ndstrides: [5] Implement np_{identity,eye,shape,strides,size}
and ndarray.{fill.copy}
#515
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@ -1905,15 +1905,23 @@ pub fn gen_ndarray_eye<'ctx>(
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))
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}?;
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call_ndarray_eye_impl(
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generator,
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context,
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context.primitives.float,
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nrows_arg.into_int_value(),
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ncols_arg.into_int_value(),
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offset_arg.into_int_value(),
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)
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.map(NDArrayValue::into)
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let (dtype, _) = unpack_ndarray_var_tys(&mut context.unifier, fun.0.ret);
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let nrows = Int(Int32)
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.check_value(generator, context.ctx, nrows_arg)
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.unwrap()
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.s_extend_or_bit_cast(generator, context, SizeT);
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let ncols = Int(Int32)
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.check_value(generator, context.ctx, ncols_arg)
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.unwrap()
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.s_extend_or_bit_cast(generator, context, SizeT);
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let offset = Int(Int32)
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.check_value(generator, context.ctx, offset_arg)
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.unwrap()
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.s_extend_or_bit_cast(generator, context, SizeT);
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let ndarray = NDArrayObject::make_np_eye(generator, context, dtype, nrows, ncols, offset);
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Ok(ndarray.instance.value)
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}
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/// Generates LLVM IR for `ndarray.identity`.
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@ -1927,20 +1935,15 @@ pub fn gen_ndarray_identity<'ctx>(
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assert!(obj.is_none());
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assert_eq!(args.len(), 1);
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let llvm_usize = generator.get_size_type(context.ctx);
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let (dtype, _) = unpack_ndarray_var_tys(&mut context.unifier, fun.0.ret);
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let n_ty = fun.0.args[0].ty;
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let n_arg = args[0].1.clone().to_basic_value_enum(context, generator, n_ty)?;
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call_ndarray_eye_impl(
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generator,
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context,
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context.primitives.float,
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n_arg.into_int_value(),
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n_arg.into_int_value(),
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llvm_usize.const_zero(),
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)
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.map(NDArrayValue::into)
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let n = Int(Int32).check_value(generator, context.ctx, n_arg).unwrap();
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let n = n.s_extend_or_bit_cast(generator, context, SizeT);
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let ndarray = NDArrayObject::make_np_identity(generator, context, dtype, n);
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Ok(ndarray.instance.value)
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}
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/// Generates LLVM IR for `ndarray.copy`.
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|
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@ -1,4 +1,4 @@
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use inkwell::values::BasicValueEnum;
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use inkwell::{values::BasicValueEnum, IntPredicate};
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use super::NDArrayObject;
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use crate::{
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@ -122,4 +122,54 @@ impl<'ctx> NDArrayObject<'ctx> {
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let fill_value = ndarray_one_value(generator, ctx, dtype);
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NDArrayObject::make_np_full(generator, ctx, dtype, ndims, shape, fill_value)
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}
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/// Create an ndarray like `np.eye`.
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pub fn make_np_eye<G: CodeGenerator + ?Sized>(
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generator: &mut G,
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ctx: &mut CodeGenContext<'ctx, '_>,
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dtype: Type,
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nrows: Instance<'ctx, Int<SizeT>>,
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ncols: Instance<'ctx, Int<SizeT>>,
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offset: Instance<'ctx, Int<SizeT>>,
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) -> Self {
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let ndzero = ndarray_zero_value(generator, ctx, dtype);
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let ndone = ndarray_one_value(generator, ctx, dtype);
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let ndarray = NDArrayObject::alloca_dynamic_shape(generator, ctx, dtype, &[nrows, ncols]);
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// Create data and make the matrix like look np.eye()
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ndarray.create_data(generator, ctx);
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ndarray
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.foreach(generator, ctx, |generator, ctx, _hooks, nditer| {
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// NOTE: rows and cols can never be zero here, since this ndarray's `np.size` would be zero
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// and this loop would not execute.
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// Load up `row_i` and `col_i` from indices.
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let row_i = nditer.get_indices().get_index_const(generator, ctx, 0);
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let col_i = nditer.get_indices().get_index_const(generator, ctx, 1);
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let be_one = row_i.add(ctx, offset).compare(ctx, IntPredicate::EQ, col_i);
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let value = ctx.builder.build_select(be_one.value, ndone, ndzero, "value").unwrap();
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let p = nditer.get_pointer(generator, ctx);
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ctx.builder.build_store(p, value).unwrap();
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Ok(())
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})
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.unwrap();
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ndarray
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}
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/// Create an ndarray like `np.identity`.
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pub fn make_np_identity<G: CodeGenerator + ?Sized>(
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generator: &mut G,
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ctx: &mut CodeGenContext<'ctx, '_>,
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dtype: Type,
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size: Instance<'ctx, Int<SizeT>>,
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) -> Self {
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// Convenient implementation
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let offset = Int(SizeT).const_0(generator, ctx.ctx);
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NDArrayObject::make_np_eye(generator, ctx, dtype, size, size, offset)
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}
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}
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