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M-SENA: An Integrated Platform for Multimodal Sentiment Analysis

Huisheng Mao, Ziqi Yuan, Hua Xu, Wenmeng Yu, Yihe Liu, Kai Gao

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Abstract

M-SENA is an open-sourced platform for Multimodal Sentiment Analysis. It aims to facilitate advanced research by providing flexible toolkits, reliable benchmarks, and intuitive demonstrations. The platform features a fully modular video sentiment analysis framework consisting of data management, feature extraction, model training, and result analysis modules. In this paper, we first illustrate the overall architecture of the M-SENA platform and then introduce features of the core modules. Reliable baseline results of different modality features and MSA benchmarks are also reported. Moreover, we use model evaluation and analysis tools provided by M-SENA to present intermediate representation visualization, on-the-fly instance test, and generalization ability test results.

Topics & Concepts

Computer scienceModular designVisualizationGeneralizationSentiment analysisFeature extractionCode (set theory)Representation (politics)Modality (human–computer interaction)Artificial intelligenceProgramming languageSoftware engineeringMachine learningSet (abstract data type)LawPoliticsMathematical analysisPolitical scienceMathematicsSentiment Analysis and Opinion MiningAdvanced Text Analysis TechniquesEmotion and Mood Recognition