rusty_png 0.3.0

Pure-Rust PNG decoder + encoder, no C/FFI. Performance fork of image-rs/image-png.
Documentation

rusty_png

Remade With Rust By Mata Network License: MIT OR Apache-2.0 crates.io docs.rs

Pure-Rust PNG decoder + encoder. No C, no FFI. Full colour-type and bit-depth coverage, APNG, interlacing, and an opt-in pure-Rust zlib backend.

This crate is a performance fork of one upstream pure-Rust project, carried forward in-tree:

Half Upstream Licence
decode + encode image-png 0.17.16 MIT OR Apache-2.0

See NOTICE.md for attribution and WHYS.md for the measured descent behind every claim below — including the hypotheses that were refuted on the way.

Performance vs FFmpeg

Measured against system FFmpeg 8.1.2 on the same machine, one pinned core each, on-core CPU cycles (not wall — wall on this box threw 8,285 ms outliers on a 156 ms job), arms ABBA-interleaved, best-of-N with a paired win-rate and z-score. Null-arm floor 2.0–2.3%; nothing inside that band is reported as a result, and a row whose useful work sits under 3× its own process launch is refused rather than estimated. Content is real, from two corpora: the public CLIC professional validation set (native-RGB photography, so it is citable and reproducible by anyone) and frame 0 of the lossless Derf/xiph originals, plus real screenshots, matplotlib charts, diagrams and logos — the two synthetic images in early runs were dropped once real graphics showed different behaviour.

vs FFmpeg verdict
Decode, per core 2.55–2.89× faster (median 2.60×) decode-only, PNG → rgb24, 5 admissible images, z = 3
Encode, wall clock, multi-core 2.11–3.06× faster, 0.1–0.2% smaller end-to-end, matched filter + level, parallel
Encode, per core, same filter + size 0.94–1.05× on CLIC photographs (median 0.97×) · 0.86–0.91× on Derf video frames encode-only from raw; which DEFLATE is faster doing identical work
Graphics size, default settings −6.1% (was +115.6%) 9 real screenshots/charts/diagrams/logos

Every row is one direction only. The encode row feeds both arms raw pixels, so neither decodes — measuring encode by transcoding a PNG lets a decode win (which we have, and it is large) inflate a number labelled encode, and that is exactly how an earlier draft of this table briefly read 1.20× in our favour. Likewise the wall-clock row is a multi-core vs single-core comparison and is labelled as such: FFmpeg's PNG encoder is single-threaded for one image, which is the structural point, but it is never quoted as a per-core win, and the per-core row is kept directly beneath it.

Per core, encode is at parity on photographs and ~13% behind on video frames. That split is real and reproduces under one instrument, so it is reported as two ranges rather than averaged into one.

Why the fork

Two things upstream cannot address for a drop-in FFmpeg replacement:

  1. DEFLATE, not PNG, was the whole encode gap. At a matched size FFmpeg's encoder was 2.6–4.4× faster than Compression::Default/Best, because upstream routes those through flate2miniz_oxide while FFmpeg uses zlib. Switching to zlib-rs — flate2's pure-Rust zlib rewrite, which maps to any_zlib, not any_c_zlib, so no C enters the tree — measured 1.68–2.72× faster at Default with size within ±3%. That took the gap from 2.6–4.4× to parity on photographs (0.94–1.05×) and ~1.15× on video frames, at 0.2–0.3% smaller output. Since the profiler puts DEFLATE at 94–99.5% of encode, whatever residue remains is the deflate gap, not a PNG gap — closing the last of it means beating zlib's C, which is the open item.
  2. One hard-coded operating point is the wrong default for PNG. Fast/Sub/non-adaptive is genuinely excellent on photographs — faster and smaller than every FFmpeg -compression_level 1 configuration — and poor on graphics, where it ran +130.1% against FFmpeg's default across nine real screenshots/charts/diagrams. The winning configuration is content-dependent and measured so (best/up on charts, best/sub on screenshots, default/sub/adaptive on diagrams, best/paeth on UI art), which makes a single fixed default an unfinished dispatch rather than a tuning choice. rff-codec-png now dispatches on a measured content signal — repeated-pixel fraction, which separates photographs (0.0366–0.2037) from real graphics (0.5312–0.9790) with nothing in between — taking that corpus from +115.6% to −6.1% vs FFmpeg while leaving photographs byte-identical.

