Bin Hu, Wei Shi, Shihong Xiong, Songlin Li, Kelun Wang, Na Gong
Together, these data suggest that multi-parameter acoustic correction coupled with cloud computing holds promise for improving ultrasound safety profiling and imaging precision. However, the current low-to-moderate certainty of evidence, due to methodological heterogeneity, necessitates future validation of edge-cloud synergies to realize robust, personalized monitoring systems.
BACKGROUND: Conventional ultrasound safety monitoring relies on the Mechanical Index (MI) and Thermal Index (TI), which lack tissue-specificity. Consequently, real-time safety profiling remains imprecise. Dynamic, tissue-specific corrections such as tissue perfusion rate (TPR) aim to address this limitation. This narrative review examines how integrating these corrections with quantum-cloud computational frameworks may enable enhanced safety and image quality in ultrasonic applications.
OBJECTIVE: We assessed the potential of an integrated quantum-cloud framework to reduce ultrasound-related bioeffects without compromising image quality, compared to standard MI/TI monitoring in patients undergoing clinical ultrasound imaging.
METHODS: A narrative synthesis of the eligible literature was performed, guided by thematic analysis frameworks. Quantitative outcomes were descriptively summarized with medians and ranges; formal meta-analysis was not conducted because heterogeneity in TPR measurement protocols, device manufacturers, and outcome definitions violated the commutability assumption required for statistical pooling.
RESULTS: Qualitative synthesis indicated that tissue-specific, multi-parameter correction strategies were consistently associated with more conservative acoustic exposure and heightened safety awareness than static MI/TI monitoring alone, although the consistency and clinical magnitude of these benefits varied across anatomical applications and study designs. The certainty of the current evidence was judged low to moderate, limited by non-standardized TPR measurement protocols and heterogeneous outcome definitions.
CONCLUSIONS: Together, these data suggest that multi-parameter acoustic correction coupled with cloud computing holds promise for improving ultrasound safety profiling and imaging precision. However, the current low-to-moderate certainty of evidence, due to methodological heterogeneity, necessitates future validation of edge-cloud synergies to realize robust, personalized monitoring systems.