use std::marker::Sized; use std::ops::Range; use num_bigint::{BigInt, ToBigInt}; use num_traits::{One, Signed, ToPrimitive, Zero}; use super::objint::{PyInt, PyIntRef}; use super::objlist::PyList; use super::objnone::PyNone; use super::objslice::{PySlice, PySliceRef}; use super::objtuple::PyTuple; use crate::function::OptionalArg; use crate::pyobject::{PyObject, PyObjectRef, PyResult, TryFromObject, TypeProtocol}; use crate::vm::VirtualMachine; pub trait PySliceableSequence { type Sliced; fn do_slice(&self, range: Range) -> Self::Sliced; fn do_slice_reverse(&self, range: Range) -> Self::Sliced; fn do_stepped_slice(&self, range: Range, step: usize) -> Self::Sliced; fn do_stepped_slice_reverse(&self, range: Range, step: usize) -> Self::Sliced; fn empty() -> Self::Sliced; fn len(&self) -> usize; fn is_empty(&self) -> bool; fn get_pos(&self, p: i32) -> Option { if p < 0 { if -p as usize > self.len() { None } else { Some(self.len() - ((-p) as usize)) } } else if p as usize >= self.len() { None } else { Some(p as usize) } } fn get_slice_pos(&self, slice_pos: &BigInt) -> usize { if let Some(pos) = slice_pos.to_i32() { if let Some(index) = self.get_pos(pos) { // within bounds return index; } } if slice_pos.is_negative() { 0 } else { self.len() } } fn get_slice_range(&self, start: &Option, stop: &Option) -> Range { let start = start.as_ref().map(|x| self.get_slice_pos(x)).unwrap_or(0); let stop = stop .as_ref() .map(|x| self.get_slice_pos(x)) .unwrap_or_else(|| self.len()); start..stop } fn get_slice_items(&self, vm: &VirtualMachine, slice: &PyObjectRef) -> PyResult where Self: Sized, { match slice.clone().downcast::() { Ok(slice) => { let start = slice.start_index(vm)?; let stop = slice.stop_index(vm)?; let step = slice.step_index(vm)?.unwrap_or_else(BigInt::one); if step.is_zero() { Err(vm.new_value_error("slice step cannot be zero".to_string())) } else if step.is_positive() { let range = self.get_slice_range(&start, &stop); if range.start < range.end { #[allow(clippy::range_plus_one)] match step.to_i32() { Some(1) => Ok(self.do_slice(range)), Some(num) => Ok(self.do_stepped_slice(range, num as usize)), None => Ok(self.do_slice(range.start..range.start + 1)), } } else { Ok(Self::empty()) } } else { // calculate the range for the reverse slice, first the bounds needs to be made // exclusive around stop, the lower number let start = start.as_ref().map(|x| { if *x == (-1).to_bigint().unwrap() { self.len() + BigInt::one() //.to_bigint().unwrap() } else { x + 1 } }); let stop = stop.as_ref().map(|x| { if *x == (-1).to_bigint().unwrap() { self.len().to_bigint().unwrap() } else { x + 1 } }); let range = self.get_slice_range(&stop, &start); if range.start < range.end { match (-step).to_i32() { Some(1) => Ok(self.do_slice_reverse(range)), Some(num) => Ok(self.do_stepped_slice_reverse(range, num as usize)), None => Ok(self.do_slice(range.end - 1..range.end)), } } else { Ok(Self::empty()) } } } payload => panic!("get_slice_items called with non-slice: {:?}", payload), } } } impl PySliceableSequence for Vec { type Sliced = Vec; fn do_slice(&self, range: Range) -> Self::Sliced { self[range].to_vec() } fn do_slice_reverse(&self, range: Range) -> Self::Sliced { let mut slice = self[range].to_vec(); slice.reverse(); slice } fn do_stepped_slice(&self, range: Range, step: usize) -> Self::Sliced { self[range].iter().step_by(step).cloned().collect() } fn do_stepped_slice_reverse(&self, range: Range, step: usize) -> Self::Sliced { self[range].iter().rev().step_by(step).cloned().collect() } fn empty() -> Self::Sliced { Vec::new() } fn len(&self) -> usize { self.len() } fn is_empty(&self) -> bool { self.is_empty() } } pub enum SequenceIndex { Int(i32), Slice(PySliceRef), } impl TryFromObject for SequenceIndex { fn try_from_object(vm: &VirtualMachine, obj: PyObjectRef) -> PyResult { match_class!