Every change is gated against upstream png 0.17.16, and since streamed IDAT landed the gate reports two properties separately rather than one verdict:

  • Upstream decodes our output to the source pixels: 330/330. This is the property that must never break, and it holds everywhere.
  • Encode bytes identical to upstream: 190/330. The 140 that differ are Default/Best on images whose compressed stream exceeds one 256 KiB chunk — we emit a run of IDATs where upstream emits one. Fast is byte-identical on every image, and so is anything small enough to fit a single chunk.

The DEFLATE payload itself is unchanged — on a 14.6 MB stream the concatenated IDAT contents are byte-for-byte what upstream produces; only the chunk framing differs, at a cost of +0.0045% file size. The full upstream test suite — pngsuite conformance included — runs green.

Decode

use std::io::Cursor;

fn main() -> Result<(), rusty_png::DecodingError> {
    let bytes = std::fs::read("in.png").expect("read input");

    let decoder = rusty_png::Decoder::new(Cursor::new(bytes));
    let mut reader = decoder.read_info()?;

    let mut buf = vec![0; reader.output_buffer_size()];
    let info = reader.next_frame(&mut buf)?;

    println!("{}x{}, {:?}", info.width, info.height, info.color_type);
    println!("{} bytes of pixel data", info.buffer_size());
    Ok(())
}

Encode

use rusty_png::{BitDepth, ColorType, Compression, FilterType};

fn main() -> Result<(), rusty_png::EncodingError> {
    // A 2x1 RGB image: red, blue.
    let pixels = [255u8, 0, 0, 0, 0, 255];

    let mut out = Vec::new();
    {
        let mut encoder = rusty_png::Encoder::new(&mut out, 2, 1);
        encoder.set_color(ColorType::Rgb);
        encoder.set_depth(BitDepth::Eight);
        // The knobs that matter: pick a point on the speed/size curve.
        encoder.set_compression(Compression::Default);
        encoder.set_filter(FilterType::Up);
        encoder.write_header()?.write_image_data(&pixels)?;
    }

    std::fs::write("out.png", out).expect("write output");
    Ok(())
}

set_adaptive_filter(AdaptiveFilterType::Adaptive) chooses a filter per row and is the strongest setting on text and screenshot content.

Features

Feature Default Effect
zlib-rs yes DEFLATE via flate2's pure-Rust zlib rewrite instead of miniz_oxide. Measured 1.68–2.72× faster at Compression::Default, size within ±3%. Maps to flate2's any_zlib, not any_c_zlib — no C is introduced. On by default: it dominates at Default (faster on 13/13, size within ±4.4%). At Best it is smaller on 9/9 real graphics but slower on 5/9 — recorded, not averaged away; reaching sizes miniz_oxide cannot reach at any speed is what Best is for.
profile no Per-row stage profiler (filter/deflate on encode; inflate/unfilter/transform on decode). Scopes are per row, so the tap costs <0.1% of a 1080p encode; compiles to nothing when off.
parallel no Multi-threaded DEFLATE for a single image (pigz-style block splitting). 2.11–3.06× end-to-end vs FFmpeg at matched filter and level, while staying 0.1–0.2% smaller. Applies to Compression::Default/Best only — Fast is fdeflate, a single-stream path. Blocks are sized (≥1 MiB), never counted, so an image too small to split stays serial and pays +0.00%; forcing 24 blocks on a 1.44 MB chart would have cost +7.44%.
benchmarks no Expose internal kernels (unfilter, expand_paletted) for A/B oracle tests.
unstable no crc32fast/nightly.

Part of Remade With Rust

This crate is the standalone PNG engine of remade_ffmpeg_rs — a ground-up, permissively-licensed Rust rebuild of FFmpeg: a drop-in ffmpeg/ffprobe CLI on pure-Rust codecs, with no copyleft. Also check out our sister project FFAI — media for an AI-first world — and the rest of github.com/remade-with-rust, including the sibling codec crates rusty_h264, rusty_jpeg, rusty_vp9, rusty_mp3, rusty_aac, rusty-opus, rusty_vorbis, and the rusty-av1-toolkit forks.

About Mata Network

Mata Network builds sovereign, self-hostable infrastructure. Remade With Rust is our open-source home for the permissively-licensed building blocks that work depends on.

Licence

MIT OR Apache-2.0, inherited unchanged from image-rs/image-png. See LICENSE-MIT, LICENSE-APACHE and NOTICE.md.