Image MIME Reference
HTJ2K-Codestream
High-Throughput JPEG 2000 Codestream
image/jphc
VS
JPEG-LS
image/jls
JPEG-LS
A complete technical comparison of High-Throughput JPEG 2000 Codestream and JPEG-LS — covering compression, feature support, browser compatibility, magic bytes, and when to choose each format.
Equal browser support
Feature Support
| Feature | HTJ2K-Codestream | JPEG-LS |
|---|---|---|
| Transparency (Alpha) | Yes | ✕ No |
| Animation Support | ✕ No | ✕ No |
| Progressive Loading | Yes | ✕ No |
| HDR Support | Yes | Yes |
| EXIF Metadata | ✕ No | ✕ No |
| ICC Color Profile | ✕ No | ✕ No |
High-Throughput JPEG 2000 Codestream
image/jphc
Extension
.jhc
Container
None (Raw Codestream)
Compression
Lossy / Lossless
Algorithm
High-Throughput JPEG 2000 (HTJ2K)
Color Depth
8-bit, 16-bit, 32-bit, 38-bit
Developed by
Joint Photographic Experts Group (JPEG)
Released
2019
Magic Bytes
FF 4F FF 51
JPEG-LS
image/jls
Extension
.jls.jl
Container
JPEG Bitstream
Compression
Lossless / Near-Lossless (Predictive Coding)
Algorithm
LOCO-I (Low Complexity Lossless Compression for Images)Golomb-Rice Coding
Color Depth
8-bit, 12-bit, 16-bit (Per Channel)
Developed by
Joint Photographic Experts Group (ISO/ITU-T) & HP Labs
Released
1999
Magic Bytes
FF D8 FF F7
Browser Support Comparison
| Browser | HTJ2K-Codestream | JPEG-LS |
|---|---|---|
|
|
✕ | ✕ |
|
|
✕ | ✕ |
|
|
✕ | ✕ |
|
|
✕ | ✕ |
|
|
✕ | ✕ |
HTJ2K-Codestream
HTJ2K-Codestream Strengths
- Extremely fast encoding and decoding capabilities due to the parallelizable block coder
- Minimal file overhead since it lacks container headers and metadata
- Ideal for streaming applications or embedded systems where parsing a full container is unnecessary
Limitations
- Lacks standard metadata support (like EXIF, XMP, or ICC color profiles) since there is no container structure
- Zero native web browser compatibility
- Difficult to distinguish from standard JPEG 2000 codestreams without deeply parsing the internal marker segments
JPEG-LS
JPEG-LS Strengths
- Provides state-of-the-art lossless compression ratios for continuous-tone images, often outperforming Lossless JPEG and JPEG 2000
- Extremely fast and computationally inexpensive to encode/decode, requiring no complex floating-point math or DCTs
- Highly resilient in constrained hardware environments, making it ideal for medical equipment and deep-space probes (e.g., Mars rovers)
Limitations
- Zero native support in web browsers or standard consumer operating systems
- Lacks the advanced resolution scalability and progressive decoding features found in JPEG 2000
- Primarily relegated to niche enterprise sectors (healthcare/DICOM and aerospace) rather than consumer adoption
When to choose which format
HTJ2K-Codestream
Use HTJ2K-Codestream when…
- Medical Imaging Pipelines
- Geospatial Data Streaming
- Digital Cinema
- Embedded Systems
JPEG-LS
Use JPEG-LS when…
- Medical Imaging (DICOM Encapsulation)
- Space and Planetary Imaging (NASA/ESA)
- Industrial Machine Vision
- Scientific Archival Storage