600 lines
13 KiB
C++
600 lines
13 KiB
C++
#include "ledger.h"
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#include <fstream>
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#include <unistd.h>
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namespace ledger {
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book * main_ledger;
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extern int linenum;
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commodity::~commodity()
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{
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if (price)
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delete price;
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}
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const std::string transaction::acct_as_str() const
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{
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char * begin = NULL;
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char * end = NULL;
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if (is_virtual) {
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if (must_balance) {
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begin = "[";
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end = "]";
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} else {
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begin = "(";
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end = ")";
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}
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}
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if (begin)
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return std::string(begin) + acct->as_str() + end;
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else
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return acct->as_str();
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}
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void transaction::print(std::ostream& out, bool display_quantity,
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bool display_price) const
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{
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out.width(30);
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out << std::left << acct_as_str();
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if (cost && display_quantity) {
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out << " ";
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out.width(10);
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std::string value = cost->as_str(true);
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if (! display_price) {
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int index = value.find('@');
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value = std::string(value, index - 1);
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}
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out << std::right << value;
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}
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if (! note.empty())
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out << " ; " << note;
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out << std::endl;
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}
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void entry::print(std::ostream& out, bool shortcut) const
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{
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char buf[32];
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std::strftime(buf, 31, "%Y.%m.%d ", std::localtime(&date));
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out << buf;
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if (cleared)
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out << "* ";
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if (! code.empty())
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out << '(' << code << ") ";
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if (! desc.empty())
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out << " " << desc;
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out << std::endl;
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// jww (2003-10-11): Unspecified virtual transactions should not
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// factor into the size computation.
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commodity * comm = NULL;
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int size = 0;
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for (std::list<transaction *>::const_iterator x = xacts.begin();
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x != xacts.end();
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x++) {
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if ((*x)->is_virtual && ! (*x)->specified)
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continue;
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if (! comm) {
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comm = (*x)->cost->commdty();
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}
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else if (comm != (*x)->cost->commdty()) {
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shortcut = false;
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break;
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}
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size++;
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}
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if (shortcut && size != 2)
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shortcut = false;
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for (std::list<transaction *>::const_iterator x = xacts.begin();
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x != xacts.end();
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x++) {
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if ((*x)->is_virtual && ! (*x)->specified)
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continue;
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out << " ";
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// jww (2003-10-03): If we are shortcutting, don't print the
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// "per-unit price" of a commodity, if it is not necessary.
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(*x)->print(out, ! shortcut || x == xacts.begin());
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}
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out << std::endl;
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}
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bool entry::validate(bool show_unaccounted) const
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{
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totals balance;
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for (std::list<transaction *>::const_iterator x = xacts.begin();
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x != xacts.end();
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x++)
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if ((*x)->cost && (*x)->must_balance) {
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amount * value = (*x)->cost->value();
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balance.credit(value);
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delete value;
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}
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if (show_unaccounted && ! balance.is_zero()) {
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std::cerr << "Unaccounted-for balances are:" << std::endl;
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balance.print(std::cerr, 20);
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std::cerr << std::endl << std::endl;
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}
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return balance.is_zero(); // must balance to 0.0
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}
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bool entry::finalize(bool do_compute)
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{
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// Scan through and compute the total balance for the entry. This
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// is used for auto-calculating the value of entries with no cost,
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// and the per-unit price of unpriced commodities.
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totals balance;
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for (std::list<transaction *>::iterator x = xacts.begin();
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x != xacts.end();
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x++)
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if ((*x)->cost && ! (*x)->is_virtual) {
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amount * value = (*x)->cost->value();
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balance.credit(value);
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delete value;
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}
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// If one transaction is of a different commodity than the others,
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// and it has no per-unit price, determine its price by dividing
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// the unit count into the value of the balance.
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//
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// NOTE: We don't do this for prefix-style or joined-symbol
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// commodities. Also, do it for the last eligible commodity first,
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// if it meets the criteria.
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if (! balance.amounts.empty() && balance.amounts.size() == 2) {
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for (std::list<transaction *>::iterator x = xacts.begin();
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x != xacts.end();
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x++) {
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if ((*x)->is_virtual)
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continue;
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if (! (*x)->cost->has_price() &&
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! (*x)->cost->commdty()->prefix &&
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(*x)->cost->commdty()->separate) {
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for (totals::iterator i = balance.amounts.begin();
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i != balance.amounts.end();
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i++) {
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if ((*i).second->commdty() != (*x)->cost->commdty()) {
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(*x)->cost->set_value((*i).second);
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break;
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}
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}
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break;
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}
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}
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}
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// Walk through each of the transactions, fixing up any that we
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// can, and performing any on-the-fly calculations.
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bool empty_allowed = true;
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for (std::list<transaction *>::iterator x = xacts.begin();
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x != xacts.end();
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x++) {
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if ((*x)->is_virtual || (*x)->cost)
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continue;
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if (! empty_allowed || balance.amounts.empty() ||
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balance.amounts.size() != 1) {
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std::cerr << "Error, line " << linenum
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<< ": Transaction entry is lacking an amount."
