use proc_macro::TokenStream; use quote::quote; #[proc_macro_derive(OneDReader)] pub fn one_d_reader_derive(input: TokenStream) -> TokenStream { // Construct a representation of Rust code as a syntax tree // that we can manipulate let ast = syn::parse(input).unwrap(); // Build the trait implementation impl_one_d_reader_macro(&ast) } fn impl_one_d_reader_macro(ast: &syn::DeriveInput) -> TokenStream { let name = &ast.ident; let gen = quote! { use std::collections::HashMap; use crate::result_point::ResultPoint; use crate::DecodeHintType; use crate::DecodingHintDictionary; use crate::RXingResultMetadataType; use crate::RXingResultMetadataValue; use crate::RXingResultPoint; use crate::Reader; use crate::Binarizer; impl Reader for #name { fn decode(&mut self, image: &mut crate::BinaryBitmap) -> Result { self.decode_with_hints(image, &HashMap::new()) } // Note that we don't try rotation without the try harder flag, even if rotation was supported. fn decode_with_hints( &mut self, image: &mut crate::BinaryBitmap, hints: &DecodingHintDictionary, ) -> Result { if let Ok(res) = self._do_decode(image, hints) { Ok(res) }else { let tryHarder = hints.contains_key(&DecodeHintType::TRY_HARDER); if tryHarder && image.is_rotate_supported() { let mut rotated_image = image.rotate_counter_clockwise(); let mut result = self._do_decode(&mut rotated_image, hints)?; // Record that we found it rotated 90 degrees CCW / 270 degrees CW let metadata = result.getRXingResultMetadata(); let mut orientation = 270; if metadata.contains_key(&RXingResultMetadataType::ORIENTATION) { // But if we found it reversed in doDecode(), add in that result here: orientation = (orientation + if let Some(crate::RXingResultMetadataValue::Orientation(or)) = metadata.get(&RXingResultMetadataType::ORIENTATION) { *or }else { 0 }) % 360; } result.putMetadata(RXingResultMetadataType::ORIENTATION, RXingResultMetadataValue::Orientation(orientation)); // Update result points // let points = result.getRXingResultPoints(); // if points != null { let height = rotated_image.get_height(); // for point in result.getRXingResultPointsMut().iter_mut() { let total_points = result.getRXingResultPoints().len(); let points = result.getRXingResultPointsMut(); for i in 0..total_points{ // for (int i = 0; i < points.length; i++) { points[i] = RXingResultPoint::new(height as f32- points[i].getY() - 1.0, points[i].getX()); } // } Ok(result) } else { return Err(Exceptions::NOT_FOUND) } } } } }; gen.into() } #[proc_macro_derive(EANReader)] pub fn ean_reader_derive(input: TokenStream) -> TokenStream { // Construct a representation of Rust code as a syntax tree // that we can manipulate let ast = syn::parse(input).unwrap(); // Build the trait implementation impl_ean_reader_macro(&ast) } fn impl_ean_reader_macro(ast: &syn::DeriveInput) -> TokenStream { let name = &ast.ident; let gen = quote! { impl super::OneDReader for #name { fn decode_row( &mut self, rowNumber: u32, row: &crate::common::BitArray, hints: &crate::DecodingHintDictionary, ) -> Result { self.decodeRowWithGuardRange(rowNumber, row, &self.find_start_guard_pattern(row)?, hints) } } }; gen.into() } #[proc_macro_derive(OneDWriter)] pub fn one_d_writer_derive(input: TokenStream) -> TokenStream { // Construct a representation of Rust code as a syntax tree // that we can manipulate let ast = syn::parse(input).unwrap(); // Build the trait implementation impl_one_d_writer_macro(&ast) } fn impl_one_d_writer_macro(ast: &syn::DeriveInput) -> TokenStream { let name = &ast.ident; let gen = quote! { use crate::{ EncodeHintType, EncodeHintValue, Exceptions, Writer, }; use std::collections::HashMap; impl Writer for #name { fn encode( &self, contents: &str, format: &crate::BarcodeFormat, width: i32, height: i32, ) -> Result { self.encode_with_hints(contents, format, width, height, &HashMap::new()) } fn encode_with_hints( &self, contents: &str, format: &crate::BarcodeFormat, width: i32, height: i32, hints: &crate::EncodingHintDictionary, ) -> Result { if contents.is_empty() { return Err(Exceptions::illegal_argument_with( "Found empty contents" )); } if width < 0 || height < 0 { return Err(Exceptions::illegal_argument_with(format!( "Negative size is not allowed. Input: {}x{}", width, height ))); } if let Some(supportedFormats) = self.getSupportedWriteFormats() { if !supportedFormats.contains(format) { return Err(Exceptions::illegal_argument_with(format!( "Can only encode {:?}, but got {:?}", supportedFormats, format ))); } } let mut sidesMargin = self.getDefaultMargin(); if let Some(EncodeHintValue::Margin(margin)) = hints.get(&EncodeHintType::MARGIN) { sidesMargin = margin.parse::().unwrap(); } // if hints.contains_key(&EncodeHintType::MARGIN) { // sidesMargin = Integer.parseInt(hints.get(EncodeHintType.MARGIN).toString()); // } let code = self.encode_oned_with_hints(contents, hints)?; Self::renderRXingResult(&code, width, height, sidesMargin) } } }; gen.into() }