Journal of Cryptographic Engineering Template
Write in a clean editor, then format for Journal of Cryptographic Engineering in one click — DocuGuru applies the official Springer Nature template with numbered references and exports a submission-ready PDF plus the editable LaTeX source. Free to start.
About the Journal of Cryptographic Engineering format
Journal of Cryptographic Engineering is a peer-reviewed journal published by Springer Nature, covering Cryptographic Implementations and Security, Physical Unclonable Functions (PUFs) and Hardware Security, Chaos-based Image/Signal Encryption.
| Publisher | Springer Nature |
|---|---|
| Reference style | Numbered (Springer) Numbered — [1], [2] in the text 1. Smith, A., Jones, B., Lee, C.: A representative article title. Journal of Cryptographic Engineering 12, 45–58 (2023)
Formats any DOI in Journal of Cryptographic Engineering style. No sign-up. |
| Publishes research in | Cryptographic Implementations and Security Physical Unclonable Functions (PUFs) and Hardware Security Chaos-based Image/Signal Encryption Coding theory and cryptography Cryptography and Residue Arithmetic |
| ISSN | 2190-8508 |
| Citation impact (2-yr) | 1.95 |
| h-index | 42 |
| i10-index | 174 |
| Total citations | 9,132 |
| Article processing charge | $2,990 |
| Top institutions publishing here | Centre National de la Recherche Scientifique |
| Journal website | www.springer.com |
| You get | A submission-ready PDF and the editable LaTeX source — ready to submit. |
Papers published in Journal of Cryptographic Engineering per year
Citation impact of Journal of Cryptographic Engineering by publication year
Citations each year’s papers have accumulated so far — the most recent years are still building up.
Most-cited papers in Journal of Cryptographic Engineering
The power consumed by a circuit varies according to the activity of its individual transistors and other components. As a result, measurements of the power used by actual computers or microchips contain information about the operations being performed and the data being processed. Cryptographic designs have traditionally assumed that secrets are manipulated in environments that…
This paper shows that a $390 mass-market quad-core 2.4GHz Intel Westmere (Xeon E5620) CPU can create 109000 signatures per second and verify 71000 signatures per second on an elliptic curve at a 2 128 security level. Public keys are 32 bytes, and signatures are 64 bytes. These performance figures include strong defenses against software side-channel…