Explainable AI-Based Multi-Lingual Content Moderation System
Explainable AI-Based Multi-Lingual Content Moderation System
批准号:
73632
负责人:
金额:
$25.18万
依托单位:
依托单位国家:
英国
项目类别:
Study
财政年份:
2021
资助国家:
英国
项目状态:
已结题
起止时间:
2021 至 --
中文摘要
现有的审核工具是基于团队每天维护的关键字列表或网站黑名单。这是一种缓慢而痛苦的维护方式,并且由于其存在的本质而嵌入了版主的偏见,通常是对某些种族的偏见。另外,像Facebook这样的平台每年花费高达25亿英镑,雇佣3万人手动检查社交媒体上的帖子,这对心理健康构成了重大风险。大多数工具都没有考虑到不同品牌、代理商和广告网络对错误信息、仇恨言论和新形式有害内容的不同政策。该项目将为广告专业人员和人工版主提供一个创新的仪表板,用于监控他们的库存网络和目标网站列表中的网站。该系统将检测法语、西班牙语、意大利语、葡萄牙语和德语的宣传、仇恨言论、威胁等,并为任何高或低的分类分数提供解释。核心创新是建立一个集成的零射击迁移学习和机器翻译AI模型,该模型基于独特的、具有文化特异性的训练和测试数据进行训练,用于当地方言的宣传检测。为了获得这些数据,Factmata将与法国Licra(国际反种族主义和反犹太主义联盟)等主要社区合作。该项目将帮助任何托管内容的平台建立量身定制的模型,以多种语言删除或标记有害内容,并根据自己的偏好和规则自动训练系统。Factmata在自动事实检查、自然语言处理(“NLP”)、数据注释等领域拥有丰富的经验;并成功建立了检测仇恨言论和宣传语言的算法。它已经在联合媒体网络和程序化广告空间中有两个主要客户,他们已经要求使用提议的产品。该团队在内容审核行业有销售经验,并建立了一个成功的服务,仅用英语进行宣传。该项目将带来显著的出口导向型增长、可观的投资回报率、增加的就业和进一步的研发投资机会。
英文摘要
Existing moderation tools are based on keyword lists or blacklists of sites maintained by teams every day. These are slow and painful to maintain, and also embed the biases of moderators by their very nature of existing, often being biased against certain races. Alternatively, platforms like Facebook spend up to £2.5bn a year and employ 30,000 individuals to manually check social media posts, facing major risks to mental health. Most tools do not account for the separate policies that different brands, agencies and advertising networks have towards misinformation, hate speech and new forms of harmful content The project will produce an innovative dashboard for advertising professionals and human moderators monitoring websites on their inventory network, and in their target site lists. The system will detect propaganda, hate speech, threats and more across French, Spanish, Italian, Portuguese and German, and provide explanations for any high or low classification scores. The core innovation is building an ensemble zero-shot transfer learning and machine translation AI model which is trained on nique, culturally specific, training and test data for propaganda detection in local dialects. To obtain this data, Factmata will work with key communities such as the French Licra (International League Against Racism and Antisemitism). The project will help any platform that hosts content to build tailored models to take down or flag harmful content in multiple languages, and auto-train systems based on their own preferences and rules. Factmata has experience in the fields of automated fact checking, natural language processing ("NLP"), data annotation and more; and has successfully built algorithms to detect hate speech and propaganda language. It already has two major customers within the syndicated media network and programmatic advertising space, who have asked to use the product proposed. The team has experience selling into the content moderation industry and has built a successful service moderating propaganda in the English language only. The project will deliver significant export-led growth, a substantial ROI, increased employment and further opportunity for R&D investment.
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