feat: add eoRankingCached with better documentation
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1 changed files with 96 additions and 18 deletions
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@ -28,7 +28,6 @@
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#define eoRanking_h
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#define eoRanking_h
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#include "eoPerf2Worth.h"
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#include "eoPerf2Worth.h"
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#include <vector>
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/** An instance of eoPerfFromWorth
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/** An instance of eoPerfFromWorth
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* COmputes the ranked fitness: fitnesses range in [m,M]
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* COmputes the ranked fitness: fitnesses range in [m,M]
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@ -47,10 +46,9 @@ public:
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@param _p selective pressure (in (1,2]
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@param _p selective pressure (in (1,2]
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@param _e exponent (1 == linear)
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@param _e exponent (1 == linear)
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*/
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*/
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eoRanking(double _p = 2.0, double _e = 1.0) : pressure(_p), exponent(_e), cached_pSize(0) {}
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eoRanking(double _p = 2.0, double _e = 1.0) : pressure(_p), exponent(_e) {}
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/* helper function: finds index in _pop of _eo, an EOT * */
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/* helper function: finds index in _pop of _eo, an EOT * */
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/*
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int lookfor(const EOT *_eo, const eoPop<EOT> &_pop)
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int lookfor(const EOT *_eo, const eoPop<EOT> &_pop)
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{
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{
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typename eoPop<EOT>::const_iterator it;
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typename eoPop<EOT>::const_iterator it;
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@ -61,13 +59,94 @@ public:
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}
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}
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throw eoException("Not found in eoLinearRanking");
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throw eoException("Not found in eoLinearRanking");
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}
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}
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*/
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/* COmputes the ranked fitness: fitnesses range in [m,M]
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/* COmputes the ranked fitness: fitnesses range in [m,M]
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with m=2-pressure/popSize and M=pressure/popSize.
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with m=2-pressure/popSize and M=pressure/popSize.
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in between, the progression depstd::ends on exponent (linear if 1).
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in between, the progression depstd::ends on exponent (linear if 1).
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*/
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*/
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virtual void operator()(const eoPop<EOT> &_pop)
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virtual void operator()(const eoPop<EOT> &_pop)
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{
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std::vector<const EOT *> rank;
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_pop.sort(rank);
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unsigned pSize = _pop.size();
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unsigned int pSizeMinusOne = pSize - 1;
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if (pSize <= 1)
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throw eoPopSizeException(pSize, "cannot do ranking with population of size <= 1");
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// value() refers to the std::vector of worthes (we're in an eoParamvalue)
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value().resize(pSize);
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double beta = (2 - pressure) / pSize;
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if (exponent == 1.0) // no need for exponetial then
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{
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double alpha = (2 * pressure - 2) / (pSize * pSizeMinusOne);
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for (unsigned i = 0; i < pSize; i++)
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{
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int which = lookfor(rank[i], _pop);
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value()[which] = alpha * (pSize - i) + beta; // worst -> 1/[P(P-1)/2]
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}
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}
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else // exponent != 1
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{
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double gamma = (2 * pressure - 2) / pSize;
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for (unsigned i = 0; i < pSize; i++)
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{
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int which = lookfor(rank[i], _pop);
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// value in in [0,1]
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double tmp = ((double)(pSize - i)) / pSize;
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// to the exponent, and back to [m,M]
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value()[which] = gamma * pow(tmp, exponent) + beta;
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}
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}
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}
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private:
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double pressure; // selective pressure
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double exponent;
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};
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/**
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* @class eoRankingCached
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* @brief Cached version of eoRanking that stores precomputed values for better performance
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*
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* This class implements the same ranking algorithm as eoRanking but adds a caching layer
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* that stores frequently used values when the population size remains constant between
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* calls. This optimization is particularly useful in steady-state evolution where the
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* population size typically doesn't change between selection operations.
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*
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* The caching mechanism stores:
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* - Population size related values (pSize, pSizeMinusOne)
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* - Precomputed coefficients (alpha, beta, gamma)
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*
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* Note: This optimization should only be used when the population size remains constant
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* between calls to the operator. For dynamic population sizes, use the standard eoRanking.
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*
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* @ingroup Selectors
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*/
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template <class EOT>
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class eoRankingCached : public eoPerf2Worth<EOT>
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{
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public:
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using eoPerf2Worth<EOT>::value;
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/* Ctor:
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@param _p selective pressure (in (1,2]
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@param _e exponent (1 == linear)
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*/
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eoRankingCached(double _p = 2.0, double _e = 1.0)
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: pressure(_p), exponent(_e), cached_pSize(0) {}
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/*
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Computes the ranked fitness with caching optimization
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Fitnesses range in [m,M] where:
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- m = 2-pressure/popSize
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- M = pressure/popSize
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The progression between m and M depends on the exponent (linear when exponent=1)
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@param _pop The population to rank
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*/
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virtual void operator()(const eoPop<EOT> &_pop)
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{
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{
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unsigned pSize = _pop.size();
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unsigned pSize = _pop.size();
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@ -78,7 +157,7 @@ public:
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// value() refers to the std::vector of worthes (we're in an eoParamvalue)
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// value() refers to the std::vector of worthes (we're in an eoParamvalue)
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value().resize(pSize);
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value().resize(pSize);
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// Cache only if population size changed
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// Cache population-size dependent values only when population size changes
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if (pSize != cached_pSize)
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if (pSize != cached_pSize)
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{
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{
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cached_pSize = pSize;
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cached_pSize = pSize;
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@ -96,16 +175,15 @@ public:
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for (size_t i = 0; i < pSize; ++i)
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for (size_t i = 0; i < pSize; ++i)
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indices[i] = i;
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indices[i] = i;
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if (exponent == 1.0) // no need for exponetial then
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if (exponent == 1.0) // no need for exponetial then (linear case)
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{
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{
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for (unsigned i = 0; i < pSize; i++)
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for (unsigned i = 0; i < pSize; i++)
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{
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{
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int which = indices[i];
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int which = indices[i];
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;
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value()[which] = cached_alpha * (pSize - i) + cached_beta;
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value()[which] = cached_alpha * (pSize - i) + cached_beta; // worst -> 1/[P(P-1)/2]
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}
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}
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}
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}
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else // exponent != 1
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else // non-linear case (exponent != 1)
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{
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{
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for (unsigned i = 0; i < pSize; i++)
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for (unsigned i = 0; i < pSize; i++)
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{
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{
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@ -119,15 +197,15 @@ public:
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}
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}
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private:
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private:
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double pressure; // selective pressure
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double pressure; // selective pressure (1 < pressure <= 2)
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double exponent;
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double exponent; // exponent (1 = linear)
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// Cached values
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// Cached values (recomputed only when population size changes)
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unsigned cached_pSize;
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unsigned cached_pSize; // last seen population size
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unsigned cached_pSizeMinusOne;
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unsigned cached_pSizeMinusOne; // pSize - 1
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double cached_alpha;
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double cached_alpha; // linear scaling coefficient
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double cached_beta;
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double cached_beta; // base value coefficient
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double cached_gamma;
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double cached_gamma; // non-linear scaling coefficient
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};
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};
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#endif
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#endif
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