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Pragya Mishra

Publications and source records attributed to Pragya Mishra.

2 recordsLinked to original sources

Phase Matters: Characterizing Heterogeneous Vision-Language Inference on a Mobile SoC

Recent phone-class mobile SoCs expose practical NPU execution paths for on-device vision-language model (VLM) inference, but developers still lack phase-level guidance for mapping VLM pipelines across heterogeneous backends. We present a hardware-in-the-loop characterization of VLM inference on the Qualcomm SM8750 (Snapdragon 8 Elite), covering phase throughput, cache-state effects, 100-run thermal stability, energy, heterogeneous CPU/NPU pipeline configurations, and visual-token-budget sensitivity. Using FastVLM-0.5B as an end-to-end case study, together with encoder-only measurements across four architecture families, we show that phase matters: NPU execution is highly phase-dependent, delivering 1.64x speedup for prefill but only 1.18x for decode, while vision encoders achieve 20-45x speedups over CPU. These gains translate into 10.47 degrees C lower steady-state temperature and 2.52x lower energy, avoiding thermal throttling in always-on settings. Finally, we show that a four-step graph rewrite enables previously unsupported encoders, such as Phi-3.5-V, to reach the QNN path with up to 22x speedup, providing a practical porting recipe for mobile VLM deployment.

cs.AR

Highly Compact Integrated Optic Arc Bend Mode Converters

With the advances in on-chip photonic integrated circuits, compact and wide bandwidth mode converters are required for mode division multiplexing - demultiplexing and various other applications. We propose the design and theory for a highly compact, easy to fabricate mode converter that converts TE0 to TE1 and vice versa. The proposed design uses an arc bend waveguide structure based on Silicon on Insulator (SOI) platform and offers high mode conversion efficiency, low insertion loss, and large bandwidth of operation. We use coupled-mode theory to analyse the mode conversion within the structure, and FDTD simulations have been performed to verify the results. The mode conversion efficiency of 98.65% for TE0 to TE1 and 99.1% for TE1 to TE0 mode conversion with a device footprint of 10.5 um * 2 um is reported in this work.

physics.optics