add modulo operator (#733)
* add modulo operator * fix modulo loops * add in-place modulo operator * update readme
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7 changed files with 320 additions and 3 deletions
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@ -36,7 +36,7 @@ detected and handled.
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## ndarray methods
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`ulab` implements `numpy`'s `ndarray` with the `==`, `!=`, `<`, `<=`, `>`, `>=`, `+`, `-`, `/`, `*`, `**`,
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`+=`, `-=`, `*=`, `/=`, `**=` binary operators, and the `len`, `~`, `-`, `+`, `abs` unary operators that
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`%`, `+=`, `-=`, `*=`, `/=`, `**=`, `%=` binary operators, and the `len`, `~`, `-`, `+`, `abs` unary operators that
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operate element-wise. Type-aware `ndarray`s can be initialised from any `micropython` iterable, lists of
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iterables via the `array` constructor, or by means of the `arange`, `concatenate`, `diag`, `eye`,
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`frombuffer`, `full`, `linspace`, `logspace`, `ones`, or `zeros` functions.
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@ -1648,6 +1648,12 @@ mp_obj_t ndarray_binary_op(mp_binary_op_t _op, mp_obj_t lobj, mp_obj_t robj) {
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return ndarray_inplace_ams(lhs, rhs, rstrides, op);
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break;
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#endif
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#if NDARRAY_HAS_INPLACE_MODULO
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case MP_BINARY_OP_INPLACE_MODULO:
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COMPLEX_DTYPE_NOT_IMPLEMENTED(lhs->dtype);
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return ndarray_inplace_modulo(lhs, rhs, rstrides);
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break;
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#endif
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#if NDARRAY_HAS_INPLACE_MULTIPLY
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case MP_BINARY_OP_INPLACE_MULTIPLY:
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COMPLEX_DTYPE_NOT_IMPLEMENTED(lhs->dtype);
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@ -1703,6 +1709,12 @@ mp_obj_t ndarray_binary_op(mp_binary_op_t _op, mp_obj_t lobj, mp_obj_t robj) {
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return ndarray_binary_add(lhs, rhs, ndim, shape, lstrides, rstrides);
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break;
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#endif
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#if NDARRAY_HAS_BINARY_OP_MODULO
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case MP_BINARY_OP_MODULO:
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COMPLEX_DTYPE_NOT_IMPLEMENTED(lhs->dtype);
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return ndarray_binary_modulo(lhs, rhs, ndim, shape, lstrides, rstrides);
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break;
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#endif
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#if NDARRAY_HAS_BINARY_OP_MULTIPLY
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case MP_BINARY_OP_MULTIPLY:
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return ndarray_binary_multiply(lhs, rhs, ndim, shape, lstrides, rstrides);
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@ -248,6 +248,105 @@ mp_obj_t ndarray_binary_add(ndarray_obj_t *lhs, ndarray_obj_t *rhs,
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}
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#endif /* NDARRAY_HAS_BINARY_OP_ADD */
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#if NDARRAY_HAS_BINARY_OP_MODULO
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mp_obj_t ndarray_binary_modulo(ndarray_obj_t *lhs, ndarray_obj_t *rhs,
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uint8_t ndim, size_t *shape, int32_t *lstrides, int32_t *rstrides) {
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ndarray_obj_t *results = NULL;
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uint8_t *larray = (uint8_t *)lhs->array;
