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Seasonal and vertical variation in canopy structure and leaf spectral properties determine the canopy reflectance of a rice field

Julkaisuvuosi

2024

Tekijät

Liu, Weiwei; Mõttus, Matti; Gastellu-Etchegorry, Jean-Philippe; Fang, Hongliang; Atherton, Jon

Tiivistelmä

<p>Physical model simulations have been widely utilized to simulate the reflectance of vegetation canopies. Such simulations can be used to estimate key biochemical and physical vegetation parameters, such as leaf chlorophyll content (LCC), leaf area index (LAI), and leaf inclination angle (LIA) from remotely sensed data via model inversion. In simulations, field crops are typically regarded as one-dimensional (1D) vegetation canopies with constant leaf properties in the vertical direction and across the growing season. We investigated the seasonal effects of these two simplifications, 1D canopy structure, and vertically constant leaf properties, on canopy reflectance simulations in a rice field using in situ measurements and the 3D discrete anisotropic radiative transfer model (DART). We also developed a new methodology for reconstructing 3D crop canopy architecture, which was validated using measurements of gap fraction and canopy reflectance. Our results revealed that the 1D canopy assumption only holds during the early stage of the growing season, then leaf clumping affects canopy reflectance from the jointing stage onwards. Consideration of the 3D canopy structure and its seasonal variation significantly reduced the deviation between simulated and measured canopy reflectance in the green and near-infrared wavelengths when compared to the typical 1D canopy assumption and produced the closest multi-angular distribution pattern to the measurements. The vertical heterogeneity of leaf spectra affected canopy reflectance weakly during the maturation stage when senescence started from the bottom of the canopy. Consideration of seasonal and vertical variation in LIAs significantly improved the results of 1D canopy reflectance simulations, including the multi-angular distribution patterns. In contrast, the directionally-averaged clumping index (CI) only slightly improved the 1D canopy reflectance simulation. To summarize, these findings can be used to reduce the simulation bias of canopy reflectance and improve the retrieval accuracy of key vegetation parameters in crop canopies at the seasonal scale.</p>
Näytä enemmän

Organisaatiot ja tekijät

Helsingin yliopisto

Atherton Jon

Liu Weiwei

Julkaisutyyppi

Julkaisumuoto

Artikkeli

Emojulkaisun tyyppi

Lehti

Artikkelin tyyppi

Alkuperäisartikkeli

Yleisö

Tieteellinen

Vertaisarvioitu

Vertaisarvioitu

OKM:n julkaisutyyppiluokitus

A1 Alkuperäisartikkeli tieteellisessä aikakauslehdessä

Julkaisukanavan tiedot

Volyymi

355

Artikkelinumero

110132

Julkaisu­foorumi

50682

Julkaisufoorumitaso

3

Avoin saatavuus

Avoin saatavuus kustantajan palvelussa

Kyllä

Julkaisukanavan avoin saatavuus

Osittain avoin julkaisukanava

Kustantajan version lisenssi

CC BY

Rinnakkaistallennettu

Kyllä

Rinnakkaistallenteen lisenssi

CC BY

Muut tiedot

Tieteenalat

Fysiikka; Muut maataloustieteet

Avainsanat

[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]

Julkaisumaa

Alankomaat

Kustantajan kansainvälisyys

Kansainvälinen

Kieli

englanti

Kansainvälinen yhteisjulkaisu

Kyllä

Yhteisjulkaisu yrityksen kanssa

Ei

DOI

10.1016/j.agrformet.2024.110132

Julkaisu kuuluu opetus- ja kulttuuriministeriön tiedonkeruuseen

Kyllä