Customer-obsessed science
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October 1, 202610 min readAugmenting a network graph with agentic AI produces a “digital twin” that can help isolate network failures.
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August 21, 20269 min read
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Featured news
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WACV 2023 Workshop on Video/Audio Quality in Computer Vision2023The demand for accurate estimation of marketing’s incremental effect is rapidly increasing to enable marketers to make informed decisions on their ad investment. The process of ad-mapping links an ad shown to consumers on the fixed marketing channels (Linear TV, Digital, Social) to a marketing creative video. Thus, an accurate ad-mapping, which is a special case of video copy detection, is a cornerstone
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WACV 2023 Workshop on Dealing with Novelty in Open Worlds (DNOW)2023Few-shot learning has attracted significant scientific interest in the past decade due to its applicability to visual tasks with a natural long-tailed distribution such as object detection. This paper introduces a novel and flexible few-shot object detection approach which can be adapted effortlessly to any candidate-based object detection framework. In particular, our proposed kFEW component leverages
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WACV 20232023Detecting commercial Ads from a video is important. For example, the commercial break frequency and duration are two metrics to measure the user experience for streaming service providers such as Amazon Freevee. The detection can be done intrusively by intercepting the network traffic and then parsing the service providers data and logs, or non-intrusively by capturing the videos streamed by content providers
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IAAI 20232023Detecting robotic traffc at scale on online ads needs an approach that is scalable, comprehensive, precise, and can rapidly respond to changing traffic patterns. In this paper we describe SLIDR or SLIce-Level Detection of Robots, a realtime deep neural network model trained with weak supervision to identify invalid clicks on online ads. We ensure fairness across different traffc slices by formulating a
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SLT 20222023Regional accents of the same language affect not only how words are pronounced (i.e., phonetic content), but also impact prosodic aspects of speech such as speaking rate and intonation. This paper investigates a novel flow-based approach to accent conversion using normalizing flows. The proposed approach revolves around three steps: remapping the phonetic conditioning, to better match the target accent,
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