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uint8_t *rarray = (uint8_t *)rhs->array;
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if(lhs->dtype == NDARRAY_UINT8) {
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if(rhs->dtype == NDARRAY_UINT8) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_UINT8);
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BINARY_LOOP(results, uint8_t, uint8_t, uint8_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_INT8) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_INT16);
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BINARY_LOOP(results, int16_t, uint8_t, int8_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_UINT16) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_UINT16);
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BINARY_LOOP(results, uint16_t, uint8_t, uint16_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_INT16) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_INT16);
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BINARY_LOOP(results, int16_t, uint8_t, int16_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_FLOAT) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_FLOAT);
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MODULO_FLOAT_LOOP(results, mp_float_t, uint8_t, mp_float_t, larray, lstrides, rarray, rstrides);
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}
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} else if(lhs->dtype == NDARRAY_INT8) {
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if(rhs->dtype == NDARRAY_UINT8) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_INT16);
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BINARY_LOOP(results, int16_t, int8_t, uint8_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_INT8) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_INT8);
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BINARY_LOOP(results, int8_t, int8_t, int8_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_UINT16) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_INT16);
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BINARY_LOOP(results, int16_t, int8_t, int16_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_INT16) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_INT16);
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BINARY_LOOP(results, int16_t, int8_t, int16_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_FLOAT) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_FLOAT);
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MODULO_FLOAT_LOOP(results, mp_float_t, int8_t, mp_float_t, larray, lstrides, rarray, rstrides);
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}
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} else if(lhs->dtype == NDARRAY_UINT16) {
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if(rhs->dtype == NDARRAY_UINT8) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_UINT8);
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BINARY_LOOP(results, uint16_t, uint16_t, uint8_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_INT8) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_FLOAT);
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BINARY_LOOP(results, mp_float_t, uint16_t, int8_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_UINT16) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_UINT16);
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BINARY_LOOP(results, uint16_t, uint16_t, uint16_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_INT16) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_FLOAT);
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BINARY_LOOP(results, mp_float_t, uint16_t, int16_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_FLOAT) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_FLOAT);
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MODULO_FLOAT_LOOP(results, mp_float_t, uint16_t, mp_float_t, larray, lstrides, rarray, rstrides);
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}
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} else if(lhs->dtype == NDARRAY_INT16) {
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if(rhs->dtype == NDARRAY_UINT8) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_INT16);
