189 lines
7.1 KiB
Rust
189 lines
7.1 KiB
Rust
//! EXIF metadata extraction from image files.
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//!
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//! Uses `kamadak-exif` to parse EXIF headers from JPEG/TIFF/HEIF images.
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//! Extraction is cheap — only the header bytes are read, not the full image.
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use chrono::{DateTime, NaiveDateTime, Utc};
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use exif::{In, Reader, Tag};
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use std::io::Cursor;
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/// Extracted EXIF metadata fields.
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#[derive(Debug, Clone, Default)]
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pub struct ExifMetadata {
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/// Photo capture time (EXIF DateTimeOriginal)
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pub captured_at: Option<DateTime<Utc>>,
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/// GPS latitude in decimal degrees (positive = North)
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pub latitude: Option<f64>,
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/// GPS longitude in decimal degrees (positive = East)
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pub longitude: Option<f64>,
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/// Camera manufacturer (EXIF Make)
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pub camera_make: Option<String>,
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/// Camera model (EXIF Model)
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pub camera_model: Option<String>,
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/// EXIF Orientation tag (1-8)
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pub orientation: Option<u16>,
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/// Original image width in pixels
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pub width: Option<u32>,
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/// Original image height in pixels
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pub height: Option<u32>,
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}
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/// Stateless service for extracting EXIF metadata from image bytes.
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pub struct ExifService;
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impl ExifService {
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/// Extract EXIF metadata from raw image bytes.
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///
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/// Returns `None` if the file has no EXIF data (e.g. PNG, GIF, WebP)
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/// or if parsing fails entirely. Individual fields may be `None` even
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/// when the EXIF block exists (not all cameras populate every tag).
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pub fn extract(data: &[u8]) -> Option<ExifMetadata> {
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let exif = Reader::new()
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.read_from_container(&mut Cursor::new(data))
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.ok()?;
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let mut meta = ExifMetadata::default();
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// ── Capture date ──
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if let Some(field) = exif.get_field(Tag::DateTimeOriginal, In::PRIMARY) {
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meta.captured_at = parse_exif_datetime(&field.display_value().to_string());
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}
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// Fallback to DateTimeDigitized if DateTimeOriginal is missing
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if meta.captured_at.is_none()
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&& let Some(field) = exif.get_field(Tag::DateTimeDigitized, In::PRIMARY)
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{
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meta.captured_at = parse_exif_datetime(&field.display_value().to_string());
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}
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// ── GPS coordinates ──
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meta.latitude = parse_gps_coord(&exif, Tag::GPSLatitude, Tag::GPSLatitudeRef);
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meta.longitude = parse_gps_coord(&exif, Tag::GPSLongitude, Tag::GPSLongitudeRef);
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// ── Camera info ──
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if let Some(field) = exif.get_field(Tag::Make, In::PRIMARY) {
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let val = field
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.display_value()
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.to_string()
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.trim_matches('"')
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.trim()
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.to_string();
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if !val.is_empty() {
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meta.camera_make = Some(val);
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}
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}
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if let Some(field) = exif.get_field(Tag::Model, In::PRIMARY) {
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let val = field
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.display_value()
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.to_string()
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.trim_matches('"')
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.trim()
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.to_string();
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if !val.is_empty() {
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meta.camera_model = Some(val);
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}
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}
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// ── Orientation ──
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if let Some(field) = exif.get_field(Tag::Orientation, In::PRIMARY)
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&& let exif::Value::Short(ref v) = field.value
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&& let Some(&o) = v.first()
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&& (1..=8).contains(&o)
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{
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meta.orientation = Some(o);
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}
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// ── Dimensions ──
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if let Some(field) = exif.get_field(Tag::PixelXDimension, In::PRIMARY) {
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meta.width = parse_u32_value(&field.value);
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}
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if let Some(field) = exif.get_field(Tag::PixelYDimension, In::PRIMARY) {
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meta.height = parse_u32_value(&field.value);
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}
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// Fallback to ImageWidth/ImageLength if PixelXDimension is missing
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if meta.width.is_none()
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&& let Some(field) = exif.get_field(Tag::ImageWidth, In::PRIMARY)
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{
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meta.width = parse_u32_value(&field.value);
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}
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if meta.height.is_none()
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&& let Some(field) = exif.get_field(Tag::ImageLength, In::PRIMARY)
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{
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meta.height = parse_u32_value(&field.value);
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}
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Some(meta)
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}
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}
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/// Parse EXIF datetime string "YYYY:MM:DD HH:MM:SS" into DateTime<Utc>.
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fn parse_exif_datetime(s: &str) -> Option<DateTime<Utc>> {
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// EXIF dates use ":" as separator for date parts
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let s = s.trim().trim_matches('"');
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NaiveDateTime::parse_from_str(s, "%Y-%m-%d %H:%M:%S")
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.or_else(|_| NaiveDateTime::parse_from_str(s, "%Y:%m:%d %H:%M:%S"))
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.ok()
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.map(|ndt| ndt.and_utc())
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}
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/// Parse GPS coordinate from EXIF rational values + reference (N/S or E/W).
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fn parse_gps_coord(exif: &exif::Exif, coord_tag: Tag, ref_tag: Tag) -> Option<f64> {
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let field = exif.get_field(coord_tag, In::PRIMARY)?;
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let ref_field = exif.get_field(ref_tag, In::PRIMARY)?;
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let rationals = match &field.value {
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exif::Value::Rational(v) if v.len() >= 3 => v,
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_ => return None,
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};
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let degrees = rationals[0].to_f64();
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let minutes = rationals[1].to_f64();
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let seconds = rationals[2].to_f64();
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let mut decimal = degrees + minutes / 60.0 + seconds / 3600.0;
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// Apply hemisphere sign
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let reference = ref_field.display_value().to_string();
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let reference = reference.trim().trim_matches('"');
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if reference == "S" || reference == "W" {
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decimal = -decimal;
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}
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Some(decimal)
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}
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/// Extract a u32 from various EXIF value types (Short, Long).
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fn parse_u32_value(value: &exif::Value) -> Option<u32> {
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match value {
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exif::Value::Short(v) => v.first().map(|&x| x as u32),
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exif::Value::Long(v) => v.first().copied(),
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_ => None,
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}
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}
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/// Apply EXIF orientation to a `DynamicImage`.
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///
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/// EXIF orientation values 1-8 describe how the stored pixels relate to
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/// the intended display orientation. This function transforms the image
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/// to match the intended orientation.
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pub fn apply_orientation(img: image::DynamicImage, orientation: u16) -> image::DynamicImage {
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match orientation {
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1 => img, // Normal
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2 => image::DynamicImage::from(image::imageops::flip_horizontal(&img)), // Mirror horizontal
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3 => image::DynamicImage::from(image::imageops::rotate180(&img)), // Rotate 180°
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4 => image::DynamicImage::from(image::imageops::flip_vertical(&img)), // Mirror vertical
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5 => {
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// Transpose: flip horizontal then rotate 270° (= rotate 90° CW then flip horizontal)
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let flipped = image::imageops::flip_horizontal(&img);
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image::DynamicImage::from(image::imageops::rotate270(&flipped))
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}
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6 => image::DynamicImage::from(image::imageops::rotate90(&img)), // Rotate 90° CW
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7 => {
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// Transverse: flip horizontal then rotate 90°
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let flipped = image::imageops::flip_horizontal(&img);
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image::DynamicImage::from(image::imageops::rotate90(&flipped))
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}
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8 => image::DynamicImage::from(image::imageops::rotate270(&img)), // Rotate 270° CW
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_ => img,
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}
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}
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