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E-MIMIC - Empowering Multilingual Inclusive Communication (E-MIMIC)
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Abstract
Today we observe two interrelated trends: (1) a significant increase in attention to inclusive languages, promoted by academia and policy makers, and (2) unprecedented successes in artificial intelligence and deep learning. The latter is considered one of the most important general-purpose methodologies and has played an important role in automating various language tasks but could also have a significant impact on advancing and promoting inclusive communication. Unfortunately, the proliferation of automated machine translation and conversational agents has further exacerbated the problem of non-inclusive texts. Because they generally rely on English-language, non-gender-specific document corpora, their ability to produce inclusive texts is quite limited. Innovative intelligent systems are urgently needed. This project, called E-MIMIC (Empowering Multilingual Inclusive Communication), is a joint effort of the Deep Learning Natural Language Understanding and Linguistics research communities with the goal of promoting and ensuring equality and inclusion in communication, thus contributing to a more inclusive, innovative, and reflective society. E-MIMIC relies on an innovative use of deep-learning methods for natural language processing trained on a new corpora of formal communication produced by Italian and French linguists in this project. The approach is groundbreaking because for the first time, high-risk concepts such as linguistic and discursive criteria for inclusive communication, data labeling of new corpora of formal communication, and strong human involvement in the data-driven methods are integrated into the core of deep-learning methods for natural language processing to automatically identify non-inclusive text snippets, suggest alternative forms, and produce inclusive text reformulations. Linguistic and discursive criteria for modeling diversity in a community (e.g., gender, special needs, age, ethnicity, and religion) and their intersectionality will be defined to fully represent them in formal communication. These criteria are being used by a large group of linguists to characterize a new corpora of formal communication that various institutions (our universities and public administrations) provide us, and to propose alternative reformulations that reflect the color nuances of our society. Novel strategies for training deep-learning models for natural language processing will be coupled with human-in-the-analytics analysis loop strategies to ensure fair, privacy-friendly, and responsible data processing and to provide fair and unbiased models capable of correctly recognizing natural languages. Finally, an intelligent user interface will be developed to effectively interact with E-MIMIC, highlight portions of text that should be rewritten, see the rank of alternative forms, and create comprehensive text rewording. Using E-MIMIC, we aim to make inclusive communication accessible to a wide range of users.
Strutture coinvolte
Partner
- ALMA MATER STUDIORUM UNIVERSITA' DI BOLOGNA
- POLITECNICO DI TORINO - AMMINISTRAZIONE CENTRALE - Coordinatore
- UNIVERSITA' DI ROMA - TOR VERGATA
Parole chiave
Settori ERC
Obiettivi di Sviluppo Sostenibile (Sustainable Development Goals)
Budget
| Costo totale progetto: | € 309.877,00 |
|---|---|
| Contributo totale progetto: | € 250.000,00 |
| Costo totale PoliTo: | € 135.478,00 |
| Contributo PoliTo: | € 116.968,00 |