AutoNLU: An On-demand Cloud-based Natural Language Understanding System for Enterprises
Nham Le, Tuan Lai, Trung Bui, Doo Soon Kim

TL;DR
AutoNLU is a cloud-based system designed to make deploying and developing enterprise-level natural language understanding models easier, faster, and more accessible through an on-demand platform with practical case studies demonstrating its effectiveness.
Contribution
It introduces AutoNLU, a comprehensive cloud platform that simplifies NLU model development for enterprises, bridging the gap between open-source models and real-world application needs.
Findings
Successfully built NLU models for Photoshop image requests.
Achieved state-of-the-art results on keyphrase extraction benchmarks.
Enabled quick deployment with minimal coding effort.
Abstract
With the renaissance of deep learning, neural networks have achieved promising results on many natural language understanding (NLU) tasks. Even though the source codes of many neural network models are publicly available, there is still a large gap from open-sourced models to solving real-world problems in enterprises. Therefore, to fill this gap, we introduce AutoNLU, an on-demand cloud-based system with an easy-to-use interface that covers all common use-cases and steps in developing an NLU model. AutoNLU has supported many product teams within Adobe with different use-cases and datasets, quickly delivering them working models. To demonstrate the effectiveness of AutoNLU, we present two case studies. i) We build a practical NLU model for handling various image-editing requests in Photoshop. ii) We build powerful keyphrase extraction models that achieve state-of-the-art results on two…
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Taxonomy
TopicsAdvanced Text Analysis Techniques · Topic Modeling · Natural Language Processing Techniques
