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Soil (temperature, moisture, oxygen content and CO2 efflux) and plant (above- and below-ground growth, leaf gas exchange, chlorophyll fluorescence, water relations) parameters were measured.
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Shape and relation parameters are differentiated in PpC3, thus parametric family can be defined.
Experimental results were used to calculate the Gibson and Ashby relation parameters for the studied unit cell geometries.
Leaf cells were punctured using a CPP, and water relation parameters such as T1/2, ε, and Lplc were determined as described above for root cell measurements.
Most plant water relation parameters were measured 3 h after transfer of the plants to the final maximum concentration of 75 mM NaCl and these are summarized in Table 1.
On the other hand, our findings reveal that even subtle differences in terms of substrate properties, with special reference to water relation parameters, can have very important consequences for the performance and persistence of vegetation over green roofs.
To verify these parameter relations, numerical parameter estimation is carried out by assuming p02 = 2, p12 = 3, p03 = 3, p13 = 0.4, p21 = 1, p31 = 2 as the true values of the parameters.
Here, water stress is determined in terms of the plant water relation parameter 'water potential' (compare Vertovic et al. 2001 and Nobel 2017).
We can also ascertain whether the assumed relations between parameters were justified.
Artificial neural network is useful to find the relations of parameters with lost circulation.
The underlying relations contain parameters which are obtained by fitting to experimental results.
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