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BINARY_LOOP(results, int16_t, int16_t, uint8_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_INT8) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_INT16);
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BINARY_LOOP(results, int16_t, int16_t, int8_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_UINT16) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_FLOAT);
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BINARY_LOOP(results, mp_float_t, int16_t, uint16_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_INT16) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_INT16);
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BINARY_LOOP(results, int16_t, int16_t, int16_t, larray, lstrides, rarray, rstrides, %);
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} else if(rhs->dtype == NDARRAY_FLOAT) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_FLOAT);
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MODULO_FLOAT_LOOP(results, mp_float_t, int16_t, mp_float_t, larray, lstrides, rarray, rstrides);
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}
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} else if(lhs->dtype == NDARRAY_FLOAT) {
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if(rhs->dtype == NDARRAY_UINT8) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_FLOAT);
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MODULO_FLOAT_LOOP(results, mp_float_t, mp_float_t, uint8_t, larray, lstrides, rarray, rstrides);
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} else if(rhs->dtype == NDARRAY_INT8) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_FLOAT);
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MODULO_FLOAT_LOOP(results, mp_float_t, mp_float_t, int8_t, larray, lstrides, rarray, rstrides);
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} else if(rhs->dtype == NDARRAY_UINT16) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_FLOAT);
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MODULO_FLOAT_LOOP(results, mp_float_t, mp_float_t, uint16_t, larray, lstrides, rarray, rstrides);
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} else if(rhs->dtype == NDARRAY_INT16) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_FLOAT);
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MODULO_FLOAT_LOOP(results, mp_float_t, mp_float_t, int16_t, larray, lstrides, rarray, rstrides);
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} else if(rhs->dtype == NDARRAY_FLOAT) {
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results = ndarray_new_dense_ndarray(ndim, shape, NDARRAY_FLOAT);
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MODULO_FLOAT_LOOP(results, mp_float_t, mp_float_t, mp_float_t, larray, lstrides, rarray, rstrides);
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}
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}
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return MP_OBJ_FROM_PTR(results);
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}
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#endif /* NDARRAY_HAS_BINARY_OP_MODULO */
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#if NDARRAY_HAS_BINARY_OP_MULTIPLY
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mp_obj_t ndarray_binary_multiply(ndarray_obj_t *lhs, ndarray_obj_t *rhs,
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uint8_t ndim, size_t *shape, int32_t *lstrides, int32_t *rstrides) {
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@ -1074,6 +1173,29 @@ mp_obj_t ndarray_inplace_ams(ndarray_obj_t *lhs, ndarray_obj_t *rhs, int32_t *rs
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}
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#endif /* NDARRAY_HAS_INPLACE_ADD || NDARRAY_HAS_INPLACE_MULTIPLY || NDARRAY_HAS_INPLACE_SUBTRACT */
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#if NDARRAY_HAS_INPLACE_MODULO
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mp_obj_t ndarray_inplace_modulo(ndarray_obj_t *lhs, ndarray_obj_t *rhs, int32_t *rstrides) {
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if((lhs->dtype != NDARRAY_FLOAT) && (rhs->dtype == NDARRAY_FLOAT)) {
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mp_raise_TypeError(MP_ERROR_TEXT("results cannot be cast to specified type"));
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}
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if(lhs->dtype == NDARRAY_FLOAT) {
