/plugins/rel_fr.py cleanup before looking at step-siblings
svn: r9265
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@ -178,117 +178,11 @@ class RelationshipCalculator(Relationship.RelationshipCalculator):
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return _niece_level[level]
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def get_relationship(self, db, orig_person, other_person):
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"""
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Returns a string representing the relationshp between the two people,
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along with a list of common ancestors (typically father,mother)
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Special cases: relation strings "", "undefined" and "spouse".
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"""
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if orig_person == None:
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return (_("undefined"), [])
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if orig_person.get_handle() == other_person.get_handle():
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return ('', [])
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is_spouse = self.is_spouse(db, orig_person, other_person)
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(secondRel, firstRel, common) = \
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self.get_relationship_distance(db, orig_person, other_person)
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if type(common) == types.StringType or \
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type(common) == types.UnicodeType:
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if is_spouse:
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return (is_spouse, [])
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else:
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return (common, [])
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elif common:
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person_handle = common[0]
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else:
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if is_spouse:
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return (is_spouse, [])
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else:
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return ("", [])
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#distance from common ancestor to the people
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dist_orig = len(firstRel)
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dist_other = len(secondRel)
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rel_str = self.get_single_relationship_string(dist_orig,
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dist_other,
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orig_person.get_gender(),
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other_person.get_gender(),
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firstRel, secondRel
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)
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if is_spouse:
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return (_('%(spouse_relation)s et %(other_relation)s') % {
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'spouse_relation': is_spouse,
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'other_relation': rel_str} , common )
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if dist_orig == 0:
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if dist_other == 0:
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return ('', common)
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elif other_person.get_gender() == gen.lib.Person.MALE:
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return (self.get_father(dist_other), common)
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else:
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return (self.get_mother(dist_other), common)
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elif dist_other == 0:
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if other_person.get_gender() == gen.lib.Person.MALE:
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return (self.get_son(dist_orig), common)
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else:
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return (self.get_daughter(dist_orig), common)
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elif dist_orig == 1:
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if other_person.get_gender() == gen.lib.Person.MALE:
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return (self.get_uncle(dist_other), common)
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else:
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return (self.get_aunt(dist_other), common)
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elif dist_other == 1:
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if other_person.get_gender() == gen.lib.Person.MALE:
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return (self.get_nephew(dist_orig-1), common)
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else:
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return (self.get_niece(dist_orig-1), common)
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elif dist_orig == 2 and dist_other == 2:
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if other_person.get_gender() == gen.lib.Person.MALE:
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return ('le cousin germain', common)
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else:
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return ('la cousine germaine', common)
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elif dist_orig == 3 and dist_other == 2:
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if other_person.get_gender() == gen.lib.Person.MALE:
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return ('le neveu à la mode de Bretagne', common)
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else:
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return ('la nièce à la mode de Bretagne', common)
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elif dist_orig == 2 and dist_other == 3:
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if other_person.get_gender() == gen.lib.Person.MALE:
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return ('l\'oncle à la mode de Bretagne', common)
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else:
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return ('la tante à la mode de Bretagne', common)
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else:
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if other_person.get_gender() == gen.lib.Person.MALE:
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return (self.get_cousin(dist_orig, dist_other), common)
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else:
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return (self.get_cousine(dist_orig, dist_other), common)
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# kinship report
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def get_plural_relationship_string(self, Ga, Gb):
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"""
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Provides a string that describes the relationsip between a person, and
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a group of people with the same relationship. E.g. "grandparents" or
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"children".
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Ga and Gb can be used to mathematically calculate the relationship.
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See the Wikipedia entry for more information:
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http://en.wikipedia.org/wiki/Cousin#Mathematical_definitions
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@param Ga: The number of generations between the main person and the
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common ancestor.
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@type Ga: int
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@param Gb: The number of generations between the group of people and the
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common ancestor
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@type Gb: int
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@returns: A string describing the relationship between the person and
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the group.
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@rtype: str
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voir Relationship.py
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"""
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rel_str = "des parents éloignés"
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if Ga == 0:
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@ -355,82 +249,33 @@ class RelationshipCalculator(Relationship.RelationshipCalculator):
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return rel_str
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return rel_str
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# quick report
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# quick report /RelCalc tool
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def get_single_relationship_string(self, Ga, Gb, gender_a, gender_b,
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reltocommon_a, reltocommon_b,
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only_birth=True,
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in_law_a=False, in_law_b=False):
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"""
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Provides a string that describes the relationsip between a person, and
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another person. E.g. "grandparent" or "child".
