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    This study introduces OmniCharacter++, a benchmark for evaluating role-playing agents in complex, multi-modal conversations. It also presents UniCharacter-7B, a model demonstrating improved realism and consistency in multi-character interactions.

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    Area of Science:

    • Artificial Intelligence
    • Natural Language Processing
    • Human-Computer Interaction

    Background:

    • Current role-playing agents (RPAs) are evaluated in limited, text-only, two-person conversations.
    • This fails to capture the complexity of real-world human interactions involving multiple people and various communication modes.

    Purpose of the Study:

    • Introduce OmniCharacter++, the first benchmark for assessing multi-character interactions in a combined text and speech context.
    • Provide a large-scale dataset and evaluation suite for multi-modal role-playing scenarios.
    • Develop and evaluate a unified text-speech model for managing complex multi-character dynamics.

    Main Methods:

    • Developed OmniCharacter++, a dataset with 10,287 characters, 118,017 dialogues, and over 1 million audio responses across 8 topics.
    • Created a comprehensive evaluation suite assessing dialogue understanding, generation quality, and perceptual naturalness.
    • Trained UniCharacter-7B, a unified text-speech model on the OmniCharacter++ dataset.

    Main Results:

    • UniCharacter-7B demonstrated more realistic and consistent role-playing responses, enhancing both attractiveness and consistency.
    • The OmniCharacter++ benchmark presents significant challenges for current state-of-the-art models.
    • The study establishes a clear direction for future research in multi-modal, multi-character AI.

    Conclusions:

    • OmniCharacter++ advances the evaluation of role-playing agents beyond static, text-based interactions.
    • UniCharacter-7B shows promise in handling complex multi-character dynamics with improved vocal and semantic alignment.
    • This work paves the way for more sophisticated and human-like conversational AI systems.