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if(rhs->dtype == NDARRAY_UINT8) {
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INLINE_MODULO_FLOAT_LOOP(lhs, uint8_t, larray, rarray, rstrides);
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} else if(rhs->dtype == NDARRAY_UINT8) {
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INLINE_MODULO_FLOAT_LOOP(lhs, int8_t, larray, rarray, rstrides);
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} else if(rhs->dtype == NDARRAY_UINT16) {
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INLINE_MODULO_FLOAT_LOOP(lhs, uint16_t, larray, rarray, rstrides);
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} else if(rhs->dtype == NDARRAY_INT16) {
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INLINE_MODULO_FLOAT_LOOP(lhs, int16_t, larray, rarray, rstrides);
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} else {
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INLINE_MODULO_FLOAT_LOOP(lhs, mp_float_t, larray, rarray, rstrides);
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}
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}
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return MP_OBJ_FROM_PTR(lhs);
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}
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#endif /* NDARRAY_HAS_INPLACE_MODULO */
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#if NDARRAY_HAS_INPLACE_TRUE_DIVIDE
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mp_obj_t ndarray_inplace_divide(ndarray_obj_t *lhs, ndarray_obj_t *rhs, int32_t *rstrides) {
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@ -12,6 +12,7 @@
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mp_obj_t ndarray_binary_equality(ndarray_obj_t *, ndarray_obj_t *, uint8_t , size_t *, int32_t *, int32_t *, mp_binary_op_t );
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mp_obj_t ndarray_binary_add(ndarray_obj_t *, ndarray_obj_t *, uint8_t , size_t *, int32_t *, int32_t *);
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mp_obj_t ndarray_binary_modulo(ndarray_obj_t *, ndarray_obj_t *, uint8_t , size_t *, int32_t *, int32_t *);
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mp_obj_t ndarray_binary_multiply(ndarray_obj_t *, ndarray_obj_t *, uint8_t , size_t *, int32_t *, int32_t *);
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mp_obj_t ndarray_binary_more(ndarray_obj_t *, ndarray_obj_t *, uint8_t , size_t *, int32_t *, int32_t *, mp_binary_op_t );
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mp_obj_t ndarray_binary_power(ndarray_obj_t *, ndarray_obj_t *, uint8_t , size_t *, int32_t *, int32_t *);
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@ -21,6 +22,7 @@ mp_obj_t ndarray_binary_logical(ndarray_obj_t *, ndarray_obj_t *, uint8_t , size
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mp_obj_t ndarray_binary_floor_divide(ndarray_obj_t *, ndarray_obj_t *, uint8_t , size_t *, int32_t *, int32_t *);
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mp_obj_t ndarray_inplace_ams(ndarray_obj_t *, ndarray_obj_t *, int32_t *, uint8_t );
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mp_obj_t ndarray_inplace_modulo(ndarray_obj_t *, ndarray_obj_t *, int32_t *);
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mp_obj_t ndarray_inplace_power(ndarray_obj_t *, ndarray_obj_t *, int32_t *);
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mp_obj_t ndarray_inplace_divide(ndarray_obj_t *, ndarray_obj_t *, int32_t *);
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@ -537,3 +539,176 @@ mp_obj_t ndarray_inplace_divide(ndarray_obj_t *, ndarray_obj_t *, int32_t *);
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} while(0)
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#endif /* ULAB_MAX_DIMS == 4 */
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#define MODULO_FLOAT1(results, array, type_left, type_right, larray, lstrides, rarray, rstrides)\
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({\
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size_t l = 0;\
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do {\
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*(array)++ = MICROPY_FLOAT_C_FUN(fmod)(*((type_left *)(larray)), *((type_right *)(rarray)));\
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(larray) += (lstrides)[ULAB_MAX_DIMS - 1];\