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<< std::endl;
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return false;
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}
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empty_allowed = false;
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// If one transaction gives no value at all -- and all the
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// rest are of the same commodity -- then its value is the
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// inverse of the computed value of the others.
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totals::iterator i = balance.amounts.begin();
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(*x)->cost = (*i).second->value();
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(*x)->cost->negate();
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if (do_compute)
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(*x)->acct->balance.credit((*x)->cost);
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}
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// If virtual accounts are being supported, walk through the
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// transactions and create new virtual transactions for all that
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// apply.
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for (book::virtual_map_iterator m = ledger->virtual_mapping.begin();
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m != ledger->virtual_mapping.end();
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m++) {
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std::list<transaction *> new_xacts;
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for (std::list<transaction *>::iterator x = xacts.begin();
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x != xacts.end();
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x++) {
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if ((*x)->is_virtual ||
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! ledger::matches(*((*m).first), (*x)->acct->as_str()))
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continue;
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for (std::list<transaction *>::iterator i = (*m).second->begin();
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i != (*m).second->end();
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i++) {
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transaction * t;
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if ((*i)->cost->commdty()) {
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t = new transaction((*i)->acct, (*i)->cost);
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} else {
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amount * temp = (*x)->cost->value();
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t = new transaction((*i)->acct, temp->value((*i)->cost));
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delete temp;
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}
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t->is_virtual = (*i)->is_virtual;
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t->must_balance = (*i)->must_balance;
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new_xacts.push_back(t);
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}
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}
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// Add to the current entry any virtual transactions which were
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// created. We have to do this afterward, otherwise the
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// iteration above is screwed up if we try adding new
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// transactions during the traversal.
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for (std::list<transaction *>::iterator x = new_xacts.begin();
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x != new_xacts.end();
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x++) {
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xacts.push_back(*x);
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if (do_compute)
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(*x)->acct->balance.credit((*x)->cost);
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}
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}
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// Compute the balances again, just to make sure it all comes out
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// right (i.e., zero for every commodity).
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if (! validate()) {
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std::cerr << "Error, line " << (linenum - 1)
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<< ": Failed to balance the following transaction:"
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<< std::endl;
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validate(true);
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return false;
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}
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return true;
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}
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bool entry::matches(const regexps_map& regexps) const
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{
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if (regexps.empty() || (ledger::matches(regexps, code) ||
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ledger::matches(regexps, desc))) {
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return true;
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}
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else {
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bool match = false;
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for (std::list<transaction *>::const_iterator x = xacts.begin();
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x != xacts.end();
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x++) {
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if (ledger::matches(regexps, (*x)->acct->name) ||
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ledger::matches(regexps, (*x)->note)) {
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match = true;
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break;
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}
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}
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return match;
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}
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}
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totals::~totals()
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{
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for (iterator i = amounts.begin(); i != amounts.end(); i++)
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delete (*i).second;
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}
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void totals::credit(const amount * val)
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{
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iterator i = amounts.find(val->commdty());
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if (i != amounts.end())
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(*i).second->credit(val);
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#ifndef DEBUG
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else
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amounts.insert(pair(val->commdty(), val->copy()));
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#else
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else {
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std::pair<iterator, bool> result =
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amounts.insert(pair(val->commdty(), val->copy()));
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assert(result.second);
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}
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#endif
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}
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void totals::credit(const totals& other)
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{
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for (const_iterator i = other.amounts.begin();
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i != other.amounts.end();
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i++)
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credit((*i).second);
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}
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bool totals::is_zero() const
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{
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for (const_iterator i = amounts.begin(); i != amounts.end(); i++)
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if (! (*i).second->is_zero())
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return false;
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return true;
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}
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void totals::print(std::ostream& out, int width) const
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{
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bool first = true;
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for (const_iterator i = amounts.begin(); i != amounts.end(); i++) {
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if ((*i).second->is_zero())
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continue;
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if (first)
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first = false;
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else
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out << std::endl;
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out.width(width);
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out << std::right << (*i).second->as_str();
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}
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}
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account::~account()
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{
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for (accounts_map_iterator i = children.begin();
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i != children.end();
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i++)
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delete (*i).second;
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}
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const std::string account::as_str() const
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{
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if (! parent)
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return name;
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else if (full_name.empty())
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full_name = parent->as_str() + ":" + name;
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return full_name;
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}
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mask::mask(const std::string& pat) : exclude(false)
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{
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const char * p = pat.c_str();
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if (*p == '-') {
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exclude = true;
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p++;
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while (std::isspace(*p))
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p++;
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}
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else if (*p == '+') {
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p++;
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while (std::isspace(*p))
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p++;
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}
