Version: SMASH-3.4
smash::Action Class Referenceabstract

#include <action.h>

Action is the base class for a generic process that takes a number of incoming particles and transforms them into any number of outgoing particles.

Currently such an action can be either a decay, a two-body collision, a wallcrossing or a thermalization. (see derived classes).

Definition at line 35 of file action.h.

Inheritance diagram for smash::Action:
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Classes

class  InvalidResonanceFormation
 Thrown for example when ScatterAction is called to perform with a wrong number of final-state particles or when the energy is too low to produce the resonance. More...
 
class  StochasticBelowEnergyThreshold
 Exception for a temporary bugfix for when multiparticle interactions do not have the necessary energy to create the final state. More...
 

Public Member Functions

 Action (const ParticleList &in_part, double time)
 Construct an action object with incoming particles and relative time. More...
 
 Action (const ParticleData &in_part, const ParticleData &out_part, double time, ProcessType type)
 Construct an action object with the incoming particles, relative time, and the already known outgoing particles and type of the process. More...
 
 Action (const ParticleList &in_part, const ParticleList &out_part, double absolute_execution_time, ProcessType type)
 Construct an action object with the incoming particles, absolute time, and the already known outgoing particles and type of the process. More...
 
 Action (const Action &)=delete
 Copying is disabled. Use pointers or create a new Action. More...
 
virtual ~Action ()
 Virtual Destructor. More...
 
bool operator< (const Action &rhs) const
 Determine whether one action takes place before another in time. More...
 
virtual double get_total_weight () const =0
 Return the total weight value, which is mainly used for the weight output entry. More...
 
virtual double get_partial_weight () const =0
 Return the specific weight for the chosen outgoing channel, which is mainly used for the partial weight output entry. More...
 
virtual ProcessType get_type () const
 Get the process type. More...
 
template<typename Branch >
void add_process (ProcessBranchPtr< Branch > &p, ProcessBranchList< Branch > &subprocesses, double &total_weight)
 Add a new subprocess. More...
 
template<typename Branch >
void add_processes (ProcessBranchList< Branch > pv, ProcessBranchList< Branch > &subprocesses, double &total_weight)
 Add several new subprocesses at once. More...
 
virtual void generate_final_state ()=0
 Generate the final state for this action. More...
 
virtual double perform (Particles *particles, uint32_t id_process)
 Actually perform the action, e.g. More...
 
bool is_valid (const Particles &particles) const
 Check whether the action still applies. More...
 
bool is_pauli_blocked (const std::vector< Particles > &ensembles, const PauliBlocker &p_bl) const
 Check if the action is Pauli-blocked. More...
 
const ParticleList & incoming_particles () const
 Get the list of particles that go into the action. More...
 
void update_incoming (const Particles &particles)
 Update the incoming particles that are stored in this action to the state they have in the global particle list. More...
 
const ParticleList & outgoing_particles () const
 Get the list of particles that resulted from the action. More...
 
double time_of_execution () const
 Get the time at which the action is supposed to be performed. More...
 
virtual double check_conservation (const uint32_t id_process) const
 Check various conservation laws. More...
 
double sqrt_s () const
 Determine the total energy in the center-of-mass frame [GeV]. More...
 
FourVector total_momentum_of_outgoing_particles () const
 Calculate the total kinetic momentum of the outgoing particles. More...
 
FourVector get_interaction_point () const
 Get the interaction point. More...
 
std::pair< FourVector, FourVectorget_potential_at_interaction_point () const
 Get the skyrme and asymmetry potential at the interaction point. More...
 
void set_stochastic_pos_idx ()
 Setter function that stores a random incoming particle index latter used to determine the interaction point. More...
 
void assign_unpolarized_spin_vector_to_outgoing_particles ()
 Assign an unpolarized spin vector to all outgoing particles. More...
 

Static Public Member Functions

static double lambda_tilde (double a, double b, double c)
 Little helper function that calculates the lambda function (sometimes written with a tilde to better distinguish it) that appears e.g. More...
 

Protected Member Functions

FourVector total_momentum () const
 Sum of 4-momenta of incoming particles. More...
 
template<typename Branch >
const Branch * choose_channel (const ProcessBranchList< Branch > &subprocesses, double total_weight)
 Decide for a particular final-state channel via Monte-Carlo and return it as a ProcessBranch. More...
 
virtual std::pair< double, double > sample_masses (double kinetic_energy_cm) const
 Sample final-state masses in general X->2 processes (thus also fixing the absolute c.o.m. More...
 
virtual void sample_angles (std::pair< double, double > masses, double kinetic_energy_cm)
 Sample final-state momenta in general X->2 processes (here: using an isotropical angular distribution). More...
 
virtual void sample_2body_phasespace ()
 Sample the full 2-body phase-space (masses, momenta, angles) in the center-of-mass frame for the final state particles. More...
 
virtual void sample_manybody_phasespace ()
 Sample the full n-body phase-space (masses, momenta, angles) in the center-of-mass frame for the final state particles. More...
 
void assign_formation_time_to_outgoing_particles ()
 Assign the formation time to the outgoing particles. More...
 
virtual void format_debug_output (std::ostream &out) const =0
 Writes information about this action to the out stream. More...
 

Protected Attributes

ParticleList incoming_particles_
 List with data of incoming particles. More...
 
