Run through the streets: A new dataset and baseline models for realistic urban navigation

Tzuf Paz-Argaman, Reut Tsarfaty

פרסום מחקרי: פרק בספר / בדוח / בכנספרסום בספר כנסביקורת עמיתים

תקציר

Following navigation instructions in natural language requires a composition of language, action, and knowledge of the environment. Knowledge of the environment may be provided via visual sensors or as a symbolic world representation referred to as a map. Here we introduce the Realistic Urban Navigation (RUN) task, aimed at interpreting navigation instructions based on a real, dense, urban map. Using Amazon Mechanical Turk, we collected a dataset of 2515 instructions aligned with actual routes over three regions of Manhattan. We propose a strong baseline for the task and empirically investigate which aspects of the neural architecture are important for the RUN success. Our results empirically show that entity abstraction, attention over words and worlds, and a constantly updating world-state, significantly contribute to task accuracy.

שפה מקוריתאנגלית
כותר פרסום המארחEMNLP-IJCNLP 2019 - 2019 Conference on Empirical Methods in Natural Language Processing and 9th International Joint Conference on Natural Language Processing, Proceedings of the Conference
מוציא לאורAssociation for Computational Linguistics
עמודים6449-6455
מספר עמודים7
מסת"ב (אלקטרוני)9781950737901
סטטוס פרסוםפורסם - 2019
אירוע2019 Conference on Empirical Methods in Natural Language Processing and 9th International Joint Conference on Natural Language Processing, EMNLP-IJCNLP 2019 - Hong Kong, סין
משך הזמן: 3 נוב׳ 20197 נוב׳ 2019

סדרות פרסומים

שםEMNLP-IJCNLP 2019 - 2019 Conference on Empirical Methods in Natural Language Processing and 9th International Joint Conference on Natural Language Processing, Proceedings of the Conference

כנס

כנס2019 Conference on Empirical Methods in Natural Language Processing and 9th International Joint Conference on Natural Language Processing, EMNLP-IJCNLP 2019
מדינה/אזורסין
עירHong Kong
תקופה3/11/197/11/19

הערה ביבליוגרפית

Publisher Copyright:
© 2019 Association for Computational Linguistics

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