Automated detection of misogynistic content in memes presents a unique challenge at the intersection of multimodal reasoning, multilingual understanding and cultural subjectivity. We present our submission to the CC-MMD 2026 Cross-Cultural Multimodal Misogyny Detection Grand Challenge, which requires simultaneous prediction of misogyny labels from Indian, Chinese, and Western cultural perspectives across English, Chinese, Tamil, and Malayalam memes. We propose a Cross Cultural TriModal (CCTM) architecture that fine-tunes the VLM using QLoRA [3] with three parallel culture-specific classification heads, Entity-Anchored Sociocultural Context (EASC) for cultural knowledge injection, generation supervision and Group Distributionally Robust Optimization. Our system achieves Rank 1 on Malayalam (F1: 0.9372), Rank 2 on English (F1: 0.8016), Rank 4 on Chinese (F1: 0.8553) and Rank 7 on Tamil (F1: 0.7909) on the CC-MMD 2026 leaderboard. Code is available at: https://github.com/arnoldsachith/Vidyashilp_Tech_Explorers-CC-MMD-2026.git
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