ParticleList outgoing_particles_
 Initially this stores only the PDG codes of final-state particles. More...
 
const double time_of_execution_
 Time at which the action is supposed to be performed (absolute time in the lab frame in fm). More...
 
ProcessType process_type_
 type of process More...
 
double box_length_ = -1.0
 Box length: needed to determine coordinates of collision correctly in case of collision through the wall. More...
 
int stochastic_position_idx_ = -1
 This stores a randomly-chosen index to an incoming particle. More...
 

Private Member Functions

const ParticleTypetype_of_pout (const ParticleData &p_out) const
 Get the type of a given particle. More...
 
const ParticleTypetype_of_pout (const ParticleTypePtr &p_out) const
 Get the particle type for given pointer to a particle type. More...
 

Friends

std::ostream & operator<< (std::ostream &out, const Action &action)
 Dispatches formatting to the virtual Action::format_debug_output function. More...
 

Constructor & Destructor Documentation

◆ Action() [1/4]

smash::Action::Action ( const ParticleList &  in_part,
double  time 
)
inline

Construct an action object with incoming particles and relative time.

Parameters
[in]in_partlist of incoming particles
[in]timetime at which the action is supposed to take place (relative to the current time of the incoming particles)

Definition at line 44 of file action.h.

45  : incoming_particles_(in_part),
46  time_of_execution_(time + in_part[0].position().x0()) {}
const double time_of_execution_
Time at which the action is supposed to be performed (absolute time in the lab frame in fm).
Definition: action.h:369
ParticleList incoming_particles_
List with data of incoming particles.
Definition: action.h:355

◆ Action() [2/4]

smash::Action::Action ( const ParticleData in_part,
const ParticleData out_part,
double  time,
ProcessType  type 
)
inline

Construct an action object with the incoming particles, relative time, and the already known outgoing particles and type of the process.

Parameters
[in]in_partlist of incoming particles
[in]out_partlist of outgoing particles
[in]timetime at which the action is supposed to take place (relative to the current time of the incoming particles)
[in]typetype of the interaction

Definition at line 58 of file action.h.

60  : incoming_particles_({in_part}),
61  outgoing_particles_({out_part}),
62  time_of_execution_(time + in_part.position().x0()),
63  process_type_(type) {}
ParticleList outgoing_particles_
Initially this stores only the PDG codes of final-state particles.
Definition: action.h:363
ProcessType process_type_
type of process
Definition: action.h:372

◆ Action() [3/4]

smash::Action::Action ( const ParticleList &  in_part,
const ParticleList &  out_part,
double  absolute_execution_time,
ProcessType  type 
)
inline

Construct an action object with the incoming particles, absolute time, and the already known outgoing particles and type of the process.

Parameters
[in]in_partlist of incoming particles
[in]out_partlist of outgoing particles
[in]absolute_execution_timeabsolute time at which the action is supposed to take place
[in]typetype of the interaction

Definition at line 75 of file action.h.

77  : incoming_particles_(std::move(in_part)),
78  outgoing_particles_(std::move(out_part)),
79  time_of_execution_(absolute_execution_time),
80  process_type_(type) {}

◆ Action() [4/4]

smash::Action::Action ( const Action )
delete

Copying is disabled. Use pointers or create a new Action.

◆ ~Action()

smash::Action::~Action ( )
virtualdefault

Virtual Destructor.

Destructor.

The declaration of the destructor is necessary to make it virtual.

Member Function Documentation

◆ operator<()

bool smash::Action::operator< ( const Action rhs) const
inline

Determine whether one action takes place before another in time.

Returns
if the first argument action takes place before the other

Definition at line 96 of file action.h.

96  {
97  return time_of_execution_ < rhs.time_of_execution_;
98  }

◆ get_total_weight()

virtual double smash::Action::get_total_weight ( ) const
pure virtual

Return the total weight value, which is mainly used for the weight output entry.

It has different meanings depending of the type of action. It is the total cross section in case of a ScatterAction, the total decay width in case of a DecayAction and the shining weight in case of a DecayActionDilepton.

Prefer to use a more specific function. If there is no weight for the action type, 0 should be returned.

Returns
total cross section, decay width or shining weight

Implemented in smash::WallcrossingAction, smash::ThermalizationAction, smash::ScatterActionPhoton, smash::ScatterActionMulti, smash::ScatterAction, smash::FreeforallAction, smash::FluidizationAction, smash::DecayActionDilepton, smash::DecayAction, smash::BremsstrahlungActionPhoton, and smash::BremsstrahlungActionDilepton.

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◆ get_partial_weight()

virtual double smash::Action::get_partial_weight ( ) const
pure virtual

Return the specific weight for the chosen outgoing channel, which is mainly used for the partial weight output entry.

For scatterings it will be the partial cross section, for decays (including dilepton decays) the partial decay width.

If there is no weight for the action type, 0 should be returned.

Returns
specific weight for the chosen output channel.

Implemented in smash::WallcrossingAction, smash::ThermalizationAction, smash::ScatterActionMulti, smash::ScatterAction, smash::FreeforallAction, smash::FluidizationAction, smash::DecayAction, and smash::BremsstrahlungActionDilepton.

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◆ get_type()

virtual ProcessType smash::Action::get_type ( ) const
inlinevirtual

Get the process type.