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(rarray) += (rstrides)[ULAB_MAX_DIMS - 1];\
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l++;\
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} while(l < (results)->shape[ULAB_MAX_DIMS - 1]);\
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})
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#if ULAB_MAX_DIMS == 1
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#define MODULO_FLOAT_LOOP(results, type_out, type_left, type_right, larray, lstrides, rarray, rstrides) do {\
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type_out *array = (type_out *)(results)->array;\
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MODULO_FLOAT1((results), (array), type_left, type_right, (larray), (lstrides), (rarray), (rstrides));\
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} while(0)
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#endif /* ULAB_MAX_DIMS == 1 */
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#if ULAB_MAX_DIMS == 2
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#define MODULO_FLOAT_LOOP(results, type_out, type_left, type_right, larray, lstrides, rarray, rstrides) do {\
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type_out *array = (type_out *)(results)->array;\
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size_t l = 0;\
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do {\
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MODULO_FLOAT1((results), (array), type_left, type_right, (larray), (lstrides), (rarray), (rstrides));\
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(larray) -= (lstrides)[ULAB_MAX_DIMS - 1] * (results)->shape[ULAB_MAX_DIMS - 1];\
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(larray) += (lstrides)[ULAB_MAX_DIMS - 2];\
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(rarray) -= (rstrides)[ULAB_MAX_DIMS - 1] * (results)->shape[ULAB_MAX_DIMS - 1];\
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(rarray) += (rstrides)[ULAB_MAX_DIMS - 2];\
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l++;\
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} while(l < (results)->shape[ULAB_MAX_DIMS - 2]);\
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} while(0)
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#endif /* ULAB_MAX_DIMS == 2 */
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#if ULAB_MAX_DIMS == 3
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#define MODULO_FLOAT_LOOP(results, type_out, type_left, type_right, larray, lstrides, rarray, rstrides) do {\
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type_out *array = (type_out *)(results)->array;\
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size_t k = 0;\
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do {\
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size_t l = 0;\
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do {\
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MODULO_FLOAT1((results), (array), type_left, type_right, (larray), (lstrides), (rarray), (rstrides));\
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(larray) -= (lstrides)[ULAB_MAX_DIMS - 1] * (results)->shape[ULAB_MAX_DIMS - 1];\
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(larray) += (lstrides)[ULAB_MAX_DIMS - 2];\
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(rarray) -= (rstrides)[ULAB_MAX_DIMS - 1] * (results)->shape[ULAB_MAX_DIMS - 1];\
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(rarray) += (rstrides)[ULAB_MAX_DIMS - 2];\
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l++;\
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} while(l < (results)->shape[ULAB_MAX_DIMS - 2]);\
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(larray) -= (lstrides)[ULAB_MAX_DIMS - 2] * (results)->shape[ULAB_MAX_DIMS - 2];\
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(larray) += (lstrides)[ULAB_MAX_DIMS - 3];\
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(rarray) -= (rstrides)[ULAB_MAX_DIMS - 2] * (results)->shape[ULAB_MAX_DIMS - 2];\
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(rarray) += (rstrides)[ULAB_MAX_DIMS - 3];\
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k++;\
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} while(k < (results)->shape[ULAB_MAX_DIMS - 3]);\
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} while(0)
