2012•Unpublished venueRequires access

An experimental evaluation of the PID controller represented by the delta operator

Brandon L. Eidson, John Y. Hung, R.M. Nelms

Open publisher page 6 citations

Abstract

This study explores two digital PID controller representations: one using the shift operator and one using the delta operator. Both shift and delta-operator-based difference equations are derived from the continuously-designed transfer function. The difference equations reveal a numerical advantage of the delta operator in digital controls: its models are less susceptible to the limited range of numbers that can be represented in finite word-length conditions. The two controllers' abilities to compensate a dc-dc buck converter initial transient are compared through simulation and experimentation. The results demonstrate that the delta operator outperforms the shift operator when modeling a continuously-designed PID controller.

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What this paper is about

This study explores two digital PID controller representations: one using the shift operator and one using the delta operator. Both shift and delta-operator-based difference equations are derived from the continuously-designed transfer function. The difference equations reveal a numerical advantage of the delta operator in digital controls: its models are less susceptible to the limited range of numbers that can be represented in finite word-length conditions. The two controllers' abilities to compensate a dc-dc buck converter initial transient are compared through simulation and experimentation. The results demonstrate that the delta operator outperforms the shift operator when modeling a continuously-designed PID controller.

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OpenAlex reports 6 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

This study explores two digital PID controller representations: one using the shift operator and one using the delta operator. Both shift and delta-operator-based difference equations are derived from the continuously-designed transfer function. The difference equations reveal a numerical advantage of the delta operator in digital controls: its models are less susceptible to the limited range of numbers that can be represented in finite word-length conditions. The two controllers' abilities to compensate a dc-dc buck converter initial transient are compared through simulation and experimentation. The results demonstrate that the delta operator outperforms the shift operator when modeling a continuously-designed PID controller.

Key concepts: Delta operator, PID controller, Operator (biology), Shift operator, Control theory (sociology), Transfer function, Controller (irrigation), Computer science

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