Returns
type of the process

Definition at line 131 of file action.h.

131 { return process_type_; }
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◆ add_process()

template<typename Branch >
void smash::Action::add_process ( ProcessBranchPtr< Branch > &  p,
ProcessBranchList< Branch > &  subprocesses,
double &  total_weight 
)
inline

Add a new subprocess.

Parameters
[in]pprocess to be added
[out]subprocessesprocesses, where p is added to
[out]total_weightsummed weights of all the subprocesses

Definition at line 141 of file action.h.

143  {
144  if (p->weight() > 0) {
145  total_weight += p->weight();
146  subprocesses.emplace_back(std::move(p));
147  }
148  }
constexpr int p
Proton.

◆ add_processes()

template<typename Branch >
void smash::Action::add_processes ( ProcessBranchList< Branch >  pv,
ProcessBranchList< Branch > &  subprocesses,
double &  total_weight 
)
inline

Add several new subprocesses at once.

Parameters
[in]pvprocesses list to be added
[out]subprocessesprocesses, where pv are added to
[out]total_weightsummed weights of all the subprocesses

Definition at line 158 of file action.h.

160  {
161  subprocesses.reserve(subprocesses.size() + pv.size());
162  for (auto &proc : pv) {
163  if (proc->weight() > 0) {
164  total_weight += proc->weight();
165  subprocesses.emplace_back(std::move(proc));
166  }
167  }
168  }

◆ generate_final_state()

virtual void smash::Action::generate_final_state ( )
pure virtual

Generate the final state for this action.

This function selects a subprocess by Monte-Carlo decision and sets up the final-state particles in phase space.

Implemented in smash::WallcrossingAction, smash::ThermalizationAction, smash::ScatterActionPhoton, smash::ScatterActionMulti, smash::ScatterAction, smash::FreeforallAction, smash::FluidizationAction, smash::DecayAction, smash::BremsstrahlungActionPhoton, and smash::BremsstrahlungActionDilepton.

◆ perform()

double smash::Action::perform ( Particles particles,
uint32_t  id_process 
)
virtual

Actually perform the action, e.g.

carry out a decay or scattering by updating the particle list.

This function removes the initial-state particles from the particle list and then inserts the final-state particles. It does not do any sanity checks, but assumes that is_valid has been called to determine if the action is still valid.

Parameters
[in]id_processunique id of the performed process
[out]particlesparticle list that is updated
Returns
the amount of energy violated in Pythia processes (if any)

Note that you are required to increase id_process before the next call, such that you get unique numbers.

Definition at line 131 of file action.cc.

131  {
132  assert(id_process != 0);
133  double energy_violation = 0.;
134  for (ParticleData &p : outgoing_particles_) {
135  /* Store the history info. Wall crossing and fluidization don't change the
136  * last collision a particle went through. */
137  if ((process_type_ != ProcessType::Wall) &&
139  p.set_history(p.get_history().collisions_per_particle + 1, id_process,
141  }
142  }
143 
144  /* For elastic collisions and box wall crossings it is not necessary to remove
145  * particles from the list and insert new ones, it is enough to update their
146  * properties. */
147  const bool replace = (process_type_ != ProcessType::Elastic) &&
150  particles->update(incoming_particles_, outgoing_particles_, replace);
151 
152  logg[LAction].debug("Particle map now has ", particles->size(), " elements.");
153 
154  /* Check the conservation laws if the modifications of the total kinetic
155  * energy of the outgoing particles by the mean field potentials are not
156  * taken into account. */
157  if (UB_lat_pointer == nullptr && UI3_lat_pointer == nullptr) {
158  energy_violation = check_conservation(id_process);
159  }
160  return energy_violation;
161 }
virtual double check_conservation(const uint32_t id_process) const
Check various conservation laws.
Definition: action.cc:345
std::array< einhard::Logger<>, std::tuple_size< LogArea::AreaTuple >::value > & logg
An array that stores all pre-configured Logger objects.
Definition: logging.h:245
static constexpr int LAction
Definition: action.h:25
@ FluidizationNoRemoval
See here for a short description.
@ Wall
See here for a short description.
@ Elastic
See here for a short description.
RectangularLattice< FourVector > * UB_lat_pointer
Pointer to the skyrme potential on the lattice.
RectangularLattice< FourVector > * UI3_lat_pointer
Pointer to the symmmetry potential on the lattice.
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◆ is_valid()

bool smash::Action::is_valid ( const Particles particles) const

Check whether the action still applies.

It can happen that a different action removed the incoming_particles from the set of existing particles in the experiment, or that the particle has scattered elastically in the meantime. In this case the Action doesn't apply anymore and should be discarded.

Parameters
[in]particlescurrent particle list
Returns
true, if action still applies; false otherwise

Definition at line 32 of file action.cc.

32  {
33  return std::all_of(
35  [&particles](const ParticleData &p) { return particles.is_valid(p); });
36 }
bool all_of(Container &&c, UnaryPredicate &&p)
Convenience wrapper for std::all_of that operates on a complete container.
Definition: algorithms.h:80
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◆ is_pauli_blocked()

bool smash::Action::is_pauli_blocked ( const std::vector< Particles > &  ensembles,
const PauliBlocker p_bl 
) const

Check if the action is Pauli-blocked.

