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""" |
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A Printer for generating executable code. |
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The most important function here is srepr that returns a string so that the |
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relation eval(srepr(expr))=expr holds in an appropriate environment. |
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""" |
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from __future__ import annotations |
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from typing import Any |
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from sympy.core.function import AppliedUndef |
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from sympy.core.mul import Mul |
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from mpmath.libmp import repr_dps, to_str as mlib_to_str |
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from .printer import Printer, print_function |
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class ReprPrinter(Printer): |
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printmethod = "_sympyrepr" |
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_default_settings: dict[str, Any] = { |
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"order": None, |
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"perm_cyclic" : True, |
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} |
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def reprify(self, args, sep): |
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""" |
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Prints each item in `args` and joins them with `sep`. |
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""" |
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return sep.join([self.doprint(item) for item in args]) |
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def emptyPrinter(self, expr): |
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""" |
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The fallback printer. |
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""" |
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if isinstance(expr, str): |
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return expr |
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elif hasattr(expr, "__srepr__"): |
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return expr.__srepr__() |
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elif hasattr(expr, "args") and hasattr(expr.args, "__iter__"): |
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l = [] |
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for o in expr.args: |
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l.append(self._print(o)) |
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return expr.__class__.__name__ + '(%s)' % ', '.join(l) |
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elif hasattr(expr, "__module__") and hasattr(expr, "__name__"): |
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return "<'%s.%s'>" % (expr.__module__, expr.__name__) |
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else: |
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return str(expr) |
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def _print_Add(self, expr, order=None): |
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args = self._as_ordered_terms(expr, order=order) |
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args = map(self._print, args) |
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clsname = type(expr).__name__ |
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return clsname + "(%s)" % ", ".join(args) |
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def _print_Cycle(self, expr): |
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return expr.__repr__() |
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def _print_Permutation(self, expr): |
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from sympy.combinatorics.permutations import Permutation, Cycle |
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from sympy.utilities.exceptions import sympy_deprecation_warning |
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perm_cyclic = Permutation.print_cyclic |
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if perm_cyclic is not None: |
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sympy_deprecation_warning( |
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f""" |
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Setting Permutation.print_cyclic is deprecated. Instead use |
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init_printing(perm_cyclic={perm_cyclic}). |
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""", |
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deprecated_since_version="1.6", |
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active_deprecations_target="deprecated-permutation-print_cyclic", |
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stacklevel=7, |
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) |
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else: |
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perm_cyclic = self._settings.get("perm_cyclic", True) |
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if perm_cyclic: |
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if not expr.size: |
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return 'Permutation()' |
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s = Cycle(expr)(expr.size - 1).__repr__()[len('Cycle'):] |
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last = s.rfind('(') |
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if not last == 0 and ',' not in s[last:]: |
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s = s[last:] + s[:last] |
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return 'Permutation%s' %s |
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else: |
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s = expr.support() |
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if not s: |
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if expr.size < 5: |
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return 'Permutation(%s)' % str(expr.array_form) |
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return 'Permutation([], size=%s)' % expr.size |
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trim = str(expr.array_form[:s[-1] + 1]) + ', size=%s' % expr.size |
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use = full = str(expr.array_form) |
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if len(trim) < len(full): |
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use = trim |
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return 'Permutation(%s)' % use |
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def _print_Function(self, expr): |
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r = self._print(expr.func) |
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r += '(%s)' % ', '.join([self._print(a) for a in expr.args]) |
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return r |
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def _print_Heaviside(self, expr): |
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r = self._print(expr.func) |
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r += '(%s)' % ', '.join([self._print(a) for a in expr.pargs]) |
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return r |
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def _print_FunctionClass(self, expr): |
