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March 12, 2026Digital3 citationsOpen Access

Generative AI for Text-to-Video Generation: Recent Advances and Future Directions

KHKadhim HayawiSSSakib Shahriar

Key Points

  • The aim is to systematically review recent advances in text-to-video generation and highlight future research directions.
  • Conducted a systematic review of literature published from 2024 onward
  • Categorized works into T2V methods, datasets, and evaluation practices
  • Identified recurring themes and methodological patterns
  • Provided consolidated insights into the current state of text-to-video generation
  • Highlighted key research opportunities and open challenges in the T2V field

Abstract

Text-to-video (T2V) generation has recently emerged as a transformative technology within the field of generative AI, enabling the creation of realistic, temporally coherent videos based on natural language descriptions. This paradigm provides significant added value in many domains such as creative media, human-computer interaction, immersive learning, and simulation. Despite its growing importance, systematic discussion of T2V is still limited compared with adjacent modalities such as text-to-image and image-to-video. To alleviate the scarcity of discussions in the T2V field, this paper provides a systematic review of works published from 2024 onward, consolidating fragmented contributions across the field. We survey and categorize the selected literature into three principal areas—namely, T2V methods, datasets, and evaluation practices—and further subdivide each area into subcategories that reflect recurring themes and methodological patterns in the literature. Emphasis is then placed on identifying key research opportunities and open challenges that need further investigation.

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Cite This Study

Hayawi et al. (2026) studied this question.

synapsesocial.com/papers/69b2588496eeacc4fcec84b1https://doi.org/10.3390/digital6010023
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