If there are baryons in the final state then blocking probability is \( 1 - \Pi (1-f_i) \), where the product is taken by all fermions in the final state and \( f_i \) denotes the phase-space density at the position of i-th final-state fermion.

Parameters
[in]ensemblescurrent particle list, all ensembles
[in]p_blPauliBlocker that stores the configurations concerning Pauli-blocking.
Returns
true, if the action is Pauli-blocked, false otherwise

Definition at line 38 of file action.cc.

39  {
40  // Wall-crossing actions should never be blocked: currently
41  // if the action is blocked, a particle continues to propagate in a straight
42  // line. This would simply bring it out of the box.
44  return false;
45  }
46  for (const auto &p : outgoing_particles_) {
47  if (p.is_baryon()) {
48  const auto f =
49  p_bl.phasespace_dens(p.position().threevec(), p.momentum().threevec(),
50  ensembles, p.pdgcode(), incoming_particles_);
51  if (f > random::uniform(0., 1.)) {
52  logg[LPauliBlocking].debug("Action ", *this,
53  " is pauli-blocked with f = ", f);
54  return true;
55  }
56  }
57  }
58  return false;
59 }
T uniform(T min, T max)
Definition: random.h:91
static constexpr int LPauliBlocking
Definition: action.cc:30
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◆ incoming_particles()

const ParticleList & smash::Action::incoming_particles ( ) const

Get the list of particles that go into the action.

Returns
a list of incoming particles

Definition at line 61 of file action.cc.

61  {
62  return incoming_particles_;
63 }
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◆ update_incoming()

void smash::Action::update_incoming ( const Particles particles)

Update the incoming particles that are stored in this action to the state they have in the global particle list.

Parameters
[in]particlescurrent particle list

Definition at line 65 of file action.cc.

65  {
66  for (auto &p : incoming_particles_) {
67  p = particles.lookup(p);
68  }
69 }
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◆ outgoing_particles()

const ParticleList& smash::Action::outgoing_particles ( ) const
inline

Get the list of particles that resulted from the action.

Returns
list of outgoing particles

Definition at line 247 of file action.h.

247 { return outgoing_particles_; }
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◆ time_of_execution()

double smash::Action::time_of_execution ( ) const
inline

Get the time at which the action is supposed to be performed.

Returns
absolute time in the calculation frame in fm

Definition at line 254 of file action.h.

254 { return time_of_execution_; }
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◆ check_conservation()

double smash::Action::check_conservation ( const uint32_t  id_process) const
virtual

Check various conservation laws.

Parameters
[in]id_processprocess id only used for debugging output
Returns
the amount of energy conservation violated by Pythia processes (if any)

Reimplemented in smash::FluidizationAction.

Definition at line 345 of file action.cc.

345  {
346  QuantumNumbers before(incoming_particles_);
347  QuantumNumbers after(outgoing_particles_);
348  double energy_violation = 0.;
349  if (before != after) {
350  std::stringstream particle_names;
351  for (const auto &p : incoming_particles_) {
352  particle_names << p.type().name();
353  }
354  particle_names << " vs. ";
355  for (const auto &p : outgoing_particles_) {
356  particle_names << p.type().name();
357  }
358  particle_names << "\n";
359  std::string err_msg = before.report_deviations(after);
360  /* Pythia does not conserve energy and momentum at high energy, so we just
361  * print the warning and continue. */
363  logg[LAction].warn() << "Conservation law violations due to Pythia\n"
364  << particle_names.str() << err_msg;
365  energy_violation = after.momentum()[0] - before.momentum()[0];
366  return energy_violation;
367  }
368  /* We allow decay of particles stable under the strong interaction to decay
369  * at the end, so just warn about such a "weak" process violating
370  * conservation laws */
372  incoming_particles_[0].type().is_stable()) {
373  logg[LAction].warn()
374  << "Conservation law violations of strong interaction in weak or "
375  "e.m. decay\n"
376  << particle_names.str() << err_msg;
377  return energy_violation;
378  }
379  /* If particles are added or removed, it is not surprising that conservation
380  * laws are potentially violated. Do not warn the user but print some
381  * information for debug */
383  logg[LAction].debug()
384  << "Conservation law violation, but we want it (Freeforall Action).\n"
385  << particle_names.str() << err_msg;
386  return energy_violation;
387  }
388  logg[LAction].error() << "Conservation law violations detected\n"
389  << particle_names.str() << err_msg;
390  if (id_process == ID_PROCESS_PHOTON) {
391  throw std::runtime_error("Conservation laws violated in photon process");
392  } else {
393  throw std::runtime_error("Conservation laws violated in process " +
394  std::to_string(id_process));
395  }
396  }
397  return energy_violation;
398 }
constexpr std::uint32_t ID_PROCESS_PHOTON
Process ID for any photon process.
Definition: constants.h:129
@ Freeforall
See here for a short description.
@ Decay
See here for a short description.
std::string to_string(ThermodynamicQuantity quantity)
Convert a ThermodynamicQuantity enum value to its corresponding string.
Definition: stringify.cc:26
bool is_string_process(ProcessType p)
Check if a given process type is a string excitation.
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◆ sqrt_s()

double smash::Action::sqrt_s ( ) const
inline

Determine the total energy in the center-of-mass frame [GeV].

