio.us and flickr started as social content sites: users can form social ties and tag content items and share them with their friends. Second, more and more, content-only sites like Amazon are now allowing users to tag/rate items and share them with their friends. Similarly, social sites like facebook are allowing users to share content with their friends. Third, there is a definite trend toward virtual social content sites: e.g., most news sites let users share news articles with their friends in, say MySpace. In all these social content sites -- virtual and real -- there is rich structured information on both content items and users as well on user-provided content. Treating social content sites the same way as any other site misses out on leveraging the significant content and social structure present in these sites. We envision a future where domain-specific social content sites will increasingly offer an attractive alternative for users compared to generic search engines. In this program, we will investigate the combination of techniques drawn from information retrieval style search, database style querying, recommender systems, social networks, graph modeling and querying, data analysis and data mining over rich social and content structure, and multi-dimensional querying and OLAP, to significantly enrich and advance user experience in interacting with collections of social content sites. Users will be able to seamlessly shift between heterogeneous groups of answers: these groups may consist of content items at various levels of granularity, or "similar" items which "recommended" those items, or "similar" or expert users who recommended the items and their tags/ratings, or other "topics" that may interest the user, leading to a powerful paradigm for information discovery.
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