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#endif /* ULAB_MAX_DIMS == 3 */
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#if ULAB_MAX_DIMS == 4
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#define MODULO_FLOAT_LOOP(results, type_out, type_left, type_right, larray, lstrides, rarray, rstrides) do {\
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type_out *array = (type_out *)(results)->array;\
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size_t j = 0;\
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do {\
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size_t k = 0;\
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do {\
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size_t l = 0;\
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do {\
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MODULO_FLOAT1((results), (array), type_left, type_right, (larray), (lstrides), (rarray), (rstrides));\
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(larray) -= (lstrides)[ULAB_MAX_DIMS - 1] * (results)->shape[ULAB_MAX_DIMS - 1];\
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(larray) += (lstrides)[ULAB_MAX_DIMS - 2];\
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(rarray) -= (rstrides)[ULAB_MAX_DIMS - 1] * (results)->shape[ULAB_MAX_DIMS - 1];\
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(rarray) += (rstrides)[ULAB_MAX_DIMS - 2];\
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l++;\
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} while(l < (results)->shape[ULAB_MAX_DIMS - 2]);\
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(larray) -= (lstrides)[ULAB_MAX_DIMS - 2] * (results)->shape[ULAB_MAX_DIMS - 2];\
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(larray) += (lstrides)[ULAB_MAX_DIMS - 3];\
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(rarray) -= (rstrides)[ULAB_MAX_DIMS - 2] * (results)->shape[ULAB_MAX_DIMS - 2];\
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(rarray) += (rstrides)[ULAB_MAX_DIMS - 3];\
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k++;\
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} while(k < (results)->shape[ULAB_MAX_DIMS - 3]);\
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(larray) -= (lstrides)[ULAB_MAX_DIMS - 3] * (results)->shape[ULAB_MAX_DIMS - 3];\
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(larray) += (lstrides)[ULAB_MAX_DIMS - 4];\
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(rarray) -= (rstrides)[ULAB_MAX_DIMS - 3] * (results)->shape[ULAB_MAX_DIMS - 3];\
|
||||
(rarray) += (rstrides)[ULAB_MAX_DIMS - 4];\
|
||||
j++;\
|
||||
} while(j < (results)->shape[ULAB_MAX_DIMS - 4]);\
|
||||
} while(0)
|
||||
#endif /* ULAB_MAX_DIMS == 4 */
|
||||
|
||||
|
||||
#define INPLACE_MODULO_FLOAT1(results, type_right, larray, rarray, rstrides)\
|
||||
({\
|
||||
size_t l = 0;\
|
||||
do {\
|
||||
*((mp_float_t *)larray) = MICROPY_FLOAT_C_FUN(fmod)(*((mp_float_t *)(larray)), *((type_right *)(rarray)));\
|
||||
(larray) += (results)->strides[ULAB_MAX_DIMS - 1];\
|
||||
(rarray) += (rstrides)[ULAB_MAX_DIMS - 1];\
|
||||
l++;\
|
||||
} while(l < (results)->shape[ULAB_MAX_DIMS - 1]);\
|
||||
})
|
||||
|
||||
|
||||
#if ULAB_MAX_DIMS == 1
|
||||
#define INPLACE_MODULO_FLOAT_LOOP(results, type_right, larray, rarray, rstrides) do {\
|
||||
INPLACE_MODULO_FLOAT1((results), type_right, (larray), (rarray), (rstrides));\
|
||||
} while(0)
|
||||
#endif /* ULAB_MAX_DIMS == 1 */
|
||||
|
||||
|
||||
#if ULAB_MAX_DIMS == 2
|
||||
#define INLINE_MODULO_FLOAT_LOOP(results, type_right, larray, rarray, rstrides) do {\
|
||||
size_t l = 0;\
|
||||
do {\
|
||||
INPLACE_MODULO_FLOAT1((results), type_right, (larray), (rarray), (rstrides));\
|
||||
(larray) -= (results)->strides[ULAB_MAX_DIMS - 1] * (results)->shape[ULAB_MAX_DIMS - 1];\
|
||||
(larray) += (results)->strides[ULAB_MAX_DIMS - 2];\
|
||||
(rarray) -= (rstrides)[ULAB_MAX_DIMS - 1] * (results)->shape[ULAB_MAX_DIMS - 1];\
|
||||
(rarray) += (rstrides)[ULAB_MAX_DIMS - 2];\
|
||||
l++;\
|
||||
} while(l < (results)->shape[ULAB_MAX_DIMS - 2]);\
|
||||
} while(0)
|
||||
#endif /* ULAB_MAX_DIMS == 2 */
|
||||
|
||||
#if ULAB_MAX_DIMS == 3
|
||||
#define INLINE_MODULO_FLOAT_LOOP(results, type_right, larray, rarray, rstrides) do {\
|
||||
size_t k = 0;\
|
||||
do {\
|
||||
size_t l = 0;\
|
||||
do {\
|
||||