Returns
\( \sqrt{s}\) of incoming particles

Definition at line 271 of file action.h.

271 { return total_momentum().abs(); }
FourVector total_momentum() const
Sum of 4-momenta of incoming particles.
Definition: action.h:389
double abs() const
calculate the lorentz invariant absolute value
Definition: fourvector.h:464
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◆ total_momentum_of_outgoing_particles()

FourVector smash::Action::total_momentum_of_outgoing_particles ( ) const

Calculate the total kinetic momentum of the outgoing particles.

Use this to determine the momemtum and boost of the outgoing particles by calcluating the total momentum of the incoming particles and correcting it for the effect of potentials. This function is used when the species of the outgoing particles are already determined.

Returns
total kinetic momentum of the outgoing particles [GeV]

Definition at line 163 of file action.cc.

163  {
165  /* scale_B returns the difference of the total force scales of the skyrme
166  * potential between the initial and final states. */
167  double scale_B = 0.0;
168  /* scale_I3 returns the difference of the total force scales of the symmetry
169  * potential between the initial and final states. */
170  double scale_I3 = 0.0;
171  for (const auto &p_in : incoming_particles_) {
172  // Get the force scale of the incoming particle.
173  const auto scale =
174  ((pot_pointer != nullptr) ? pot_pointer->force_scale(p_in.type())
175  : std::make_pair(0.0, 0));
176  scale_B += scale.first;
177  scale_I3 += scale.second * p_in.type().isospin3_rel();
178  }
179  for (const auto &p_out : outgoing_particles_) {
180  // Get the force scale of the outgoing particle.
181  const auto scale = ((pot_pointer != nullptr)
183  : std::make_pair(0.0, 0));
184  scale_B -= scale.first;
185  scale_I3 -= scale.second * type_of_pout(p_out).isospin3_rel();
186  }
187  /* Rescale to get the potential difference between the
188  * initial and final state, and thus get the total momentum
189  * of the outgoing particles*/
190  return total_momentum() + potentials.first * scale_B +
191  potentials.second * scale_I3;
192 }
std::pair< FourVector, FourVector > get_potential_at_interaction_point() const
Get the skyrme and asymmetry potential at the interaction point.
Definition: action.cc:115
const ParticleType & type_of_pout(const ParticleData &p_out) const
Get the type of a given particle.
Definition: action.h:508
double isospin3_rel() const
Definition: particletype.h:182
static std::pair< double, int > force_scale(const ParticleType &data)
Evaluates the scaling factor of the forces acting on the particles.
Definition: potentials.cc:152
constexpr Section potentials
Section for the potentials information.
Definition: input_keys.h:228
Potentials * pot_pointer
Pointer to a Potential class.
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◆ get_interaction_point()

FourVector smash::Action::get_interaction_point ( ) const

Get the interaction point.

Returns
four vector of interaction point

Definition at line 71 of file action.cc.

71  {
72  // Estimate for the interaction point in the calculational frame
73  ThreeVector interaction_point = ThreeVector(0., 0., 0.);
74  std::vector<ThreeVector> propagated_positions;
75  for (const auto &part : incoming_particles_) {
76  ThreeVector propagated_position =
77  part.position().threevec() +
78  part.velocity() * (time_of_execution_ - part.position().x0());
79  propagated_positions.push_back(propagated_position);
80  interaction_point += propagated_position;
81  }
82  interaction_point /= incoming_particles_.size();
83  /*
84  * In case of periodic boundaries interaction point is not necessarily
85  * (x1 + x2)/2. Consider only one dimension, e.g. x, the rest are analogous.
86  * Instead of x, there can be x + k * L, where k is any integer and L
87  * is period.Interaction point is either. Therefore, interaction point is
88  * (x1 + k * L + x2 + m * L) / 2 = (x1 + x2) / 2 + n * L / 2. We need
89  * this interaction point to be with [0, L], so n can be {-1, 0, 1}.
90  * Which n to choose? Our guiding principle is that n should be such that
91  * interaction point is closest to interacting particles.
92  */
93  if (box_length_ > 0 && stochastic_position_idx_ < 0) {
94  assert(incoming_particles_.size() == 2);
95  const ThreeVector r = propagated_positions[0] - propagated_positions[1];
96  for (int i = 0; i < 3; i++) {
97  const double d = std::abs(r[i]);
98  if (d > 0.5 * box_length_) {
99  if (interaction_point[i] >= 0.5 * box_length_) {
100  interaction_point[i] -= 0.5 * box_length_;
101  } else {
102  interaction_point[i] += 0.5 * box_length_;
103  }
104  }
105  }
106  }
107  /* In case of scatterings via the stochastic criterion, use postion of random
108  * incoming particle to prevent density hotspots in grid cell centers. */
109  if (stochastic_position_idx_ >= 0) {
111  }
112  return FourVector(time_of_execution_, interaction_point);
113 }
int stochastic_position_idx_
This stores a randomly-chosen index to an incoming particle.
Definition: action.h:386
double box_length_
Box length: needed to determine coordinates of collision correctly in case of collision through the w...
Definition: action.h:379
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◆ get_potential_at_interaction_point()

std::pair< FourVector, FourVector > smash::Action::get_potential_at_interaction_point ( ) const

Get the skyrme and asymmetry potential at the interaction point.

