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Technical interview guide

Power Management & Low-Power Design

The sleep modes, clock strategies, and wake mechanisms that let a battery-powered device run for months or years on a small cell.

Read
60 min
Practice MCQs
25
Interview QA
25
Edition
v3
Editorial status
Reviewed

Scope: Current Zephyr system/device/runtime PM; CMSIS-Core 6 WFI/WFE; CMSIS-RTOS and FreeRTOS tickless guidance reviewed 2026-09-04.

Interview QA

Treat each question like a live interview question: answer out loud first (structure, assumptions, tradeoffs), then open the model answer to spot gaps and rehearse a tighter follow-up.

Curated: · Written: · Reviewed:

QA-1

Design and validate low-power behavior for energy model.

QA-2

Design and validate low-power behavior for break-even time.

QA-3

Design and validate low-power behavior for power states.

QA-4

Design and validate low-power behavior for idle policy.

QA-5

Design and validate low-power behavior for WFI semantics.

QA-6

Design and validate low-power behavior for WFE semantics.

QA-7

Design and validate low-power behavior for lost wakeup.

QA-8

How do isolation cells and level shifters operate across multi-voltage power domains, and how are their clamp states and rules declared in UPF?

QA-9

How do retention flip-flops (SRPG) work, and how must power-down and restore sequences be orchestrated across power domains?

QA-10

Compare integrated clock gating (ICG) and power gating across power reduction, latency, and area, and explain how an ICG prevents output glitches.

QA-11

How do voltage level shifters function across multi-voltage power domains, what are the primary circuit topologies, and what timing and sequencing hazards must firmware and hardware coordinate?

QA-12

Design and validate low-power behavior for runtime PM counts.

QA-13

Design and validate low-power behavior for asynchronous resume.

QA-14

Design and validate low-power behavior for clock gating.

QA-15

Design and validate low-power behavior for frequency scaling.

QA-16

Design and validate low-power behavior for tickless time.

QA-17

Design and validate low-power behavior for deadline constraints.

QA-18

Design and validate low-power behavior for DMA boundaries.

QA-19

Design and validate low-power behavior for retained state.

QA-20

Design and validate low-power behavior for watchdog in sleep.

QA-21

Design and validate low-power behavior for radio duty cycling.

QA-22

Design and validate low-power behavior for battery model.

QA-23

Design and validate low-power behavior for measurement setup.

QA-24

Design and validate low-power behavior for environmental validation.

QA-25

Design and validate low-power behavior for energy evidence.