INPLACE_MODULO_FLOAT1((results), type_right, (larray), (rarray), (rstrides));\
|
||||
(larray) -= (results)->strides[ULAB_MAX_DIMS - 1] * (results)->shape[ULAB_MAX_DIMS - 1];\
|
||||
(larray) += (results)->strides[ULAB_MAX_DIMS - 2];\
|
||||
(rarray) -= (rstrides)[ULAB_MAX_DIMS - 1] * (results)->shape[ULAB_MAX_DIMS - 1];\
|
||||
(rarray) += (rstrides)[ULAB_MAX_DIMS - 2];\
|
||||
l++;\
|
||||
} while(l < (results)->shape[ULAB_MAX_DIMS - 2]);\
|
||||
(larray) -= (results)->strides[ULAB_MAX_DIMS - 2] * (results)->shape[ULAB_MAX_DIMS - 2];\
|
||||
(larray) += (results)->strides[ULAB_MAX_DIMS - 3];\
|
||||
(rarray) -= (rstrides)[ULAB_MAX_DIMS - 2] * (results)->shape[ULAB_MAX_DIMS - 2];\
|
||||
(rarray) += (rstrides)[ULAB_MAX_DIMS - 3];\
|
||||
k++;\
|
||||
} while(k < (results)->shape[ULAB_MAX_DIMS - 3]);\
|
||||
} while(0)
|
||||
#endif /* ULAB_MAX_DIMS == 3 */
|
||||
|
||||
#if ULAB_MAX_DIMS == 4
|
||||
#define INLINE_MODULO_FLOAT_LOOP(results, type_right, larray, rarray, rstrides) do {\
|
||||
size_t j = 0;\
|
||||
do {\
|
||||
size_t k = 0;\
|
||||
do {\
|
||||
size_t l = 0;\
|
||||
do {\
|
||||
INPLACE_MODULO_FLOAT1((results), type_right, (larray), (rarray), (rstrides));\
|
||||
(larray) -= (results)->strides[ULAB_MAX_DIMS - 1] * (results)->shape[ULAB_MAX_DIMS - 1];\
|
||||
(larray) += (results)->strides[ULAB_MAX_DIMS - 2];\
|
||||
(rarray) -= (rstrides)[ULAB_MAX_DIMS - 1] * (results)->shape[ULAB_MAX_DIMS - 1];\
|
||||
(rarray) += (rstrides)[ULAB_MAX_DIMS - 2];\
|
||||
l++;\
|
||||
} while(l < (results)->shape[ULAB_MAX_DIMS - 2]);\
|
||||
(larray) -= (results)->strides[ULAB_MAX_DIMS - 2] * (results)->shape[ULAB_MAX_DIMS - 2];\
|
||||
(larray) += (results)->strides[ULAB_MAX_DIMS - 3];\
|
||||
(rarray) -= (rstrides)[ULAB_MAX_DIMS - 2] * (results)->shape[ULAB_MAX_DIMS - 2];\
|
||||
(rarray) += (rstrides)[ULAB_MAX_DIMS - 3];\
|
||||
k++;\
|
||||
} while(k < (results)->shape[ULAB_MAX_DIMS - 3]);\
|
||||
(larray) -= (results)->strides[ULAB_MAX_DIMS - 3] * (results)->shape[ULAB_MAX_DIMS - 3];\
|
||||
(larray) += (results)->strides[ULAB_MAX_DIMS - 4];\
|
||||
(rarray) -= (rstrides)[ULAB_MAX_DIMS - 3] * (results)->shape[ULAB_MAX_DIMS - 3];\
|
||||
(rarray) += (rstrides)[ULAB_MAX_DIMS - 4];\
|
||||
j++;\
|
||||
} while(j < (results)->shape[ULAB_MAX_DIMS - 4]);\
|
||||
} while(0)
|
||||
#endif /* ULAB_MAX_DIMS == 4 */
|
||||
|
|
@ -33,7 +33,7 @@
|
|||
#include "user/user.h"
|
||||
#include "utils/utils.h"
|
||||
|
||||
#define ULAB_VERSION 6.8.0
|
||||
#define ULAB_VERSION 6.9.0
|
||||
#define xstr(s) str(s)
|
||||
#define str(s) #s
|
||||
|
||||
|
|
|
|||
|
|
@ -117,6 +117,10 @@
|
|||
#define NDARRAY_HAS_BINARY_OP_LESS_EQUAL (1)
|
||||
#endif
|
||||
|
||||
#ifndef NDARRAY_HAS_BINARY_OP_MODULO
|
||||
#define NDARRAY_HAS_BINARY_OP_MODULO (1)
|
||||
#endif
|
||||
|
||||
#ifndef NDARRAY_HAS_BINARY_OP_MORE
|
||||
#define NDARRAY_HAS_BINARY_OP_MORE (1)
|
||||
#endif
|
||||
|
|
@ -161,6 +165,10 @@
|
|||
#define NDARRAY_HAS_INPLACE_ADD (1)
|
||||
#endif
|
||||
|
||||
#ifndef NDARRAY_HAS_INPLACE_MODULO
|
||||
#define NDARRAY_HAS_INPLACE_MODU (1)
|
||||
#endif
|
||||
|
||||
#ifndef NDARRAY_HAS_INPLACE_MULTIPLY
|
||||
#define NDARRAY_HAS_INPLACE_MULTIPLY (1)
|
||||
#endif
|
||||
|
|
|
|||
|
|
@ -2599,7 +2599,7 @@
|
|||
"source": [
|
||||
"# Binary operators\n",
|
||||
"\n",
|
||||
"`ulab` implements the `+`, `-`, `*`, `/`, `**`, `<`, `>`, `<=`, `>=`, `==`, `!=`, `+=`, `-=`, `*=`, `/=`, `**=` binary operators, as well as the `AND`, `OR`, `XOR` bit-wise operators that work element-wise. Note that the bit-wise operators will raise an exception, if either of the operands is of `float` or `complex` type.\n",
|
||||
"`ulab` implements the `+`, `-`, `*`, `/`, `**`, `%`, `<`, `>`, `<=`, `>=`, `==`, `!=`, `+=`, `-=`, `*=`, `/=`, `**=`, `%=` binary operators, as well as the `AND`, `OR`, `XOR` bit-wise operators that work element-wise. Note that the bit-wise operators will raise an exception, if either of the operands is of `float` or `complex` type.\n",
|
||||
"\n",
|
||||
"Broadcasting is available, meaning that the two operands do not even have to have the same shape. If the lengths along the respective axes are equal, or one of them is 1, or the axis is missing, the element-wise operation can still be carried out. \n",
|
||||
"A thorough explanation of broadcasting can be found under https://numpy.org/doc/stable/user/basics.broadcasting.html. \n",
|
||||
|
|
|
|||
Loading…
Reference in a new issue