Returns
skyrme and asymmetry potential [GeV]

Definition at line 115 of file action.cc.

116  {
117  const ThreeVector r = get_interaction_point().threevec();
118  FourVector UB = FourVector();
119  FourVector UI3 = FourVector();
120  /* Check:
121  * Lattice is turned on. */
122  if (UB_lat_pointer != nullptr) {
123  UB_lat_pointer->value_at(r, UB);
124  }
125  if (UI3_lat_pointer != nullptr) {
126  UI3_lat_pointer->value_at(r, UI3);
127  }
128  return std::make_pair(UB, UI3);
129 }
FourVector get_interaction_point() const
Get the interaction point.
Definition: action.cc:71
ThreeVector threevec() const
Definition: fourvector.h:329
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◆ set_stochastic_pos_idx()

void smash::Action::set_stochastic_pos_idx ( )
inline

Setter function that stores a random incoming particle index latter used to determine the interaction point.

Definition at line 303 of file action.h.

303  {
304  const int max_inc_idx = incoming_particles_.size() - 1;
306  }
T uniform_int(T min, T max)
Definition: random.h:106
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◆ lambda_tilde()

static double smash::Action::lambda_tilde ( double  a,
double  b,
double  c 
)
inlinestatic

Little helper function that calculates the lambda function (sometimes written with a tilde to better distinguish it) that appears e.g.

in the relative velocity or 3-to-2 probability calculation, where it is used with a=s, b=m1^2 and c=m2^2. Defintion found e.g. in Seifert:2017oyb [57], eq. (5).

Definition at line 315 of file action.h.

315  {
316  const double res = (a - b - c) * (a - b - c) - 4. * b * c;
317  if (res < 0.0) {
318  // floating point precision problem
319  return 0.0;
320  }
321  return res;
322  }
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◆ assign_unpolarized_spin_vector_to_outgoing_particles()

void smash::Action::assign_unpolarized_spin_vector_to_outgoing_particles ( )

Assign an unpolarized spin vector to all outgoing particles.

Attention
Make sure to assign the spin vectors after the boosted 4-momentum of the outgoing particles has been set, as the function includes a boost to the lab frame.

Definition at line 339 of file action.cc.

339  {
340  for (ParticleData &p : outgoing_particles_) {
341  p.set_unpolarized_spin_vector();
342  }
343 }
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◆ total_momentum()

FourVector smash::Action::total_momentum ( ) const
inlineprotected

Sum of 4-momenta of incoming particles.

Definition at line 389 of file action.h.

389  {
390  FourVector mom(0.0, 0.0, 0.0, 0.0);
391  for (const auto &p : incoming_particles_) {
392  mom += p.momentum();
393  }
394  return mom;
395  }
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◆ choose_channel()

template<typename Branch >
const Branch* smash::Action::choose_channel ( const ProcessBranchList< Branch > &  subprocesses,
double  total_weight 
)
inlineprotected

Decide for a particular final-state channel via Monte-Carlo and return it as a ProcessBranch.

Template Parameters
BranchType of processbranch
Parameters
[in]subprocesseslist of possible processes
[in]total_weightsummed weight of all processes
Returns
ProcessBranch that is sampled

Definition at line 407 of file action.h.

408  {
409  double random_weight = random::uniform(0., total_weight);
410  double weight_sum = 0.;
411  /* Loop through all subprocesses and select one by Monte Carlo, based on
412  * their weights. */
413  for (const auto &proc : subprocesses) {
414  weight_sum += proc->weight();
415  if (random_weight <= weight_sum) {
416  /* Return the full process information. */
417  return proc.get();
418  }
419  }
420  /* Should never get here. */
422  "Problem in choose_channel: ", subprocesses.size(), " ",
423  weight_sum, " ", total_weight, " ", random_weight, "\n",
424  *this);
425  std::abort();
426  }
#define SMASH_SOURCE_LOCATION
Hackery that is required to output the location in the source code where the log statement occurs.
Definition: logging.h:153
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◆ sample_masses()

std::pair< double, double > smash::Action::sample_masses ( double  kinetic_energy_cm) const
protectedvirtual

Sample final-state masses in general X->2 processes (thus also fixing the absolute c.o.m.

momentum).

Parameters
[in]kinetic_energy_cmtotal kinetic energy of the outgoing particles in their center of mass frame [GeV]
Exceptions
InvalidResonanceFormation
Returns
masses of final state particles

Reimplemented in smash::DecayAction.

Definition at line 256 of file action.cc.