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if issubclass(expr, AppliedUndef): |
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return 'Function(%r)' % (expr.__name__) |
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else: |
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return expr.__name__ |
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def _print_Half(self, expr): |
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return 'Rational(1, 2)' |
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def _print_RationalConstant(self, expr): |
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return str(expr) |
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def _print_AtomicExpr(self, expr): |
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return str(expr) |
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def _print_NumberSymbol(self, expr): |
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return str(expr) |
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def _print_Integer(self, expr): |
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return 'Integer(%i)' % expr.p |
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def _print_Complexes(self, expr): |
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return 'Complexes' |
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def _print_Integers(self, expr): |
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return 'Integers' |
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def _print_Naturals(self, expr): |
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return 'Naturals' |
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def _print_Naturals0(self, expr): |
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return 'Naturals0' |
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def _print_Rationals(self, expr): |
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return 'Rationals' |
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def _print_Reals(self, expr): |
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return 'Reals' |
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def _print_EmptySet(self, expr): |
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return 'EmptySet' |
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def _print_UniversalSet(self, expr): |
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return 'UniversalSet' |
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def _print_EmptySequence(self, expr): |
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return 'EmptySequence' |
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def _print_list(self, expr): |
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return "[%s]" % self.reprify(expr, ", ") |
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def _print_dict(self, expr): |
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sep = ", " |
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dict_kvs = ["%s: %s" % (self.doprint(key), self.doprint(value)) for key, value in expr.items()] |
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return "{%s}" % sep.join(dict_kvs) |
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def _print_set(self, expr): |
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if not expr: |
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return "set()" |
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return "{%s}" % self.reprify(expr, ", ") |
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def _print_MatrixBase(self, expr): |
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if (expr.rows == 0) ^ (expr.cols == 0): |
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return '%s(%s, %s, %s)' % (expr.__class__.__name__, |
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self._print(expr.rows), |
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self._print(expr.cols), |
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self._print([])) |
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l = [] |
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for i in range(expr.rows): |
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l.append([]) |
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for j in range(expr.cols): |
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l[-1].append(expr[i, j]) |
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return '%s(%s)' % (expr.__class__.__name__, self._print(l)) |
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def _print_BooleanTrue(self, expr): |
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return "true" |
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def _print_BooleanFalse(self, expr): |
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return "false" |
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def _print_NaN(self, expr): |
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return "nan" |
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def _print_Mul(self, expr, order=None): |
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if self.order not in ('old', 'none'): |
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args = expr.as_ordered_factors() |
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else: |
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args = Mul.make_args(expr) |
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args = map(self._print, args) |
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clsname = type(expr).__name__ |
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return clsname + "(%s)" % ", ".join(args) |
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def _print_Rational(self, expr): |
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return 'Rational(%s, %s)' % (self._print(expr.p), self._print(expr.q)) |
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def _print_PythonRational(self, expr): |
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return "%s(%d, %d)" % (expr.__class__.__name__, expr.p, expr.q) |
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def _print_Fraction(self, expr): |
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return 'Fraction(%s, %s)' % (self._print(expr.numerator), self._print(expr.denominator)) |
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def _print_Float(self, expr): |
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r = mlib_to_str(expr._mpf_, repr_dps(expr._prec)) |
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return "%s('%s', precision=%i)" % (expr.__class__.__name__, r, expr._prec) |
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def _print_Sum2(self, expr): |
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return "Sum2(%s, (%s, %s, %s))" % (self._print(expr.f), self._print(expr.i), |
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self._print(expr.a), self._print(expr.b)) |
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def _print_Str(self, s): |
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return "%s(%s)" % (s.__class__.__name__, self._print(s.name)) |
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def _print_Symbol(self, expr): |
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d = expr._assumptions_orig |
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if expr.is_Dummy: |
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d['dummy_index'] = expr.dummy_index |
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if d == {}: |
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return "%s(%s)" % (expr.__class__.__name__, self._print(expr.name)) |
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else: |
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attr = ['%s=%s' % (k, v) for k, v in d.items()] |