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To be used as: 'person a is the grandparent of b', this will
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be in translation string :
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'person a is the %(relation)s of b'
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Note that languages with gender should add 'the' inside the
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translation, so eg in french:
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'person a est %(relation)s de b'
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where relation will be here: le grandparent
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Ga and Gb can be used to mathematically calculate the relationship.
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See the Wikipedia entry for more information:
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http://en.wikipedia.org/wiki/Cousin#Mathematical_definitions
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Some languages need to know the specific path to the common ancestor.
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Those languages should use reltocommon_a and reltocommon_b which is
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a string like 'mfmf'. The possible string codes are:
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REL_MOTHER # going up to mother
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REL_FATHER # going up to father
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REL_MOTHER_NOTBIRTH # going up to mother, not birth relation
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REL_FATHER_NOTBIRTH # going up to father, not birth relation
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REL_SIBLING # going sideways to sibling (no parents)
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REL_FAM_BIRTH # going up to family (mother and father)
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REL_FAM_NONBIRTH # going up to family, not birth relation
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REL_FAM_BIRTH_MOTH_ONLY # going up to fam, only birth rel to mother
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REL_FAM_BIRTH_FATH_ONLY # going up to fam, only birth rel to father
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Prefix codes are stripped, so REL_FAM_INLAW_PREFIX is not present.
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If the relation starts with the inlaw of the person a, then 'in_law_a'
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is True, if it starts with the inlaw of person b, then 'in_law_b' is
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True.
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Note that only_birth=False, means that in the reltocommon one of the
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NOTBIRTH specifiers is present.
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The REL_FAM identifiers mean that the relation is not via a common
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ancestor, but via a common family (note that that is not possible for
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direct descendants or direct ancestors!). If the relation to one of the
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parents in that common family is by birth, then 'only_birth' is not
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set to False.
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@param Ga: The number of generations between the main person and the
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common ancestor.
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@type Ga: int
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@param Gb: The number of generations between the other person and the
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common ancestor
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@type Gb: int
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@param gender_a : gender of person a
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@type gender_a: int gender
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@param gender_b : gender of person b
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@type gender_b: int gender
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@param reltocommon_a : relation path to common ancestor or common
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Family for person a.
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Note that length = Ga
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@type reltocommon_a: str
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@param reltocommon_b : relation path to common ancestor or common
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Family for person b.
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Note that length = Gb
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@type reltocommon_b: str
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@param in_law_a : True if path to common ancestors is via the partner
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of person a
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@type in_law_a: bool
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@param in_law_b : True if path to common ancestors is via the partner
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of person b
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@type in_law_b: bool
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@param only_birth : True if relation between a and b is by birth only
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False otherwise
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@type only_birth: bool
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@returns: A string describing the relationship between the two people
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@rtype: str
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voir Relationship.py
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"""
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print 'Ga, Gb :', Ga, Gb
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## print 'Ga, Gb :', Ga, Gb
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if only_birth:
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step = 'germain'
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elif REL_FAM_BIRTH_MOTH_ONLY:
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step = 'utérin'
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elif REL_FAM_BIRTH_FATH_ONLY:
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step = 'consanguin'
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else:
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step = ''
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if in_law_a and gender_a == gen.lib.Person.MALE :
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inlaw = 'beau-'
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elif in_law_a and gender_a == gen.lib.Person.FEMALE:
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inlaw = 'belle-'
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else:
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inlaw =''
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rel_str = "un parent éloigné"
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if Ga == 0:
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# b is descendant of a
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@ -466,9 +311,9 @@ class RelationshipCalculator(Relationship.RelationshipCalculator):
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rel_str = _sister_level[Ga]
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else:
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if gender_b == gen.lib.Person.MALE:
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rel_str = "l'oncle éloigné (par la %dème génération)" % Ga
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rel_str = "l'oncle éloigné (par la %dème génération)" % (Ga+1)
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elif gender_b == gen.lib.Person.FEMALE:
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rel_str = "la tante éloignée (par la %dème génération)" % Ga
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rel_str = "la tante éloignée (par la %dème génération)" % (Ga+1)
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else:
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return rel_str
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elif Ga == 1:
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