257  {
258  const ParticleType &t_a = outgoing_particles_[0].type();
259  const ParticleType &t_b = outgoing_particles_[1].type();
260  // start with pole masses
261  std::pair<double, double> masses = {t_a.mass(), t_b.mass()};
262 
263  if (kinetic_energy_cm < t_a.min_mass_kinematic() + t_b.min_mass_kinematic()) {
264  const std::string reaction = incoming_particles_[0].type().name() +
265  incoming_particles_[1].type().name() + "→" +
266  t_a.name() + t_b.name();
267  throw InvalidResonanceFormation(
268  reaction + ": not enough energy, " + std::to_string(kinetic_energy_cm) +
269  " < " + std::to_string(t_a.min_mass_kinematic()) + " + " +
270  std::to_string(t_b.min_mass_kinematic()));
271  }
272 
273  /* If one of the particles is a resonance, sample its mass. */
274  if (!t_a.is_stable() && t_b.is_stable()) {
275  masses.first = t_a.sample_resonance_mass(t_b.mass(), kinetic_energy_cm);
276  } else if (!t_b.is_stable() && t_a.is_stable()) {
277  masses.second = t_b.sample_resonance_mass(t_a.mass(), kinetic_energy_cm);
278  } else if (!t_a.is_stable() && !t_b.is_stable()) {
279  // two resonances in final state
280  masses = sample_two_resonance_masses(t_a, t_b, kinetic_energy_cm);
281  }
282  return masses;
283 }
std::pair< double, double > sample_two_resonance_masses(const ParticleType &t1, const ParticleType &t2, const double cms_energy, int L=0)
Resonance mass sampling for 2-particle final state with two resonances.
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◆ sample_angles()

void smash::Action::sample_angles ( std::pair< double, double >  masses,
double  kinetic_energy_cm 
)
protectedvirtual

Sample final-state momenta in general X->2 processes (here: using an isotropical angular distribution).

Parameters
[in]kinetic_energy_cmtotal kinetic energy of the outgoing particles in their center of mass frame [GeV]
[in]massesmasses of each of the final state particles

Reimplemented in smash::ScatterAction.

Definition at line 285 of file action.cc.

286  {
287  ParticleData *p_a = &outgoing_particles_[0];
288  ParticleData *p_b = &outgoing_particles_[1];
289 
290  const double pcm = pCM(kinetic_energy_cm, masses.first, masses.second);
291  if (!(pcm > 0.0)) {
292  logg[LAction].warn("Particle: ", p_a->pdgcode(), " radial momentum: ", pcm);
293  logg[LAction].warn("Ektot: ", kinetic_energy_cm, " m_a: ", masses.first,
294  " m_b: ", masses.second);
295  }
296  /* Here we assume an isotropic angular distribution. */
297  Angles phitheta;
298  phitheta.distribute_isotropically();
299 
300  p_a->set_4momentum(masses.first, phitheta.threevec() * pcm);
301  p_b->set_4momentum(masses.second, -phitheta.threevec() * pcm);
302  /* Debug message is printed before boost, so that p_a and p_b are
303  * the momenta in the center of mass frame and thus opposite to
304  * each other.*/
305  logg[LAction].debug("p_a: ", *p_a, "\np_b: ", *p_b);
306 }
T pCM(const T sqrts, const T mass_a, const T mass_b) noexcept
Definition: kinematics.h:79
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◆ sample_2body_phasespace()

void smash::Action::sample_2body_phasespace ( )
protectedvirtual

Sample the full 2-body phase-space (masses, momenta, angles) in the center-of-mass frame for the final state particles.

Reimplemented in smash::DecayAction.

Definition at line 308 of file action.cc.

308  {
309  /* This function only operates on 2-particle final states. */
310  assert(outgoing_particles_.size() == 2);
311  const FourVector p_tot = total_momentum_of_outgoing_particles();
312  const double cm_kin_energy = p_tot.abs();
313  // first sample the masses
314  const std::pair<double, double> masses = sample_masses(cm_kin_energy);
315  // after the masses are fixed (and thus also pcm), sample the angles
316  sample_angles(masses, cm_kin_energy);
317 }
FourVector total_momentum_of_outgoing_particles() const
Calculate the total kinetic momentum of the outgoing particles.
Definition: action.cc:163
virtual void sample_angles(std::pair< double, double > masses, double kinetic_energy_cm)
Sample final-state momenta in general X->2 processes (here: using an isotropical angular distribution...
Definition: action.cc:285
virtual std::pair< double, double > sample_masses(double kinetic_energy_cm) const
Sample final-state masses in general X->2 processes (thus also fixing the absolute c....
Definition: action.cc:256
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◆ sample_manybody_phasespace()

void smash::Action::sample_manybody_phasespace ( )
protectedvirtual

Sample the full n-body phase-space (masses, momenta, angles) in the center-of-mass frame for the final state particles.

Exceptions
std::invalid_argumentif one outgoing particle is a resonance

Reimplemented in smash::DecayActionDilepton.

Definition at line 319 of file action.cc.

319  {
320  const size_t n = outgoing_particles_.size();
321  if (n < 3) {
322  throw std::invalid_argument(
323  "sample_manybody_phasespace: number of outgoing particles should be 3 "
324  "or more");
325  }
326 
327  ParticleTypePtrList types(n);
328  for (size_t i = 0; i < n; i++) {
329  types[i] = &outgoing_particles_[i].type();
330  }
331  std::vector<FourVector> p(n);
332 
334  for (size_t i = 0; i < n; i++) {
335  outgoing_particles_[i].set_4momentum(p[i]);
336  }
337 }
double sqrt_s() const
Determine the total energy in the center-of-mass frame [GeV].
Definition: action.h:271
void sample_manybody_phasespace_impl(double sqrts, const ParticleTypePtrList &types, std::vector< FourVector > &sampled_momenta)
Implementation of the full n-body phase-space sampling (masses, momenta, angles) in the center-of-mas...
Definition: action.cc:410
constexpr int n
Neutron.
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◆ assign_formation_time_to_outgoing_particles()

void smash::Action::assign_formation_time_to_outgoing_particles ( )
protected

Assign the formation time to the outgoing particles.

