Conference Information

DCC 2027: Data Compression Conference

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Submission Date:
2026-10-02
Notification Date:
2026-11-22
Conference Date:
2027-03-23
Location:
Snowbird, Utah, USA
Years:
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CCF: B   ICORE: B   QUALIS: A2   Viewed: 79979   Tracked: 78   Attend: 18
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Conference Partner Index (CP-I)

61.1 / 100
Ranked #581 of 5,694 conferences · Top 11%

#38 of 142 in Theory & Algorithms

Academic recognition (35%)
92
Submission selectivity (20%) No data - scored at the neutral baseline of 50 —
Editions held (20%)
19
Community attention (10%)
69
Public record completeness (15%)
55

Inputs used: Listed as CCF B, ICORE B, QUALIS A2 · Editions on record: 1 · Researchers following it here: 78 · Researchers who opened this page in the past 24 months: 34

Missing from the public record: Historical acceptance rates (+4.5) · Best-paper records (+2.3)
Organizers can add these from this page after claiming the conference; scores are recomputed nightly. How to raise this score

Confidence 80% - the share of the score backed by observed data rather than the neutral baseline. How this score is calculated · Browse the ranking · Algorithm version 1.1 · Computed 2026-10-09

Call For Papers

DCC 2027 (Data Compression Conference) is a CCF B / ICORE B / QUALIS A2 conference held in Snowbird, Utah, USA on 2027-03-23. The paper submission deadline is 2026-10-02. Acceptance notifications are sent on 2026-11-22.

The Data Compression Conference (DCC) is an international forum for current work on data compression and related applications. The conference addresses: Compression of specific types of data (text, images, video, etc.) Compression in networking, communications, and storage Applications to bioinformatics Applications to mobile computing Applications to information retrieval Computational issues for compression related applications Inpainting-based compression, perceptual coding Compressed data structures Quantization theory and vector quantization (VQ) Joint source-channel coding Compression-related standards Both theoretical and experimental work are of interest. Theme Topics of interest include but are not limited to: Lossless and lossy compression for storage and transmission of specific types of data (including text, gray scale and color photographs, multi-spectral and hyper-spectral images, palette images, video, movies, audio, music, maps, instrument and sensor data, space data, earth observation data, scientific data, weather data, medical data, graphics data, geometry data, 3D representations, animation, bi-level images / bit-maps, web content, web graphs, etc.); source coding; source coding in multiple-access networks; joint source-channel coding; rate-distortion coding; rate allocation; multiple-description coding; quantization theory; vector quantization (VQ); multiple description VQ; transform-based methods (including DCT and wavelet transforms); parallel compression algorithms and hardware; error-resilient compression techniques; adaptive compression algorithms; browsing and searching compressed data; compressed data structures; applications to immersive media; inpainting-based compression; perceptual coding; visual search; object recognition; applications of neural networks and deep learning (e.g., CNNs) to compression; string searching and manipulation used in compression applications; fractal-based compression methods; information retrieval employing compression techniques; steganography / hidden information with respect to compressed data; minimal-length encoding and applications to learning; system issues relating to data compression (including error control, data security, indexing, and browsing); compression applications and issues for computational biology and bioinformatics; compression applications and issues for the internet; compression applications and issues for mobile computing; applications of compression to file distribution and software updates; applications of compression to file storage and backup systems; applications of compression to data mining; applications of compression to image retrieval; applications of compression and information theory to human-computer interaction (HCI); development of and extensions to compression standards (including the HEVC, JPEG, MPEG, H.xxx, and G.xxx families and including compression of specific image types such as plenoptic images, point cloud images, and light field images); compressed sensing / compressive sampling; and the use of techniques from information theory and data compression in networking, communications, and storage of large data sets.
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