2019 IEEE 15th International Conference on Intelligent Computer Communication and Processing (ICCP) 2019
DOI: 10.1109/iccp48234.2019.8959642
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The Impact of Data Challenges on Intent Detection and Slot Filling for the Home Assistant Scenario

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Cited by 8 publications
(15 citation statements)
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“…The drop in performance from the baseline to Scenario 1 is the largest and the qualitative analysis suggests that the model tends to memorize specific words rather than learn the meaning of the sentence. We believe this to be rooted in the fact that we use word embeddings to represent words, which are good at expressing semantic similarity, but fail to capture certain relationships such as synonymy and antonymy (as shown in [ 3 ]). In order to mitigate this issue, an improvement could be to intervene in the word vector model and adjust the embeddings.…”
Section: Discussionmentioning
confidence: 99%
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“…The drop in performance from the baseline to Scenario 1 is the largest and the qualitative analysis suggests that the model tends to memorize specific words rather than learn the meaning of the sentence. We believe this to be rooted in the fact that we use word embeddings to represent words, which are good at expressing semantic similarity, but fail to capture certain relationships such as synonymy and antonymy (as shown in [ 3 ]). In order to mitigate this issue, an improvement could be to intervene in the word vector model and adjust the embeddings.…”
Section: Discussionmentioning
confidence: 99%
“…The home assistant scenario was initially introduced in [ 3 ], and consists of multiple datasets that include several data and learning challenges that are likely to appear in such an application domain, considering the Romanian language. To the best of our knowledge, this is the first and only dataset for intent detection and slot filling for the Romanian language to date.…”
Section: Description Of the Home Assistant Scenariomentioning
confidence: 99%
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“…In [1], a home assistant scenario for the Romanian language was proposed and implemented. Corresponding datasets were generated and labeled, in order to train machine learning models for intent detection and slot filling.…”
Section: Introductionmentioning
confidence: 99%