The formation time is set to the largest formation time of the incoming particles, if it is larger than the execution time. The newly produced particles are supposed to continue forming exactly like the latest forming ingoing particle. Therefore the details on the formation are adopted. The initial cross section scaling factor of the incoming particles is considered to also be the scaling factor of the newly produced outgoing particles. If the formation time is smaller than the exectution time, the execution time is taken to be the formation time.

Note: Make sure to assign the formation times before boosting the outgoing particles to the computational frame.

Definition at line 194 of file action.cc.

194  {
195  /* Find incoming particle with largest formation time i.e. the last formed
196  * incoming particle. If all particles form at the same time, take the one
197  * with the lowest cross section scaling factor */
198  ParticleList::iterator last_formed_in_part;
199  bool all_incoming_same_formation_time =
201  [&](const ParticleData &data_comp) {
202  return std::abs(incoming_particles_[0].formation_time() -
203  data_comp.formation_time()) < really_small;
204  });
205  if (all_incoming_same_formation_time) {
206  last_formed_in_part =
207  std::min_element(incoming_particles_.begin(), incoming_particles_.end(),
208  [](const ParticleData &a, const ParticleData &b) {
209  return a.initial_xsec_scaling_factor() <
210  b.initial_xsec_scaling_factor();
211  });
212  } else {
213  last_formed_in_part =
214  std::max_element(incoming_particles_.begin(), incoming_particles_.end(),
215  [](const ParticleData &a, const ParticleData &b) {
216  return a.formation_time() < b.formation_time();
217  });
218  }
219 
220  const double form_time_begin = last_formed_in_part->begin_formation_time();
221  const double sc = last_formed_in_part->initial_xsec_scaling_factor();
222 
223  if (last_formed_in_part->formation_time() > time_of_execution_) {
224  for (ParticleData &new_particle : outgoing_particles_) {
225  if (new_particle.initial_xsec_scaling_factor() < 1.0) {
226  /* The new cross section scaling factor will be the product of the
227  * cross section scaling factor of the ingoing particles and of the
228  * outgoing ones (since the outgoing ones are also string fragments
229  * and thus take time to form). */
230  double sc_out = new_particle.initial_xsec_scaling_factor();
231  new_particle.set_cross_section_scaling_factor(sc * sc_out);
232  if (last_formed_in_part->formation_time() >
233  new_particle.formation_time()) {
234  /* If the unformed incoming particles' formation time is larger than
235  * the current outgoing particle's formation time, then the latter
236  * is overwritten by the former*/
237  new_particle.set_slow_formation_times(
238  time_of_execution_, last_formed_in_part->formation_time());
239  }
240  } else {
241  // not a string product
242  new_particle.set_slow_formation_times(
243  form_time_begin, last_formed_in_part->formation_time());
244  new_particle.set_cross_section_scaling_factor(sc);
245  }
246  }
247  } else {
248  for (ParticleData &new_particle : outgoing_particles_) {
249  if (new_particle.initial_xsec_scaling_factor() == 1.0) {
250  new_particle.set_formation_time(time_of_execution_);
251  }
252  }
253  }
254 }
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◆ type_of_pout() [1/2]

const ParticleType& smash::Action::type_of_pout ( const ParticleData p_out) const
inlineprivate

Get the type of a given particle.

Parameters
[in]p_outparticle of which the type will be returned
Returns
type of given particle

Definition at line 508 of file action.h.

508  {
509  return p_out.type();
510  }
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◆ type_of_pout() [2/2]

const ParticleType& smash::Action::type_of_pout ( const ParticleTypePtr p_out) const
inlineprivate

Get the particle type for given pointer to a particle type.

Helper function for total_momentum_of_outgoing_particles

Parameters
[in]p_outpointer to a particle type
Returns
particle type

Definition at line 519 of file action.h.

519  {
520  return *p_out;
521  }

Member Data Documentation

◆ incoming_particles_

ParticleList smash::Action::incoming_particles_
protected

List with data of incoming particles.

Definition at line 355 of file action.h.

◆ outgoing_particles_

ParticleList smash::Action::outgoing_particles_
protected

Initially this stores only the PDG codes of final-state particles.

After perform was called it contains the complete particle data of the outgoing particles.

Definition at line 363 of file action.h.

◆ time_of_execution_

const double smash::Action::time_of_execution_
protected

Time at which the action is supposed to be performed (absolute time in the lab frame in fm).

Definition at line 369 of file action.h.

◆ process_type_

ProcessType smash::Action::process_type_
protected

type of process

Definition at line 372 of file action.h.

◆ box_length_

double smash::Action::box_length_ = -1.0
protected

Box length: needed to determine coordinates of collision correctly in case of collision through the wall.

Ignored if negative.

Definition at line 379 of file action.h.

◆ stochastic_position_idx_

int smash::Action::stochastic_position_idx_ = -1
protected

This stores a randomly-chosen index to an incoming particle.

If non-negative, the the interaction point equals the postion of the chosen particle (index). This is done for the stochastic criterion.

Definition at line 386 of file action.h.


The documentation for this class was generated from the following files: