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2 |
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3 | from geniusweb.issuevalue.Bid import Bid
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4 | from geniusweb.issuevalue.Domain import Domain
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5 | from geniusweb.issuevalue.Value import Value
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6 | from geniusweb.profile.utilityspace.LinearAdditive import LinearAdditive
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7 | from tudelft.utilities.immutablelist.AbstractImmutableList import AbstractImmutableList
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8 | from tudelft.utilities.immutablelist.FixedList import FixedList
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9 | from tudelft.utilities.immutablelist.ImmutableList import ImmutableList
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10 | from tudelft.utilities.immutablelist.JoinedList import JoinedList
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11 | from tudelft.utilities.immutablelist.MapList import MapList
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12 | from tudelft.utilities.immutablelist.Tuple import Tuple
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13 | from typing import List, Dict
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14 | from geniusweb.bidspace.IssueInfo import IssueInfo
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15 | from geniusweb.bidspace.Interval import Interval
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16 | from geniusweb.utils import val
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17 | from decimal import Decimal
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18 |
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19 | class BidsWithUtility :
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20 | '''
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21 | WARNING DO NOT USE, NOT YET WORKING CORRECTLY
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22 |
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23 | Tool class containing functions dealing with utilities of all bids in a given
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24 | {@link LinearAdditive}. This class caches previously computed values to
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25 | accelerate the calls and subsequent calls. Re-use the object to keep/reuse
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26 | the cache.
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27 | <h2>Rounding</h2> Internally, utilities of bids are rounded to the given
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28 | precision. This may cause inclusion/exclusion of some bids in the results.
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29 | See {@link #BidsWithUtility(LinearAdditive, int)} for more details
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30 | Immutable.
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31 | '''
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32 |
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33 |
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34 | def __init__(self, issuesInfo:List[IssueInfo] , precision:int ) :
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35 | '''
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36 | @param issuesInfo List of the relevant issues (in order of relevance) and
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37 | all info of each issue.
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38 | @param precision the number of digits to use for computations. In
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39 | practice, 6 seems a good default value.
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40 | <p>
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41 | All utilities * weight are rounded to this number of
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42 | digits. This value should match the max number of
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43 | (digits used in the weight of an issue + number of
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44 | digits used in the issue utility). To determine the
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45 | optimal value, one may consider the step size of the
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46 | issues, and the range of interest. For instance if the
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47 | utility function has values 1/3 and 2/3, then these have
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48 | an 'infinite' number of relevant digits. But if the goal
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49 | is to search bids between utility 0.1 and 0.2, then
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50 | computing in 2 digits might already be sufficient.
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51 | <p>
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52 | This algorithm has memory and space complexity O(
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53 | |nissues| 10^precision ). For spaces up to 7 issues, 7
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54 | digits should be feasible; for 9 issues, 6 digits may be
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55 | the maximum.
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56 | '''
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57 | if issuesInfo == None or len(issuesInfo)==0:
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58 | raise ValueError("sortedissues list must contain at least 1 element")
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59 | self._issueInfo = issuesInfo;
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60 | self._precision = precision;
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61 | # cache. Key = call arguments for {@link #get(int, Interval)}. Value=return
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62 | # value of that call.
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63 |
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64 | self._cache:Dict[Tuple[int, Interval], ImmutableList[Bid]] = {}
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65 |
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66 | @staticmethod
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67 | def create(space:LinearAdditive, precision:int=6) -> "BidsWithUtility":
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68 | '''
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69 | Support constructor, uses default precision 6. This value seems practical
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70 | for the common range of issues, utilities and weights. See
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71 | {@link #BidsWithUtility(LinearAdditive, int)} for more details on the
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72 | precision.
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73 |
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74 | @param space the {@link LinearAdditive} to analyze
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75 | @param space the {@link LinearAdditive} to analyze. Optional, defaults to 6
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76 | '''
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77 | return BidsWithUtility(BidsWithUtility._getInfo(space, precision), precision);
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78 |
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79 |
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80 | def getRange(self) ->Interval :
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81 | '''
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82 | @return the (rounded) utility {@link Interval} of this space: minimum and
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83 | maximum achievable utility.
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84 | '''
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85 | return self._getRange(len(self._issueInfo) - 1)
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86 |
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87 | def getBids(self, range: Interval) -> ImmutableList[Bid] :
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88 | '''
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89 | @param range the minimum and maximum utility required of the bids. to be
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90 | included (both ends inclusive).
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91 | @return a list with bids that have a (rounded) utility inside range.
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92 | possibly empty.
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93 | '''
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94 | return self._get(len(self._issueInfo) - 1, range.round(self._precision));
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95 |
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96 | def getInfo(self) -> List[IssueInfo] :
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97 | return self._issueInfo.copy()
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98 |
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99 | def getExtremeBid(self, isMax:bool) ->Bid :
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100 | '''
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101 | @param isMax the extreme bid required
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102 | @return the extreme bid, either the minimum if isMax=false or maximum if
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103 | isMax=true
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104 | '''
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105 | map:Dict[str, Value] = {}
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106 | for info in self._issueInfo:
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107 | map[info.getName()] = info.getExtreme(isMax)
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108 | return Bid(map)
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109 |
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110 | def _get(self, n:int , goal:Interval) -> ImmutableList[Bid] :
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111 | '''
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112 | Create partial BidsWithUtil list considering only issues 0..n, with
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113 | utilities in given range.
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114 |
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115 | @param n the number of issueRanges to consider, we consider 0..n here.
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116 | The recursion decreases n until n=0
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117 | @param goal the minimum and maximum utility required of the bids. to be
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118 | included (both ends inclusive)
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119 | @return BidsWithUtil list, possibly empty.
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120 | '''
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121 | if goal == None:
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122 | raise ValueError("Interval=null")
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123 |
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124 | # clamp goal into what is reachable. Avoid caching empty
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125 | goal = goal.intersect(self._getRange(n))
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126 | if (goal.isEmpty()):
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127 | return FixedList([])
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128 |
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129 | cachetuple = Tuple(n, goal)
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130 | if (cachetuple in self._cache):
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131 | return self._cache[cachetuple]
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132 |
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133 | result = self._checkedGet(n, goal)
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134 | self._cache[cachetuple]=result
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135 | return result
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136 |
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137 | @staticmethod
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138 | def _getInfo(space2:LinearAdditive , precision:int) -> List[IssueInfo] :
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139 | dom = space2.getDomain()
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140 | return [IssueInfo(issue, dom.getValues(issue), \
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141 | val(space2.getUtilities().get(issue)), \
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142 | space2.getWeight(issue), precision) \
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143 | for issue in dom.getIssues()]
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144 |
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145 |
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146 | def _checkedGet(self, n:int, goal:Interval ) -> ImmutableList[Bid] :
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147 | info = self._issueInfo[n]
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148 | # issue is the first issuesWithRange.
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149 | issue = info.getName()
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150 |
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151 | if n == 0:
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152 | return OneIssueSubset(info, goal)
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153 |
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154 | # make new list, joining all sub-lists
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155 | fulllist:ImmutableList[Bid] = FixedList([])
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156 | for val in info.getValues():
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157 | weightedutil = info.getWeightedUtil(val)
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158 | subgoal = goal.subtract(weightedutil)
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159 | # recurse: get list of bids for the subspace
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160 | partialbids = self._get(n - 1, subgoal)
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161 |
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162 | bid = Bid({issue: val})
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163 | fullbids = BidsWithUtility.maplist(bid, partialbids)
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164 | if fullbids.size() != 0:
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165 | fulllist = JoinedList[Bid]([fullbids, fulllist])
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166 | return fulllist
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167 |
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168 | @staticmethod
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169 | def maplist(bid: Bid, partialbids: ImmutableList[Bid]) -> ImmutableList[Bid]:
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170 | '''
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171 | this is just to force a scope onto bid
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172 | '''
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173 | return MapList[Bid, Bid](lambda pbid: pbid.merge(bid), partialbids)
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174 |
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175 | def _getRange(self, n:int) ->Interval :
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176 | '''
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177 | @param n the maximum issuevalue utility to include. Use n=index of last
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178 | issue s= (#issues in the domain - 1) for the full range of this
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179 | domain.
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180 | @return Interval (min, max) of the total weighted utility Interval of
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181 | issues 0..n. All weighted utilities have been rounded to the set
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182 | {@link #precision}
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183 | '''
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184 | value = Interval(Decimal(0),Decimal(0))
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185 | for i in range(0,n+1): # include end point
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186 | value = value.add(self._issueInfo[i].getInterval())
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187 | return value
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188 |
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189 | class OneIssueSubset (AbstractImmutableList[Bid]):
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190 | '''
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191 | List of all one-issue bids that have utility inside given interval.
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192 | '''
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193 | def __init__(self, info:IssueInfo , interval:Interval ) :
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194 | '''
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195 | @param info the {@link IssueInfo}
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196 | @param interval a utility interval (weighted)
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197 | '''
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198 | self._info = info;
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199 | self._interval = interval;
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200 | self._size = info._subsetSize(interval)
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201 |
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202 | #Override
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203 | def get(self, index:int) ->Bid :
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204 | return Bid({self._info.getName():
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205 | self._info._subset(self._interval)[index]})
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206 |
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207 | #Override
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208 | def size(self) ->int:
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209 | return self._size
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