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The above problems were solved in the following way: The errors in the implementation of the grapheme-to-phoneme conversion algorithm and in conversion rules tables have been corrected by modifications, made within an application source code in Python programming language.
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The morphogenetic rules (Table 1) produce legorgs of different shapes (see, e.g., examples in Fig. 3).
The substructure ions were combinatorially assigned with hydrogen rearrangement (HR) rules (Table 1).
The former sort class included six sort rules and the latter class included four sort rules (Table 1).
These goals are specified by substantial sustainability rules (Table 1) forming the core element of the concept.
The bond cleavage and the counts of hydrogen rearrangement were determined by the HR rules (Table 1).
The adopted method for the decision rules table construction is inspired from the works developed in [35, 36].
the formulation of the spacing law in function of the spacing parameter in the decision rules table deriving method.
At this stage, certain character sequences as described by the filtering rules (Table 2) and not exempt by the list of exceptions (Table 3) are looked for.
For each class, the substructure of diagnostic fragment ions was identified with MS-FINDER software using hydrogen rearrangement (HR) rules (Table 1) [9] with detailed manual curation.
According to Maria Steffen-Ballgrapheme-to-phonemephoneme conversion rules, relating to one orthographic letter, can be stored in one table, called grapheme-to-phoneme conversion rules table for one letter.
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CEO of Professional Science Editing for Scientists @ prosciediting.com