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📄 ResearchJuly 23, 2026

QuantiBias: Benchmarking Quantization-Induced Bias in LLMs

Almost every large language model that reaches a broad audience is quantized: trained in full precision, then compressed for efficiency. This step is assumed harmless and its safety is rarely re-checked. We find its principal side effect is increased bias that standard safety evaluation misses. Hold...

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Source

http://arxiv.org/abs/2607.21063v1
QuantiBias: Benchmarking Quantization-Induced Bias in LLMs | The 500 Feed