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A Neural, Interactive-predictive System for Multimodal Sequence to Sequence Tasks

机译:用于序列任务的多模式序列的神经,交互式预测系统

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We present a demonstration of a neural interactive-predictive system for tackling multimodal sequence to sequence tasks. The system generates text predictions to different sequence to sequence tasks: machine translation, image and video captioning. These predictions are revised by a human agent, who introduces corrections in the form of characters. The system reacts to each correction, providing alternative hypotheses, compelling with the feedback provided by the user. The final objective is to reduce the human effort required during this correction process. This system is implemented following a client-server architecture. For accessing the system, we developed a website, which communicates with the neural model, hosted in a local server. From this website, the different tasks can be tackled following the interactive-predictive framework. We open-source all the code developed for building this system.
机译:我们展示了用于解决多模式序列以序列任务的神经互动预测系统的演示。系统生成对不同序列的文本预测到序列任务:机器转换,图像和录像。这些预测由人类代理进行修订,他以字符形式介绍更正。该系统对每个校正作出反应,提供替代假设,与用户提供的反馈引起引人注目。最终目标是减少此修正过程中所需的人力努力。此系统在客户端 - 服务器体系结构之后实现。为了访问系统,我们开发了一个网站,它与神经模型通信,托管在本地服务器中。从本网站来看,可以在交互式预测框架之后解决不同的任务。我们开源为构建该系统开发的所有代码。

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