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pattern = p;
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const char *error;
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int erroffset;
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regexp = pcre_compile(pattern.c_str(), PCRE_CASELESS,
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&error, &erroffset, NULL);
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if (! regexp)
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std::cerr << "Warning: Failed to compile regexp: " << pattern
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<< std::endl;
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}
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mask::mask(const mask& m) : exclude(m.exclude), pattern(m.pattern)
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{
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const char *error;
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int erroffset;
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regexp = pcre_compile(pattern.c_str(), PCRE_CASELESS,
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&error, &erroffset, NULL);
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assert(regexp);
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}
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void read_regexps(const std::string& path, regexps_map& regexps)
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{
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if (access(path.c_str(), R_OK) != -1) {
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std::ifstream file(path.c_str());
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while (! file.eof()) {
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char buf[80];
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file.getline(buf, 79);
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if (*buf && ! std::isspace(*buf))
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regexps.push_back(mask(buf));
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}
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}
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}
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bool mask::match(const std::string& str) const
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{
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static int ovec[30];
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int result = pcre_exec(regexp, NULL, str.c_str(), str.length(),
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0, 0, ovec, 30);
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return result >= 0 && ! exclude;
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}
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bool matches(const regexps_map& regexps, const std::string& str,
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bool * by_exclusion)
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{
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assert(! regexps.empty());
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bool match = false;
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bool definite = false;
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// std::ofstream out("regex.out", std::ios_base::app);
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// out << "Matching against: " << str << std::endl;
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for (regexps_map_const_iterator r = regexps.begin();
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r != regexps.end();
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r++) {
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// out << " Trying: " << (*r).pattern << std::endl;
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static int ovec[30];
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int result = pcre_exec((*r).regexp, NULL, str.c_str(), str.length(),
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0, 0, ovec, 30);
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if (result >= 0) {
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// out << " Definite ";
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match = ! (*r).exclude;
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// if (match)
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// out << "match";
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// else
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// out << "unmatch";
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definite = true;
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} else {
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assert(result == -1);
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// out << " failure code = " << result << std::endl;
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if ((*r).exclude) {
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if (! match) {
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match = ! definite;
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// if (match)
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// out << " indefinite match by exclusion" << std::endl;
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}
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} else {
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definite = true;
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}
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}
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// out << " Current status: "
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// << (definite ? "definite " : "")
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// << (match ? "match" : "not match") << std::endl;
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}
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if (by_exclusion) {
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if (match && ! definite && by_exclusion) {
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// out << " Note: Matched by exclusion rule" << std::endl;
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*by_exclusion = true;
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} else {
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*by_exclusion = false;
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}
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}
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// out << " Final result: " << (match ? "match" : "not match")
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// << std::endl;
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return match;
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}
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book::~book()
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{
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for (commodities_map_iterator i = commodities.begin();
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i != commodities.end();
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i++)
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delete (*i).second;
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for (accounts_map_iterator i = accounts.begin();
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i != accounts.end();
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i++)
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delete (*i).second;
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for (virtual_map_iterator i = virtual_mapping.begin();
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i != virtual_mapping.end();
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i++) {
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delete (*i).first;
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for (std::list<transaction *>::iterator j = (*i).second->begin();
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j != (*i).second->end();
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j++) {
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delete *j;
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}
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delete (*i).second;
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}
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for (entries_list_iterator i = entries.begin();
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i != entries.end();
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i++)
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delete *i;
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}
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account * book::re_find_account(const std::string& regex)
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{
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mask acct_regex(regex);
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for (entries_list_reverse_iterator i = entries.rbegin();
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i != entries.rend();
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i++)
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for (std::list<transaction *>::iterator x = (*i)->xacts.begin();
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x != (*i)->xacts.end();
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x++)
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if (acct_regex.match((*x)->acct->as_str()))
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return (*x)->acct;
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return NULL;
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}
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account * book::find_account(const std::string& name, bool create)
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{
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accounts_map_iterator i = accounts_cache.find(name);
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if (i != accounts_cache.end())
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return (*i).second;
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char * buf = new char[name.length() + 1];
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std::strcpy(buf, name.c_str());
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account * current = NULL;
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for (char * tok = std::strtok(buf, ":");
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tok;
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tok = std::strtok(NULL, ":")) {
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if (! current) {
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accounts_map_iterator i = accounts.find(tok);
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if (i == accounts.end()) {
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if (! create) {
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delete[] buf;
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return NULL;
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}
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current = new account(tok);
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accounts.insert(accounts_map_pair(tok, current));
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} else {
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current = (*i).second;
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}
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} else {
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accounts_map_iterator i = current->children.find(tok);
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if (i == current->children.end()) {
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if (! create) {
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delete[] buf;
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return NULL;
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}
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current = new account(tok, current);
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current->parent->children.insert(accounts_map_pair(tok, current));
|
|
} else {
|
|
current = (*i).second;
|
|
}
|
|
}
|
|
}
|
|
|
|
delete[] buf;
|
|
|
|
if (current)
|
|
accounts_cache.insert(accounts_map_pair(name, current));
|
|
|
|
return current;
|
|
}
|
|
|
|
} // namespace ledger
|