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return "%s(%s, %s)" % (expr.__class__.__name__, |
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self._print(expr.name), ', '.join(attr)) |
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def _print_CoordinateSymbol(self, expr): |
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d = expr._assumptions.generator |
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if d == {}: |
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return "%s(%s, %s)" % ( |
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expr.__class__.__name__, |
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self._print(expr.coord_sys), |
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self._print(expr.index) |
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) |
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else: |
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attr = ['%s=%s' % (k, v) for k, v in d.items()] |
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return "%s(%s, %s, %s)" % ( |
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expr.__class__.__name__, |
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self._print(expr.coord_sys), |
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self._print(expr.index), |
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', '.join(attr) |
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) |
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def _print_Predicate(self, expr): |
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return "Q.%s" % expr.name |
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def _print_AppliedPredicate(self, expr): |
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args = expr._args |
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return "%s(%s)" % (expr.__class__.__name__, self.reprify(args, ", ")) |
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def _print_str(self, expr): |
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return repr(expr) |
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def _print_tuple(self, expr): |
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if len(expr) == 1: |
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return "(%s,)" % self._print(expr[0]) |
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else: |
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return "(%s)" % self.reprify(expr, ", ") |
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def _print_WildFunction(self, expr): |
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return "%s('%s')" % (expr.__class__.__name__, expr.name) |
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def _print_AlgebraicNumber(self, expr): |
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return "%s(%s, %s)" % (expr.__class__.__name__, |
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self._print(expr.root), self._print(expr.coeffs())) |
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def _print_PolyRing(self, ring): |
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return "%s(%s, %s, %s)" % (ring.__class__.__name__, |
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self._print(ring.symbols), self._print(ring.domain), self._print(ring.order)) |
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def _print_FracField(self, field): |
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return "%s(%s, %s, %s)" % (field.__class__.__name__, |
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self._print(field.symbols), self._print(field.domain), self._print(field.order)) |
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def _print_PolyElement(self, poly): |
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terms = list(poly.terms()) |
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terms.sort(key=poly.ring.order, reverse=True) |
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return "%s(%s, %s)" % (poly.__class__.__name__, self._print(poly.ring), self._print(terms)) |
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def _print_FracElement(self, frac): |
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numer_terms = list(frac.numer.terms()) |
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numer_terms.sort(key=frac.field.order, reverse=True) |
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denom_terms = list(frac.denom.terms()) |
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denom_terms.sort(key=frac.field.order, reverse=True) |
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numer = self._print(numer_terms) |
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denom = self._print(denom_terms) |
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return "%s(%s, %s, %s)" % (frac.__class__.__name__, self._print(frac.field), numer, denom) |
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def _print_FractionField(self, domain): |
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cls = domain.__class__.__name__ |
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field = self._print(domain.field) |
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return "%s(%s)" % (cls, field) |
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def _print_PolynomialRingBase(self, ring): |
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cls = ring.__class__.__name__ |
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dom = self._print(ring.domain) |
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gens = ', '.join(map(self._print, ring.gens)) |
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order = str(ring.order) |
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if order != ring.default_order: |
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orderstr = ", order=" + order |
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else: |
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orderstr = "" |
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return "%s(%s, %s%s)" % (cls, dom, gens, orderstr) |
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def _print_DMP(self, p): |
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cls = p.__class__.__name__ |
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rep = self._print(p.rep) |
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dom = self._print(p.dom) |
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if p.ring is not None: |
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ringstr = ", ring=" + self._print(p.ring) |
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else: |
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ringstr = "" |
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return "%s(%s, %s%s)" % (cls, rep, dom, ringstr) |
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def _print_MonogenicFiniteExtension(self, ext): |
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return "FiniteExtension(%s)" % str(ext.modulus) |
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def _print_ExtensionElement(self, f): |
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rep = self._print(f.rep) |
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ext = self._print(f.ext) |
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return "ExtElem(%s, %s)" % (rep, ext) |
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@print_function(ReprPrinter) |
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def srepr(expr, **settings): |
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"""return expr in repr form""" |
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return ReprPrinter(settings).doprint(expr) |
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