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Title: PVAnalytics: A Python Package for Automated Processing of Solar Time Series Data

Conference ·
OSTI ID:1887283

Multiple publicly available software packages exist that analyze solar time series data, including RdTools and Solar Data Tools, among others. Several of these packages contain their own unique quality assurance (QA) and feature recognition algorithms. The python PVAnalytics package was developed to offer an internally consistent source for these analysis tools, making it easier for the end user to deploy these routines on his or her solar data. The PVAnalytics package currently contains routines for outlier detection, inverter clipping detection, irradiance and temperature checks, orientation checks, and data shift detection, among other functions. These functions have been aggregated from various sources including Solar Forecast Arbiter, RdTools, and the QA process developed by NREL's PV Fleets Initiative. We are continuously adding new functionality to the package, including documentation, examples and algorithms. By bundling QA functionality into a single software package, we hope to make PVAnalytics a comprehensive software library to support analysis of solar metadata and time series data.

Research Organization:
National Renewable Energy Lab. (NREL), Golden, CO (United States)
Sponsoring Organization:
USDOE Office of Energy Efficiency and Renewable Energy (EERE), Renewable Power Office. Solar Energy Technologies Office
DOE Contract Number:
AC36-08GO28308
OSTI ID:
1887283
Report Number(s):
NREL/PR-5K00-83824; MainId:84597; UUID:11885dc2-a32b-4dd8-9d05-aa723210649c; MainAdminID:65323
Resource Relation:
Conference: Presented at the PV Performance Modeling and Monitoring Workshop, 23-24 August 2022, Salt Lake City, Utah
Country of Publication:
United States
Language:
English