(match obj { i @ PyInt => Ok(SequenceIndex::Int(i32::try_from_object( vm, i.into_object() )?)), s @ PySlice => Ok(SequenceIndex::Slice(s)), obj => Err(vm.new_type_error(format!( "sequence indices be integers or slices, not {}", obj.class(), ))), }) } } /// Get the index into a sequence like type. Get it from a python integer /// object, accounting for negative index, and out of bounds issues. pub fn get_sequence_index(vm: &VirtualMachine, index: &PyIntRef, length: usize) -> PyResult { if let Some(value) = index.as_bigint().to_i64() { if value < 0 { let from_end: usize = -value as usize; if from_end > length { Err(vm.new_index_error("Index out of bounds!".to_string())) } else { let index = length - from_end; Ok(index) } } else { let index = value as usize; if index >= length { Err(vm.new_index_error("Index out of bounds!".to_string())) } else { Ok(index) } } } else { Err(vm.new_index_error("cannot fit 'int' into an index-sized integer".to_string())) } } pub fn get_item( vm: &VirtualMachine, sequence: &PyObjectRef, elements: &[PyObjectRef], subscript: PyObjectRef, ) -> PyResult { if let Some(i) = subscript.payload::() { return match i.as_bigint().to_i32() { Some(value) => { if let Some(pos_index) = elements.to_vec().get_pos(value) { let obj = elements[pos_index].clone(); Ok(obj) } else { Err(vm.new_index_error("Index out of bounds!".to_string())) } } None => { Err(vm.new_index_error("cannot fit 'int' into an index-sized integer".to_string())) } }; } if subscript.payload::().is_some() { if sequence.payload::().is_some() { Ok(PyObject::new( PyList::from(elements.to_vec().get_slice_items(vm, &subscript)?), sequence.class(), None, )) } else if sequence.payload::().is_some() { Ok(PyObject::new( PyTuple::from(elements.to_vec().get_slice_items(vm, &subscript)?), sequence.class(), None, )) } else { panic!("sequence get_item called for non-sequence") } } else { Err(vm.new_type_error(format!( "indexing type {:?} with index {:?} is not supported (yet?)", sequence, subscript ))) } } //Check if given arg could be used with PySliceableSequence.get_slice_range() pub fn is_valid_slice_arg( arg: OptionalArg, vm: &VirtualMachine, ) -> PyResult> { if let OptionalArg::Present(value) = arg { match_class!(match value { i @ PyInt => Ok(Some(i.as_bigint().clone())), _obj @ PyNone => Ok(None), _ => Err(vm.new_type_error( "slice indices must be integers or None or have an __index__ method".to_string() )), // TODO: check for an __index__ method }) } else { Ok(None) } } pub fn opt_len(obj: &PyObjectRef, vm: &VirtualMachine) -> Option> { vm.get_method(obj.clone(), "__len__").map(|len| { let len = vm.invoke(&len?, vec![])?; let len = len .payload_if_subclass::(vm) .ok_or_else(|| { vm.new_type_error(format!( "'{}' object cannot be interpreted as an integer", len.class().name )) })? .as_bigint(); if len.is_negative() { return Err(vm.new_value_error("__len__() should return >= 0".to_string())); } len.to_usize().ok_or_else(|| { vm.new_overflow_error("cannot fit __len__() result into usize".to_string()) }) }) } pub fn len(obj: &PyObjectRef, vm: &VirtualMachine) -> PyResult { opt_len(obj, vm).unwrap_or_else(|| { Err(vm.new_type_error(format!( "object of type '{}' has no len()", obj.class().name ))) }) }