Accurate and scalable discrimination of closely related genetic variants at single-nucleotide resolution remains challenge in molecular diagnostics, particularly under multiplexed conditions. Herein, we present a mechanistically guided Color-Coding Strategy for Multiple Variants Based on Single-Mutation-Responsive Strand-Displacement Padlock Probes that enables combinatorial color-coded identification of genetic variants with minimal parallel reactions. By integrating multiple isothermal amplification reactions (n) with multichannel strand displacement probes (m), the system establishes a theoretical n-dimensional coding framework capable of resolving up to variants in a single assay. Each variant is uniquely encoded by an "n-color codon" and automatically decoded via a programmable algorithm. Using SARS-CoV-2 as a model, we identified up to 15 variants using only three reaction tubes across RNA, synthetic DNA, pseudovirus, and clinical nasopharyngeal swabs (n = 76). In clinical evaluation, the assay achieved 100% positive agreement with RT-qPCR for SARS-CoV-2-positive specimens and successfully assigned variant identities to 72 of 76 samples (94.7%). The platform achieves a reduced reaction number, experimental complexity, and cost compared to conventional approaches. Owing to its modular and programmable design, this strategy is readily adaptable to emerging variants, demonstrating its potential for pathogen surveillance, and genetic variant analysis.